CD47在血液瘤和实体瘤中的疗效对比
CD47–SIRPα吞噬检查点的分子机制、免疫逃逸与总体治疗图谱
本组构成CD47研究的共同理论基础,涵盖CD47–SIRPα“不要吃我”信号、巨噬细胞吞噬抑制、CD47表达调控、肿瘤免疫逃逸、抗原呈递及先天—适应性免疫联动等内容,并总结抗CD47抗体及相关吞噬检查点治疗的总体图谱。
- The CD47-signal regulatory protein alpha (SIRPa) interaction is a therapeutic target for human solid tumors(S. Willingham, J. Volkmer, A. Gentles, D. Sahoo, P. Dalerba, S. Mitra, Jian Wang, Humberto Contreras-Trujillo, Robin Martin, Justin D. Cohen, Patricia A. Lovelace, F. Scheeren, M. Chao, K. Weiskopf, Chad Tang, A. Volkmer, T. Naik, Theresa A. Storm, Adriane R. Mosley, Badreddin Edris, S. Schmid, C. Sun, M. Chua, O. Murillo, Pradeep S. Rajendran, Adriel C. Cha, R. Chin, Dongkyoon Kim, M. Adorno, T. Raveh, D. Tseng, Siddhartha Jaiswal, P. Enger, G. Steinberg, Gordon Li, S. So, R. Majeti, G. Harsh, M. van de Rijn, N. Teng, J. Sunwoo, Ash A. Alizadeh, M. Clarke, I. Weissman, 2012, Proceedings of the National Academy of Sciences)
- Role of CD47 in tumor immunity: a potential target for combination therapy(Jing Huang, Fangkun Liu, Chenglong Li, Xisong Liang, Chun-tao Li, Yuanyuan Liu, Zhenjie Yi, Liyang Zhang, Siqi Fu, Yu Zeng, 2022, Scientific Reports)
- The Macrophage 'Do not eat me' signal, CD47, is a clinically validated cancer immunotherapy target.(Chris H.M. Takimoto, M. Chao, C. Gibbs, M. Mccamish, J. Liu, James Y Chen, Ravi Majeti, Irving L. Weissman, 2019, Annals of Oncology)
- Cancer Therapy Targeting CD47/SIRPα(N. Dizman, E. Buchbinder, 2021, Cancers)
- The landscape overview of CD47-based immunotherapy for hematological malignancies(Hua Yang, Yang Xun, Hua You, 2023, Biomarker Research)
- Targeting CD47/SIRPα as a therapeutic strategy, where we are and where we are headed(Tailong Qu, Baiyong Li, Yifei Wang, 2022, Biomarker Research)
- Perspectives on anti-CD47 antibody treatment for experimental cancer(E. Unanue, 2013, Proceedings of the National Academy of Sciences)
- Progress in cancer research on the regulator of phagocytosis CD47, which determines the fate of tumor cells (Review)(Fan Wu, Hongyuan Pang, Fan Li, Mengqing Hua, Chuanwang Song, Jie Tang, 2024, Oncology Letters)
- Macrophage-Mediated Tumor Cell Phagocytosis: Opportunity for Nanomedicine Intervention(Xuefei Zhou, Xiangrui Liu, Leaf Huang, 2020, Advanced Functional Materials)
- Regulation of CD47 expression in cancer cells(Can-Yu Huang, Zi-han Ye, Mu-yang Huang, Jin-jian Lu, 2020, Translational Oncology)
- The Physiological and Therapeutic Role of CD47 in Macrophage Function and Cancer(S. Bess, Matthew J. Igoe, Timothy J. Muldoon, 2024, Immunological Investigations)
- Progress of CD47 immune checkpoint blockade agents in anticancer therapy: a hematotoxic perspective(Yu-Chi Chen, Wei Shi, Jia-Jie Shi, Jin-Jian Lu, 2021, Journal of Cancer Research and Clinical Oncology)
- Emerging phagocytosis checkpoints in cancer immunotherapy(Yue-Ying Liu, Yanjin Wang, Yanrong Yang, Linjun Weng, Qi Wu, Jin Zhang, Pengcheng Zhao, L. Fang, Yufeng Shi, Ping Wang, 2023, Signal Transduction and Targeted Therapy)
- CD47: role in the immune system and application to cancer therapy(S. Hayat, V. Bianconi, M. Pirro, M. Jaafari, M. Hatamipour, A. Sahebkar, 2019, Cellular Oncology)
- Anti-CD47 antibody–mediated phagocytosis of cancer by macrophages primes an effective antitumor T-cell response(D. Tseng, J. Volkmer, S. Willingham, Humberto Contreras-Trujillo, J. Fathman, Nathaniel B. Fernhoff, J. Seita, M. Inlay, K. Weiskopf, Masanori Miyanishi, I. Weissman, 2013, Proceedings of the National Academy of Sciences)
- Disrupting the CD47-SIRPα anti-phagocytic axis by a humanized anti-CD47 antibody is an efficacious treatment for malignant pediatric brain tumors(S. Gholamin, S. Mitra, A. Feroze, Jie Liu, S. Kahn, Michael Zhang, Rogelio Esparza, Chase Richard, V. Ramaswamy, M. Remke, A. Volkmer, S. Willingham, Anitha Ponnuswami, Aaron McCarty, Patricia A. Lovelace, Theresa A. Storm, S. Schubert, G. Hutter, Cyndhavi Narayanan, Pauline Chu, Eric H. Raabe, G. Harsh, Michael D. Taylor, Michelle Monje, Yoon-Jae Cho, R. Majeti, J. Volkmer, P. Fisher, G. Grant, G. Steinberg, H. Vogel, Michael Edwards, I. Weissman, S. Cheshier, 2017, Science Translational Medicine)
- CD47 overexpression is associated with decreased neutrophil apoptosis/phagocytosis and poor prognosis in non-small-cell lung cancer patients(L Barrera, E Montes-Servín, 2017, … journal of cancer)
- Advances in Anti-Tumor Treatments Targeting the CD47/SIRPα Axis(Wenting Zhang, Qinghua Huang, Weiwei Xiao, Yue Zhao, Jiang Pi, Huan Xu, Hongxia Zhao, Junfa Xu, C. Evans, Hua Jin, 2020, Frontiers in Immunology)
- Is CD47 an innate immune checkpoint for tumor evasion?(Xiaojuan Liu, H. Kwon, Zihai Li, yang-xin fu, 2017, Journal of Hematology & Oncology)
- Cancer immunotherapy targeting the CD47/SIRPα axis.(K. Weiskopf, 2017, European Journal of Cancer)
血液瘤中的CD47生物学、预后意义与临床前吞噬机制
这些文献聚焦血液瘤中CD47的高表达、预后相关性及白血病干细胞和其他恶性血细胞的吞噬逃逸机制,同时讨论SIRPα融合蛋白、抗CD47抗体和巨噬细胞重编程等临床前治疗依据,为后续临床疗效分析提供疾病生物学背景。
- Role of CD47 in Hematological Malignancies(Entsar Eladl, Rosemarie Tremblay-Lemay, N. Rastgoo, Rumina Musani, Wenming Chen, Aijun Liu, Hong Chang, 2020, Journal of Hematology & Oncology)
- CD47 is an adverse prognostic factor and therapeutic antibody target on human acute myeloid leukemia stem cells(R. Majeti, M. Chao, Ash A. Alizadeh, W. Pang, Siddhartha Jaiswal, Kenneth D. Gibbs, N. Rooijen, I. Weissman, 2009, Cell)
- TTI-621 (SIRPαFc): A CD47-Blocking Innate Immune Checkpoint Inhibitor with Broad Antitumor Activity and Minimal Erythrocyte Binding(Penka S. Petrova, N. Viller, M. Wong, X. Pang, G. Lin, K. Dodge, Vien Chai, Hui Chen, V. Lee, Violetta House, N. Vigo, D. Jin, Tapfuma Mutukura, M. Charbonneau, Tran Truong, S. Viau, L. Johnson, E. Linderoth, E. Sievers, S. Maleki Vareki, R. Figueredo, Macarena Pampillo, J. Koropatnick, S. Trudel, Nathan Mbong, Liqing Jin, Jean C. Y. Wang, R. Uger, 2016, Clinical Cancer Research)
- Targeting macrophages in hematological malignancies: recent advances and future directions(Wei Li, Fang Wang, Rongqun Guo, Zhilei Bian, Yongping Song, 2022, Journal of Hematology & Oncology)
- Therapeutic Targeting of the Macrophage Immune Checkpoint CD47 in Myeloid Malignancies(M. Chao, C. Takimoto, D. Feng, K. McKenna, Phung Gip, Jie Liu, J. Volkmer, I. Weissman, R. Majeti, 2020, Frontiers in Oncology)
血液瘤中的抗CD47临床疗效、联合方案与安全性证据
本组集中呈现血液系统恶性肿瘤中抗CD47药物的人体临床证据,覆盖AML、MDS、B细胞淋巴瘤、多发性骨髓瘤等疾病,以及magrolimab、TTI-621、AK117等药物。研究重点包括单药及与阿扎胞苷、维奈克拉、利妥昔单抗、obinutuzumab等方案联用的缓解率、疗效持续性、适用亚组和安全性,尤其关注贫血、血小板减少及输血管理。
- The effects of monoclonal anti‐CD47 on RBCs, compatibility testing, and transfusion requirements in refractory acute myeloid leukemia(C. Brierley, J. Staves, C. Roberts, H. Johnson, P. Vyas, Lawrence T. Goodnough, M. Murphy, Mike Murphy, 2019, Transfusion)
- Phase 2 Multi‐Arm Study of Magrolimab Combinations in Patients With Acute Myeloid Leukaemia(G. Mannis, Camille N. Abboud, N. Daver, G. Murthy, Eunice S. Wang, T. Bradley, G. Yaghmour, P. Vachhani, S. Balasubramanian, C. Chua, C. Fong, A. Asch, Mei Dong, Shuang Li, Taravat Bagheri, Parul Doshi, P. Vyas, M. A. Malki, 2025, eJHaem)
- The anti‐CD47 antibody magrolimab with obinutuzumab and venetoclax in relapsed or refractory indolent B‐cell lymphomas(R. Lakhotia, C. Melani, Stafania Pittaluga, Max J. Gordon, James D. Phelan, J. Muppidi, Atekelt Y. Tadese, Sarah Evans, Elaine S Jaffe, Louis M. Staudt, Wyndham H Wilson, M. Roschewski, 2025, British Journal of Haematology)
- Tolerability and Efficacy of the Anticluster of Differentiation 47 Antibody Magrolimab Combined With Azacitidine in Patients With Previously Untreated AML: Phase Ib Results(N. Daver, Paresh Vyas, S. Kambhampati, M. A. Al Malki, Richard A. Larson, A. Asch, G. Mannis, W. Chai-Ho, Tiffany N. Tanaka, T. Bradley, D. Jeyakumar, Eunice S. Wang, K. Sweet, H. Kantarjian, G. Garcia-Manero, R. Komrokji, G. Xing, G. Ramsingh, C. Renard, J. Zeidner, D. Sallman, 2023, Journal of Clinical Oncology)
- CD47 Blockade by Hu5F9-G4 and Rituximab in Non-Hodgkin’s Lymphoma(R. Advani, I. Flinn, L. Popplewell, A. Forero, N. Bartlett, N. Ghosh, J. Kline, M. Roschewski, A. LaCasce, G. Collins, T. Tran, J. Lynn, James Y Chen, J. Volkmer, B. Agoram, Jie Huang, R. Majeti, I. Weissman, C. Takimoto, M. Chao, Sonali M. Smith, 2018, New England Journal of Medicine)
- Magrolimab plus rituximab in relapsed/refractory indolent non-Hodgkin lymphoma: 3-year follow-up of a phase 1/2 trial(Amitkumar Mehta, L. Popplewell, Graham P. Collins, Sonali M. Smith, I. Flinn, N. L. Bartlett, Nilanjan Ghosh, Gal Hacohen-Kleiman, Yanan Huo, Linda Su-Feher, Camille Renard, R. Advani, M. Roschewski, 2024, Blood Advances)
- Safety and Tolerability of Magrolimab Combinations in Patients with Relapsed/Refractory Multiple Myeloma (RRMM): Safety Run-in Results from a Phase 2 Study(B. Paul, J. Minařík, F. Cottini, C. Gasparetto, Jack Khouri, M. Gandhi, J. Hillengass, M. Levy, Michaela Liedtke, S. Manda, I. Sandhu, D. Sborov, I. Špička, S. Usmani, L. Gu, M. Robeson, Michael Murphy, C. Renard, Christine I. Chen, L. Pour, 2023, Blood)
- CD47-targeting antibodies as a novel therapeutic strategy in hematologic malignancies(Jennifer Sun, Yixuan Chen, Berit Lubben, O. Adebayo, B. Muz, A. Azab, 2021, Leukemia Research Reports)
- Clinical outcomes and safety of CD47-targeted immunotherapies across hematologic malignancies: a systematic review of monoclonal antibodies and fusion proteins in combination strategies(W. Mirza, Sundas Dadan, Eshan Ahmad, Ayesha Junaid, T. M. Satti, 2025, Clinical and Experimental Medicine)
- Anti-leukemic activity and tolerability of anti-human CD47 monoclonal antibodies(EC Pietsch, J Dong, R Cardoso, X Zhang, D Chin, 2017, Blood cancer …)
- A Phase 1 Study of TTI-621, a Novel Immune Checkpoint Inhibitor Targeting CD47, in Patients with Relapsed or Refractory Hematologic Malignancies(S. Ansell, Robert Chen, I. Flinn, M. Maris, O. O'Connor, L. Johnson, M. Irwin, Penka S. Petrova, R. Uger, E. Sievers, 2016, Blood)
- Harnessing Macrophages through the Blockage of CD47: Implications for Acute Myeloid Leukemia(Luciana Melo Garcia, F. Barabé, 2021, Cancers)
- Transfusion management in the era of magrolimab (Hu5F9‐G4), an anti‐CD47 monoclonal antibody therapy(Nirupama Singh, J. Staves, J. Storry, J. Dinoso, C. Renard, Parul Doshi, Lisa D S Johnson, Connie M. Westhoff, M. Murphy, 2023, Transfusion)
- Impact of magrolimab treatment in combination with azacitidine on red blood cells in patients with higher-risk myelodysplastic syndrome (HR-MDS).(James Yuhtyng Chen, Lisa Johnson, Kelly M. McKenna, Timothy Choi, Jiaqi Duan, Dongdong Feng, Jonathan M. Tsai, Natalia Garcia-Martin, Kavitha Sompalli, Roy L. Maute, Paresh Vyas, Ravindra Majeti, Chris H. Takimoto, Jie Liu, Giridharan Ramsingh, Mark P. Chao, Jens-Peter Volkmer, Irving L. Weissman, 2022, Journal of Clinical Oncology)
- Tolerability and efficacy of the first-in-class anti-CD47 antibody magrolimab combined with azacitidine in MDS and AML patients: Phase Ib results.(D. Sallman, M. A. Malki, A. Asch, D. Lee, S. Kambhampati, W. Donnellan, T. Bradley, P. Vyas, D. Jeyakumar, G. Marcucci, R. Komrokji, Joanna Van Elk, Ming Lin, R. Maute, J. Volkmer, C. Takimoto, M. Chao, N. Daver, 2020, Journal of Clinical Oncology)
- Safety of AK117, an anti-CD47 monoclonal antibody, in patients with advanced or metastatic solid tumors in a phase I study.(H. Gan, J. Coward, A. Mislang, R. Cosman, A. Nagrial, Xiaoping Jin, Baiyong Li, Z. Wang, K. Kwek, D. Xia, Yu Xia, 2021, Journal of Clinical Oncology)
- Immune checkpoint blockade in hematological malignancies: current state and future potential(Prateek Pophali, J. Varela, J. Rosenblatt, 2024, Frontiers in Oncology)
- Opportunities and challenges for anti-CD47 antibodies in hematological malignancies(Yilan Xu, Panruo Jiang, Zhenyan Xu, Haige Ye, 2024, Frontiers in Immunology)
- Data from Phase I Study of the CD47 Blocker TTI-621 in Patients with Relapsed or Refractory Hematologic Malignancies(Stephen M. Ansell, Michael B. Maris, Alexander M. Lesokhin, Robert W. Chen, Ian W. Flinn, Ahmed Sawas, Mark D. Minden, Diego Villa, Mary‐Elizabeth M. Percival, Anjali S. Advani, James M. Foran, Sarah McCue Horwitz, Matthew Mei, Jasmine Zain, Kerry J. Savage, Christiane Querfeld, Oleg E. Akilov, Lisa D. Johnson, Tina Catalano, Penka S. Petrova, Robert A. Uger, Eric L. Sievers, Anca Milea, Kathleen Roberge, Yaping Shou, Owen A. O’Connor, 2023, Clinical Cancer …)
- Magrolimab in Combination With Azacitidine in Patients With Higher-Risk Myelodysplastic Syndromes: Final Results of a Phase Ib Study(D. Sallman, M. A. Al Malki, A. Asch, E. Wang, J. Jurcic, T. Bradley, I. Flinn, D. Pollyea, S. Kambhampati, Tiffany N Tanaka, J. Zeidner, G. Garcia-Manero, D. Jeyakumar, R. Komrokji, J. Lancet, H. Kantarjian, L. Gu, Yajia Zhang, A. Tan, M. Chao, C. O'Hear, G. Ramsingh, I. Lal, P. Vyas, N. Daver, 2023, Journal of Clinical Oncology)
- Targeting CD47/SIRPα in Acute Myeloid Leukemia and Myelodysplastic Syndrome: Preclinical and Clinical Developments of Magrolimab.(F. Haddad, N. Daver, 2021, Journal of Immunotherapy and Precision Oncology)
- Data from Azacitidine, Venetoclax, and Magrolimab in Newly Diagnosed and Relapsed Refractory Acute Myeloid Leukemia: Phase Ib/II Study and Correlative Analysis(Naval Daver, Jayastu Senapati, Hagop M. Kantarjian, Bofei Wang, Patrick K. Reville, Sanam Loghavi, Musa Yılmaz, Courtney D. DiNardo, Tapan M. Kadia, Mhd Yousuf Yassouf, Abhishek Maiti, Sankalp Arora, Guillermo Montalban‐Bravo, Guilin Tang, Gautam Borthakur, Koji Sasaki, Naveen Pemmaraju, Joie Alvarez, Graciela M. Nogueras‐González, Jing Ning, Ghayas C. Issa, Marina Konopleva, Michael Andreeff, Farhad Ravandi, Guillermo Garcia‐Manero, Hussein A. Abbas, 2025, … Cancer Research)
- AML-113 Magrolimab Efficacy and Struggle for Approval in Acute Myeloid Leukemia: A Systematic Review(Ahmad Basharat, M. Amin, Sohaib Irfan, M. F. Khalid, S. Z. Warraich, M. Shahzad, 2024, Clinical Lymphoma Myeloma and Leukemia)
- Magrolimab in Combination with Rituximab + Chemotherapy in Patients with Relapsed or Refractory (R/R) Diffuse Large B-Cell Lymphoma (DLBCL)(J. Maakaron, A. Asch, L. Popplewell, G. Collins, I. Flinn, N. Ghosh, C. Keane, M. Ku, A. Mehta, M. Roschewski, C. O'Hear, Xuehan Ren, B. Villa, I. Lal, Sonali M. Smith, R. Advani, 2022, Blood)
实体瘤中的CD47表达关联、微环境依赖性与临床前疗效
这些研究考察CD47在胶质母细胞瘤、乳腺癌、卵巢癌、肺癌、结直肠癌及骨相关肿瘤中的表达、侵袭性、免疫浸润、预后和疾病进展关系,并通过敲低、抗体阻断或动物模型验证巨噬细胞吞噬和肿瘤抑制作用,整体体现实体瘤中以机制和临床前证据为主的研究特征。
- Anti-CD47 Treatment Stimulates Phagocytosis of Glioblastoma by M1 and M2 Polarized Macrophages and Promotes M1 Polarized Macrophages In Vivo(Michael Zhang, G. Hutter, S. Kahn, T. Azad, S. Gholamin, Chelsea Y Xu, Jie Liu, A. Achrol, Chase Richard, Pia Sommerkamp, M. Schoen, Melissa N. Mccracken, R. Majeti, I. Weissman, S. Mitra, S. Cheshier, 2016, PLOS ONE)
- Immune inactivation by CD47 expression predicts clinical outcomes and therapeutic responses in clear cell renal cell carcinoma patients.(Wen-Tao Jiang, Han Zeng, Zhao-xia Liu, Kaifeng Jin, Baoying Hu, Yuan Chang, Li Liu, Yu Zhu, Le Xu, Zewei Wang, Jianming Guo, Jiejie Xu, 2022, Urologic Oncology: Seminars and Original Investigations)
- CD47 Blockade Inhibits Tumor Progression through Promoting Phagocytosis of Tumor Cells by M2 Polarized Macrophages in Endometrial Cancer(Shenglan Gu, T. Ni, Jing Wang, Yao Liu, Qiong Fan, Yiwei Wang, Ting Huang, Y. Chu, Xiao Sun, Yudong Wang, 2018, Journal of Immunology Research)
- CD47 and CD68 expression in breast cancer is associated with tumor‐infiltrating lymphocytes, blood vessel invasion, detection mode, and prognosis(Ying Chen, T. Klingen, Hans Aas, E. Wik, L. Akslen, 2023, The Journal of Pathology: Clinical Research)
- CD47 promotes ovarian cancer progression by inhibiting macrophage phagocytosis(Ran Liu, Huiting Wei, Peng Gao, Hu Yu, Ke Wang, Zheng Fu, Bao-hui Ju, Meng Zhao, Shangwen Dong, Zhi-jun Li, Yifeng He, Yuting Huang, Z. Yao, 2017, Oncotarget)
- Association between CD47 expression, clinical characteristics and prognosis in patients with advanced non‐small cell lung cancer(O. Arrieta, A. Avilés-Salas, M. Orozco-Morales, N. Hernández-Pedro, A. Cardona, L. Cabrera-Miranda, P. Barrios-Bernal, G. Soca-Chafre, G. Cruz-Rico, María de Lourdes Peña-Torres, Guadalupe Moncada-Claudio, L. Ramírez-Tirado, 2020, Cancer Medicine)
- A comprehensive analysis of CD47 expression in various histological subtypes of soft tissue sarcoma: exploring novel opportunities for macrophage-directed treatments(I. Benešová, L. Capkova, A. Ozaniak, P. Pacas, K. Kopeckova, D. Galová, R. Lischke, T. Buchler, Z. Ozaniak Střížová, 2024, Journal of Cancer Research and Clinical Oncology)
- CD47-blocking immunotherapies stimulate macrophage-mediated destruction of small-cell lung cancer.(K. Weiskopf, N. Jahchan, P. Schnorr, Sandra Cristea, A. Ring, R. Maute, A. Volkmer, J. Volkmer, Jie Liu, Jing S. Lim, Dian Yang, G. Seitz, Thuyen N. Nguyen, Di Wu, K. Jude, Heather Guerston, Amira A. Barkal, F. Trapani, J. George, J. Poirier, Eric E. Gardner, Linde A. Miles, E. de Stanchina, Shane Lofgren, H. Vogel, M. Winslow, C. Dive, Roman K. Thomas, C. Rudin, M. van de Rijn, R. Majeti, K. Garcia, I. Weissman, J. Sage, 2016, Journal of Clinical Investigation)
- Phagocytosis Checkpoints in Glioblastoma: CD47 and Beyond(Amber Afzal, Zobia Afzal, Sophia Bizink, Amanda L. Davis, Sara Makahleh, Yara Mohamed, Salvatore J. Coniglio, 2024, Current Issues in …)
- Anticancer effects of anti-CD47 immunotherapy in vivo(Kristina Iribarren, A. Buqué, Laura Mondragón, W. Xie, Sarah Lévesque, Jonathan G. Pol, L. Zitvogel, O. Kepp, G. Kroemer, 2018, OncoImmunology)
- Anti-CD47 Antibody As a Targeted Therapeutic Agent for Human Lung Cancer and Cancer Stem Cells(Liang Liu, Lin Zhang, Lin F. Yang, Hui Li, Runmei Li, Jinpu Yu, Lili Yang, F. Wei, Cihui Yan, Qian Sun, Hua Zhao, Fan Yang, Hao Jin, Jian Wang, S. E. Wang, X. Ren, 2017, Frontiers in Immunology)
- Data from CD47 Regulates Bone Mass and Tumor Metastasis to Bone(Özge Uluçkan, Stephanie N. Becker, Hongju Deng, Wei Zou, Julie L. Prior, David Piwnica‐Worms, William A. Frazier, Katherine N. Weilbaecher, 2023, Cancer …)
实体瘤中的早期临床疗效与转化探索
本组专门收纳实体瘤患者中的早期临床研究,包括首次人体试验、Ib/Ib-II期和II期探索,重点用于评估CD47靶向治疗在不同实体瘤中的客观缓解、疾病控制、联合用药可行性及安全治疗窗。与血液瘤相比,这些研究通常样本量较小、疗效信号较弱且更依赖肿瘤类型和联合策略。
- Figure 1 from Phase II Clinical Trial and Preclinical Evaluation of a Novel CD47 Blockade Combination in Refractory Microsatellite-Stable Metastatic Colorectal Cancer(Robert W. Lentz, Julie Lang, Todd M. Pitts, Patrick J. Blatchford, Junxiao Hu, Kimberly R. Jordan, Adrie van Bokhoven, Stacey M. Bagby, Adrian T.A. Dominguez, Cameron A. Binns, Hannah R. Robinson, Nicole Balmaceda, Emily Baiyee, Alexis D. Leal, Sunnie S. Kim, S. Lindsey Davis, Christopher H. Lieu, Raymond Wadlow, Kristen Spencer, Aaron J. Scott, Patrick M. Boland, Howard S. Höchster, Wells A. Messersmith, 2025, Cancer research …)
- First-in-human phase I trial of the bispecific CD47 inhibitor and CD40 agonist Fc-fusion protein, SL-172154 in patients with platinum-resistant ovarian cancer(N. Lakhani, Daphne B. Stewart, D. Richardson, L. Dockery, Linda Van Le, J. Call, Fatima Rangwala, Guanfang Wang, Bo Ma, Simon Metenou, Jade Huguet, Elliot Offman, L. Pandite, E. Hamilton, 2025, Journal for ImmunoTherapy of Cancer)
- A phase Ib study of the anti-CD47 antibody magrolimab with the PD-L1 inhibitor avelumab (A) in solid tumor (ST) and ovarian cancer (OC) patients.(N. Lakhani, A. Patnaik, J. Liao, J. Moroney, D. Miller, G. Fleming, M. Axt, Yan V. Wang, B. Agoram, J. Volkmer, R. Maute, A. Schroeder, I. Chico, M. Chao, C. Takimoto, K. Moore, 2020, Journal of Clinical Oncology)
- A phase Ib/II study of the anti-CD47 antibody magrolimab with cetuximab in solid tumor and colorectal cancer patients.(G. Fisher, N. Lakhani, C. Eng, J. Hecht, J. Bendell, P. Philip, P. O'dwyer, B. Johnson, Adel Kardosh, Tina M Ippolito, Yan V. Wang, B. Agoram, J. Volkmer, R. Maute, I. Chico, M. Chao, C. Takimoto, A. Patnaik, 2020, Journal of Clinical Oncology)
- First-in-Human, First-in-Class Phase I Trial of the Anti-CD47 Antibody Hu5F9-G4 in Patients With Advanced Cancers.(B. Sikic, N. Lakhani, A. Patnaik, Sumit A Shah, S. Chandana, D. Rasco, A. Colevas, T. O'rourke, S. Narayanan, K. Papadopoulos, G. Fisher, V. Villalobos, Susan S. Prohaska, M. Howard, M. Beeram, M. Chao, B. Agoram, James Y Chen, Jie Huang, M. Axt, Jie Liu, J. Volkmer, R. Majeti, I. Weissman, C. Takimoto, D. Supan, H. Wakelee, Rhonda Aoki, M. Pegram, S. Padda, 2016, Journal of Clinical Oncology)
- A Phase 1b/2 Study of the Anti-CD47 Antibody Magrolimab with Cetuximab in Patients with Colorectal Cancer and Other Solid Tumors(C. Eng, N. Lakhani, P. Philip, Charles J. Schneider, B. Johnson, Adel Kardosh, Mark P. Chao, A. Patnaik, Fadi Shihadeh, Yeonju Lee, Kai Song, D.X. Jin, Yanan Huo, M. Howland, G. Fisher, J. R. Hecht, 2025, Targeted Oncology)
CD47阻断与抗体、免疫检查点及适应性免疫的联合协同
这些文献强调单独解除CD47“不要吃我”信号往往不足以形成持久抗肿瘤反应,重点讨论其与抗肿瘤抗体、化疗、PD-1/PD-L1或CTLA-4抑制、肿瘤来源外泌体及T细胞反应的协同。该组用于解释吞噬增强如何进一步转化为抗原呈递和适应性免疫激活。
- Just eat it: A review of CD47 and SIRP-α antagonism.(B. Oronsky, C. Carter, T. Reid, Franck Brinkhaus, S. Knox, 2020, Seminars in Oncology)
- Combined strategies for effective cancer immunotherapy with a novel anti-CD47 monoclonal antibody(Haiqing Ni, Lei Cao, Zhihai Wu, Li Wang, Shuaixiang Zhou, Xiaoli Guo, Yarong Gao, Hua Jing, Min Wu, Yang Liu, Jiazheng Ding, Pan Zhang, Ying Zhou, Bingliang Chen, Y. Xiong, Jiya Sun, B. Prinz, Hemanta Baruah, James C. Geoghegan, Michael Yu, Weiwei Wu, Junjian Liu, 2021, Cancer Immunology, Immunotherapy)
- CD47–SIRPα-targeted therapeutics: status and prospects(R. Maute, Jin Xu, I. Weissman, 2022, Immuno-Oncology and Technology)
- CD47 Blockade Triggers T cell-mediated Destruction of Immunogenic Tumors(Xiaojuan Liu, Yang Pu, Kyle R Cron, Liufu Deng, J. Kline, William A. Frazier, Hairong Xu, Hua Peng, Yang-Xin Fu, M. Xu, 2015, Nature Medicine)
- Elimination of tumor by CD47/PD-L1 dual-targeting fusion protein that engages innate and adaptive immune responses(Boning Liu, Huaizu Guo, Jin Xu, T. Qin, Qingcheng Guo, Nana Gu, Da-peng Zhang, Wei-zhu Qian, Jianxin Dai, S. Hou, Hao Wang, Ya-jun Guo, 2018, mAbs)
- Dual targeting of CTLA-4 and CD47 on Treg cells promotes immunity against solid tumors(A. Zhang, Zhenhua Ren, Kuo-Fu Tseng, Xiaojuan Liu, Huiyu Li, Changzheng Lu, Yueqi Cai, J. Minna, yang-xin fu, 2021, Science Translational Medicine)
- Exosome-SIRPα, a CD47 blockade increases cancer cell phagocytosis.(Eunee Koh, Eun Jung Lee, Gi-Hoon Nam, Yeonsun Hong, Eunji Cho, Yoosoo Yang, In‐San Kim, 2017, Biomaterials)
肿瘤选择性CD47药物、工程化巨噬细胞与新型递送技术
本组聚焦传统抗CD47单抗之外的治疗窗优化和效应细胞工程,包括酸性肿瘤微环境激活抗体、肿瘤选择性SIRPα/CD47阻断、CAR巨噬细胞、SIRPα基因改造、促炎极化、纳米抗体以及HER2/CD47定向巨噬细胞。共同目标是提高肿瘤部位选择性、增强吞噬能力并降低红细胞等正常组织相关毒性。
- A pH-dependent anti-CD47 antibody that selectively targets solid tumors and improves therapeutic efficacy and safety(Yulu Li, Juan Liu, Wei Chen, Wen Wang, Fang Yang, Ximing Liu, Yao Sheng, Kaixin Du, M. He, Xueyuan Lyu, Huiyu Li, Linlin Zhao, Zhizhong Wei, Fengchao Wang, Sanduo Zheng, J. Sui, 2023, Journal of Hematology & Oncology)
- Tumor-selective blockade of CD47 signaling with a CD47/PD-L1 bispecific antibody for enhanced anti-tumor activity and limited toxicity(Yan Wang, Haiqing Ni, Shuaixiang Zhou, K. He, Yarong Gao, Weiwei Wu, Min Wu, Zhihai Wu, X. Qiu, Ying Zhou, Bingliang Chen, D. Pan, Chenrong Huang, Mingzhu Li, Yicong Bian, Min Yang, L. Miao, Junjian Liu, 2020, Cancer Immunology, Immunotherapy)
- Engineering TME-activated CD47-specific CAR macrophage via Arg1 promoter for safe and effective solid tumor immunotherapy(Fuyu Du, Mei-feng Jiang, Jingjing Qiu, Anna He, Min Liu, Yuan Xu, Xiaocheng Gong, Xinruo Wang, Haotian Zhang, Xianghan Zhang, Xinyi Xu, Lili Lu, Zhongliang Wang, Pengbo Ning, 2025, Journal for ImmunoTherapy of Cancer)
- Proinflammatory polarization strongly reduces human macrophage in vitro phagocytosis of tumor cells in response to CD47 blockade(Kristian W Antonsen, Anne G Jensen, M. Carstensen, L. N. Nejsum, B. Sørensen, A. Etzerodt, Søren K. Moestrup, Holger J Møller, 2024, European Journal of Immunology)
- Enhancing macrophage phagocytosis of cancers by disrupting the SIRPα/CD47 signaling axis and targeting MUC1 antigen(Saitong Muneekaew, Pasut Sasithong, Koollawat Chupradit, Kritayaporn Saiprayong, Thunchanok Nuchphongsai, Methichit Wattanapanitch, 2025, The FEBS Journal)
- Targeting macrophages: a novel treatment strategy in solid tumors(Mengmeng Liu, Lina Liu, Yongping Song, Wei Li, Linping Xu, 2022, Journal of Translational Medicine)
- Development and Characterization of Nanobody-Derived CD47 Theranostic Pairs in Solid Tumors(You Zhang, Di Zhang, Shuxian An, Qiufang Liu, Chen Liang, Juan Li, Ping Liu, Changfeng Wu, G. Huang, Weijun Wei, Jianju Liu, 2023, Research)
- The application of HER2 and CD47 CAR-macrophage in ovarian cancer(Yizhao Chen, Xiangling Zhu, Hanze Liu, Cunzhi Wang, Yu Chen, Huihui Wang, Yilong Fang, Xuming Wu, Yuting Xu, Chunhua Li, Xinyue Lv, Jing-Yi Huang, Xintong Han, Ruilin Li, Wenming Hong, Zhiying Yu, Wei Wei, Jiajie Tu, 2023, Journal of Translational Medicine)
- Engineering macrophages to phagocytose cancer cells by blocking the CD47/SIRPɑ axis(Hongcheng Yang, Ruoyang Shao, Hongxin Huang, Xinlong Wang, Zhili Rong, Ying Lin, 2019, Cancer Medicine)
- Advances in the study of CD47‐based bispecific antibody in cancer immunotherapy(Binglei Zhang, Wei Li, Dandan Fan, Wenzhi Tian, Jian Zhou, Zhenyu Ji, Yongping Song, 2022, Immunology)
- Engineering macrophages to eat cancer: from “marker of self” CD47 and phagocytosis to differentiation(Cory M. Alvey, D. Discher, 2017, Journal of Leukocyte Biology)
血液瘤与实体瘤疗效差异、临床失败及转化挑战
这些文献从Meta分析、临床开发综述、重复性研究和转化评估角度,整合CD47靶向治疗的总体疗效、安全性与研发成熟度。重点讨论血液瘤早期积极信号与后续试验受挫之间的差异、实体瘤模型外推局限、红细胞表达导致的贫血和输血问题、Fc效应及治疗选择性不足,为两类肿瘤的疗效横向比较提供批判性框架。
- Targeting the CD47/SIRPα pathway in malignancies: recent progress, difficulties and future perspectives(Chenyang Jiang, Hao Sun, Zhongxin Jiang, Wenzhi Tian, S. Cang, Jifeng Yu, 2024, Frontiers in Oncology)
- Opportunities and challenges of CD47-targeted therapy in cancer immunotherapy(Qiuqiang Chen, Xuejun Guo, Wenxue Ma, 2023, Oncology Research)
- Macrophage checkpoint blockade: results from initial clinical trials, binding analyses, and CD47-SIRPα structure–function(A. Jalil, Jason C. Andrechak, D. Discher, 2020, Antibody Therapeutics)
- Replication Study: The CD47-signal regulatory protein alpha (SIRPa) interaction is a therapeutic target for human solid tumors(S. Horrigan, Elizabeth Stephen R Nicole Timothy M Iorns Williams Perfito Errington, 2017, eLife)
- Survival and Clinicopathological Significance of CD47 in Human Solid Tumors: An Updated Systematic Reviews and Meta‐Analysis(Yongzhi Ye, Meiqiong Chen, F. Ji, Suicai Mi, Zhixiong Chen, Xiaowei Wu, Qiurong He, Xiaodong Liu, 2025, Cancer Reports)
- Inhibition of the CD47-SIRPα axis for cancer therapy: A systematic review and meta-analysis of emerging clinical data(Jiang Son, Rodney Cheng-En Hsieh, Heather Y. Lin, K. Krause, Ying Yuan, A. Biter, J. Welsh, M. Curran, D. Hong, 2022, Frontiers in Immunology)
- Targeting CD47 for cancer immunotherapy(Zhongxing Jiang, Hao Sun, Jifeng Yu, Wenzhi Tian, Yongping Song, 2021, Journal of Hematology & Oncology)
- Targeting CD47: the achievements and concerns of current studies on cancer immunotherapy.(Yuting Huang, Yuchi Ma, Peng Gao, Z. Yao, 2017, Journal of Thoracic Disease)
- CD47‐SIRPα blocking‐based immunotherapy: Current and prospective therapeutic strategies(R. Bouwstra, T. van Meerten, E. Bremer, 2022, Clinical and Translational Medicine)
合并后形成八个相互并列的方向:首先建立CD47–SIRPα吞噬检查点的机制和总体治疗图谱;其次分别呈现血液瘤的疾病生物学、临床前依据及较成熟的临床联合治疗证据;再次将实体瘤区分为表达与临床前疗效研究,以及独立的早期临床探索;随后讨论CD47阻断与适应性免疫的协同,以及肿瘤选择性药物和工程化巨噬细胞等新技术;最后以跨瘤种疗效、安全性、临床失败和模型外推限制进行综合比较。总体而言,血液瘤拥有更丰富的人体临床数据和联合治疗信号,而实体瘤疗效更依赖肿瘤微环境、联合免疫策略和肿瘤选择性设计。
总计 96 篇相关文献
Extensive clinical and experimental evidence suggests that macrophages play a crucial role in cancer immunotherapy. Cluster of differentiation (CD) 47, which is found on both healthy and malignant cells, regulates macrophage-mediated phagocytosis by sending a "don't eat me" signal to the signal regulatory protein alpha (SIRPα) receptor. Increasing evidence demonstrates that blocking CD47 interaction with SIRPα can enhance cancer cell clearance by macrophages. Additionally, inhibition of CD47/SIRPα interaction can increase antigen cross-presentation, leading to T-cell priming and an activated adaptive antitumor immune response. Therefore, inhibiting CD47/SIRPα axis has a significant impact on tumor immunotherapy. Studies on CD47 monoclonal antibodies are at the forefront of research, and impressive results have been obtained. Nevertheless, hematotoxicity, especially anemia, has become the most common adverse effect of the CD47 monoclonal antibody. More specific targeted drugs ( i.e. , bispecific antibodies, SIRPα/Fc fusion protein antibodies, and small-molecule inhibitors) have been developed to reduce hematotoxicity. Here, we review the present usage of CD47 antagonists for the treatment of lymphomas and hematologic neoplasms from the perspectives of structure, function, and clinical trials, including a comprehensive overview of the drugs in development.
In recent years, immunotherapies have been clinically investigated in AML and other myeloid malignancies. While most of these are focused on stimulating the adaptive immune system (including T cell checkpoint inhibitors), several key approaches targeting the innate immune system have been identified. Macrophages are a key cell type in the innate immune response with CD47 being identified as a dominant macrophage checkpoint. CD47 is a “do not eat me” signal, overexpressed in myeloid malignancies that leads to tumor evasion of phagocytosis by macrophages. Blockade of CD47 leads to engulfment of leukemic cells and therapeutic elimination. Pre-clinical data has demonstrated robust anti-cancer activity in multiple hematologic malignancies including AML and myelodysplastic syndrome (MDS). In addition, clinical studies have been underway with CD47 targeting agents in both AML and MDS as monotherapy and in combination. This review will describe the role of CD47 in myeloid malignancies and pre-clinical data supporting CD47 targeting. In addition, initial clinical data of CD47 targeting in AML/MDS will be reviewed, and including the first-in-class anti-CD47 antibody magrolimab.
<div>AbstractPurpose:<p>TTI-621 (SIRPα-IgG1 Fc) is a novel checkpoint inhibitor that activates antitumor activity by blocking the CD47 “don't eat me” signal. This first-in-human phase I study (NCT02663518) evaluated the safety and activity of TTI-621 in relapsed/refractory (R/R) hematologic malignancies.</p>Patients and Methods:<p>Patients with R/R lymphoma received escalating weekly intravenous TTI-621 to determine the maximum tolerated dose (MTD). During expansion, patients with various malignancies received weekly single-agent TTI-621 at the MTD; TTI-621 was combined with rituximab in patients with B-cell non-Hodgkin lymphoma (B-NHL) or with nivolumab in patients with Hodgkin lymphoma. The primary endpoint was the incidence/severity of adverse events (AEs). Secondary endpoint included overall response rate (ORR).</p>Results:<p>Overall, 164 patients received TTI-621: 18 in escalation and 146 in expansion (rituximab combination, <i>n</i> = 35 and nivolumab combination, <i>n</i> = 4). On the basis of transient grade 4 thrombocytopenia, the MTD was determined as 0.2 mg/kg; 0.1 mg/kg was evaluated in combination cohorts. AEs included infusion-related reactions, thrombocytopenia, chills, and fatigue. Thrombocytopenia (20%, grade ≥3) was reversible between doses and not associated with bleeding. Transient thrombocytopenia that determined the initial MTD may not have been dose limiting. The ORR for all patients was 13%. The ORR was 29% (2/7) for diffuse large B-cell lymphoma (DLBCL) and 25% (8/32) for T-cell NHL (T-NHL) with TTI-621 monotherapy and was 21% (5/24) for DLBCL with TTI-621 plus rituximab. Further dose optimization is ongoing.</p>Conclusions:<p>TTI-621 was well-tolerated and demonstrated activity as monotherapy in patients with R/R B-NHL and T-NHL and combined with rituximab in patients with R/R B-NHL.</p></div>
CD47, or integrin-associated protein, is a cell surface ligand expressed in low levels by nearly all cells of the body. It plays an integral role in various immune responses as well as autoimmunity, by sending a potent “don’t eat me” signal to prevent phagocytosis. A growing body of evidence demonstrates that CD47 is overexpressed in various hematological malignancies and its interaction with SIRPα on the phagocytic cells prevents phagocytosis of cancer cells. Additionally, it is expressed by different cell types in the tumor microenvironment and is required for establishing tumor metastasis. Overexpression of CD47 is thus often associated with poor clinical outcomes. CD47 has emerged as a potential therapeutic target and is being investigated in various preclinical studies as well as clinical trials to prove its safety and efficacy in treating hematological neoplasms. This review focuses on different therapeutic mechanisms to target CD47, either alone or in combination with other cell surface markers, and its pivotal role in impairing tumor growth and metastatic spread of various types of hematological malignancies.
Hematological malignancies express high levels of CD47 as a mechanism of immune evasion. CD47-SIRPα triggers a cascade of events that inhibit phagocytosis. Preclinical research supports several models of antibody-mediated blockade of CD47-SIRPα resulting in cell death signaling, phagocytosis of cells bearing stress signals, and priming of tumor-specific T cell responses. Four different antibody molecules designed to target the CD47-SIRPα interaction in malignancy are currently being studied in clinical trials: Hu5F9-G4, CC-90002, TTI-621, and ALX-148. Hu5F9-G4, a humanized anti-CD47 blocking antibody is currently being studied in four different Phase I trials. These studies may lay the groundwork for therapeutic bispecific antibodies. Bispecific antibody (CD20-CD47SL) fusion of anti-CD20 (Rituximab) and anti-CD47 also demonstrated a synergistic effect against lymphoma in preclinical models. This review summarizes the large body of preclinical evidence and emerging clinical data supporting the use of antibodies designed to target the CD47-SIRPα interaction in leukemia, lymphoma and multiple myeloma.
CD47 is a cell-surface ligand that is overexpressed in various malignancies and that binds to SIRPα on macrophages to promote tumor cell evasion of phagocytosis. Blocking the CD47-SIRPα axis can increase the phagocytosis of macrophages to exert antitumor effects. CD47-based immunotherapy is a current research focus. The combination of anti-CD47 antibodies with other drugs has shown encouraging response rates in patients with hematological tumors, but side effects also occur. Bispecific antibodies and SIRPα/Fc fusion proteins appear to balance the efficacy and safety of treatment. We review the latest clinical research advances and discuss the opportunities and challenges associated with CD47-based immunotherapy for hematological malignancies.
Emerging evidence indicates that the detection and clearance of cancer cells via phagocytosis induced by innate immune checkpoints play significant roles in tumor-mediated immune escape. The most well-described innate immune checkpoints are the “don’t eat me” signals, including the CD47/signal regulatory protein α axis (SIRPα), PD-1/PD-L1 axis, CD24/SIGLEC-10 axis, and MHC-I/LILRB1 axis. Molecules have been developed to block these pathways and enhance the phagocytic activity against tumors. Several clinical studies have investigated the safety and efficacy of CD47 blockades, either alone or in combination with existing therapy in hematological malignancies, including myelodysplastic syndrome (MDS), acute myeloid leukemia (AML), and lymphoma. However, only a minority of patients have significant responses to these treatments alone. Combining CD47 blockades with other treatment modalities are in clinical studies, with early results suggesting a synergistic therapeutic effect. Targeting macrophages with bispecific antibodies are being explored in blood cancer therapy. Furthermore, reprogramming of pro-tumor macrophages to anti-tumor macrophages, and CAR macrophages (CAR-M) demonstrate anti-tumor activities. In this review, we elucidated distinct types of macrophage-targeted strategies in hematological malignancies, from preclinical experiments to clinical trials, and outlined potential therapeutic approaches being developed.
Much progress has been made in targeting CD47 for cancer immunotherapy in solid tumors (ST) and hematological malignancies. We summarized the CD47-related clinical research and analyzed the research trend both in the USA and in China. As of August 28, 2021, there are a total 23 related therapeutic agents with 46 clinical trials in the NCT registry platform. Among these trials, 29 are in ST, 14 in hematological malignancies and 3 in both solid tumor and hematological malignancy. The ST include gastric cancer, head and neck squamous cell carcinoma and leiomyosarcoma, while the hematological malignancies include non-Hodgkin's lymphoma, acute myeloid leukemia, myelodysplastic syndrome, multiple myeloma and chronic myeloid leukemia. Majority of the CD47-related clinical trials are at the early phases, such as 31 at phase I, 14 at phase II and 1 at phase III in the USA and 9, 6, 1, in China, respectively. The targets and spectrums of mechanism of action include 26 with mono-specific and 20 with bi-specific targets in the USA and 13 with mono-specific and 3 with bi-specific targets in China. The new generation CD47 antibodies have demonstrated promising results, and it is highly hopeful that some candidate agents will emerge and make into clinical application to meet the urgent needs of patients.
The CD47-SIRPα axis is a key innate immune checkpoint that enables tumor cells to evade macrophage-mediated clearance. CD47 is overexpressed in a spectrum of hematologic malignancies, contributing to poor outcomes, particularly in high-risk biological subgroups. While early clinical trials of CD47 blockade demonstrated limited efficacy as monotherapy, combination strategies have emerged as promising approaches. This systematic review synthesizes the current clinical evidence on the outcomes and safety of CD47-targeted monoclonal antibodies and fusion proteins administered in combination with regimens for hematologic malignancies. A comprehensive search of PubMed/MEDLINE, Embase, Cochrane Library, and clinical trial registries was conducted until May 2025. Prospective interventional trials evaluating CD47-targeted agents in combination with systemic therapies for hematologic malignancies were included. The outcomes of interest were response rate, survival, and safety. The methodological quality was assessed using the MINORS. The protocol for this review was prospectively registered in the PROSPERO International Prospective Register of Systematic Reviews (registration number: CRD420251071435). Nine prospective clinical trials enrolling over 800 patients were included in this study. In patients with higher-risk myelodysplastic syndromes (MDS), the combination of magrolimab and azacitidine achieved an overall response rate (ORR) of 63%, with a complete remission (CR) rate exceeding 30%, including in patients with TP53-mutant disease. In untreated AML, the ORR reached 65%, with durable responses observed in patients with adverse cytogenetic mutations. In relapsed/refractory diffuse large B-cell lymphoma (DLBCL), combinations of CD47 blockade with anti-CD20 antibodies ± chemotherapy or novel immunotherapeutics achieved an ORR of 33–52%, with CR rates of up to 33%. In indolent non-Hodgkin lymphoma, magrolimab plus rituximab produced an ORR of 74% and a CR of 39%, including in rituximab-refractory patients. Preliminary data on multiple myeloma have demonstrated encouraging activity in triple-class refractory diseases. Across malignancies, CD47-targeted combinations were well tolerated, with manageable anemia and no unexpected toxicity. CD47-targeted combinations demonstrate encouraging early phase efficacy and manageable safety in hematologic malignancies, with signals of benefit in higher-risk MDS, TP53-mutant AML, relapsed/refractory DLBCL, and rituximab-refractory iNHL. However, recent Phase III trials in newly diagnosed AML Daver et al. [27], and Zeidner et al. [26] did not confirm this benefit, underscoring that CD47 blockade remains investigational and requires validation in rigorously designed randomized studies.
… -binding domain of wild type SIRPα and human IgG1 which is undergoing phase I clinical trials in hematologic malignancies and solid tumors (NCT02663518 and NCT02890368). …
Simple Summary The immune system is the first line of protection against infected and tumor cells. Macrophages are specialized immune cells that recognize these abnormal cells and eliminate them by a mechanism called phagocytosis. All normal cells express a protein called CD47 or “don’t eat me signal” to prevent their elimination through phagocytosis. Cancer cells, including leukemic cells, express higher levels of CD47 as a mechanism of protection against macrophage phagocytosis. CD47 blockade leads to an increase in phagocytosis of leukemic cells and better control of the disease. In this review, we explore CD47 function in normal conditions, its role in acute myeloid leukemia progression, and possible ways to block CD47 to enhance elimination of the leukemic cells improving the therapeutic options for patients with acute myeloid leukemia. Abstract CD47 is a surface membrane protein expressed by all normal tissues. It is the so-called “don’t eat me signal” because it protects the cells against phagocytosis. The CD47 interacts with the signal regulatory protein alpha (SIRPα) on the surface of macrophages, leading to downstream inhibitory signaling that dampens phagocytic capacity. Since macrophages exert immune surveillance against cancers, cancer cells overexpress CD47 to defend themselves against phagocytosis. Acute myeloid leukemia (AML) is a cancer of hematopoietic stem/progenitor cells (HSPC), and similar to other types of cancers, leukemic blasts show enhanced levels of CD47. In patients with AML, CD47 has been associated with a higher disease burden and poor overall survival. Blockage of CD47-SIRPα signaling leads to improved phagocytosis of AML cells and better overall survival in xenograft models. However, the introduction of a pro-phagocytic signal is needed to induce greater phagocytic capacity. These pro-phagocytic signals can be either Fc receptor stimulants (such as monoclonal antibodies) or natural pro-phagocytic molecules (such as calreticulin). Based on these pre-clinical findings, various clinical trials investigating the blockade of CD47-SIRPα interaction have been designed as monotherapy and in combination with other anti-leukemic agents. In this review, we will discuss CD47 biology, highlight its implications for AML pathophysiology, and explore the potential clinical translation of disrupting CD47-SIRPα to treat patients with AML.
CD47 is a surface glycoprotein expressed by host cells to impede phagocytosis upon binding to macrophage SIRPα, thereby represents an immune checkpoint known as the “don't-eat-me” signal. However, accumulating evidence shows that solid and hematologic tumor cells overexpress CD47 to escape immune surveillance. Thus, targeting the CD47-SIRPa axis by limiting the activity of this checkpoint has emerged as a key area of research. In this review, we will provide an update on the landscape of CD47-targeting antibodies for hematological malignancies, including monoclonal and bi-specific antibodies, with a special emphasis on agents in clinical trials and novel approaches to overcome toxicity.
Purpose: The ubiquitously expressed transmembrane glycoprotein CD47 delivers an anti-phagocytic (do not eat) signal by binding signal-regulatory protein α (SIRPα) on macrophages. CD47 is overexpressed in cancer cells and its expression is associated with poor clinical outcomes. TTI-621 (SIRPαFc) is a fully human recombinant fusion protein that blocks the CD47–SIRPα axis by binding to human CD47 and enhancing phagocytosis of malignant cells. Blockade of this inhibitory axis using TTI-621 has emerged as a promising therapeutic strategy to promote tumor cell eradication. Experimental Design: The ability of TTI-621 to promote macrophage-mediated phagocytosis of human tumor cells was assessed using both confocal microscopy and flow cytometry. In vivo antitumor efficacy was evaluated in xenograft and syngeneic models and the role of the Fc region in antitumor activity was evaluated using SIRPαFc constructs with different Fc tails. Results: TTI-621 enhanced macrophage-mediated phagocytosis of both hematologic and solid tumor cells, while sparing normal cells. In vivo, TTI-621 effectively controlled the growth of aggressive AML and B lymphoma xenografts and was efficacious in a syngeneic B lymphoma model. The IgG1 Fc tail of TTI-621 plays a critical role in its antitumor activity, presumably by engaging activating Fcγ receptors on macrophages. Finally, TTI-621 exhibits minimal binding to human erythrocytes, thereby differentiating it from CD47 blocking antibodies. Conclusions: These data indicate that TTI-621 is active across a broad range of human tumors. These results further establish CD47 as a critical regulator of innate immune surveillance and form the basis for clinical development of TTI-621 in multiple oncology indications. Clin Cancer Res; 23(4); 1068–79. ©2016 AACR.
… of the ovary, breast, colon, bladder, prostate, brain, and liver, as well as in other hematological malignancies such as NHL, chronic myeloid leukemia in blast crises, acute lymphoblastic …
… Taken together, our findings suggest that targeting CD47 is an attractive therapeutic anti-cancer approach. However, the anti-cancer activity observed with anti-CD47 mAbs is Fc effector …
Malignant cells are known to evade immune surveillance by engaging immune checkpoints which are negative regulators of the immune system. By restoring the T-lymphocyte mediated anti-tumor effect, immune checkpoint inhibitors (ICI) have revolutionized the treatment of solid tumors but have met rather modest success in hematological malignancies. Currently, the only FDA approved indications for ICI therapy are in classic hodgkin lymphoma and primary mediastinal B cell lymphoma. Multiple clinical trials have assessed ICI therapy alone and in combination with standard of care treatments in other lymphomas, plasma cell neoplasms and myeloid neoplasms but were noted to have limited efficacy. These trials mostly focused on PD-1/PDL-1 and CTLA-4 inhibitors. Recently, there has been an effort to target other T-lymphocyte checkpoints like LAG-3, TIM-3, TIGIT along with improving strategies of PD-1/PDL-1 and CTLA-4 inhibition. Drugs targeting the macrophage checkpoint, CD47, are also being tested. Long term safety and efficacy data from these ongoing studies are eagerly awaited. In this comprehensive review, we discuss the mechanism of immune checkpoint inhibitors, the key takeaways from the reported results of completed and ongoing studies of these therapies in the context of hematological malignancies.
Cluster of differentiation 47 (CD47) (also known as integrin-associated protein) is a ubiquitously expressed glycoprotein of the immunoglobulin superfamily that plays a critical role in self-recognition. Various solid and hematologic cancers exploit CD47 expression in order to evade immunological eradication, and its overexpression is clinically correlated with poor prognoses. One essential mechanism behind CD47-mediated immune evasion is that it can interact with signal regulatory protein-alpha (SIRPα) expressed on myeloid cells, causing phosphorylation of the SIRPα cytoplasmic immunoreceptor tyrosine-based inhibition motifs and recruitment of Src homology 2 domain-containing tyrosine phosphatases to ultimately result in delivering an anti-phagocytic—“don’t eat me”—signal. Given its essential role as a negative checkpoint for innate immunity and subsequent adaptive immunity, CD47-SIRPα axis has been explored as a new target for cancer immunotherapy and its disruption has demonstrated great therapeutic promise. Indeed, CD47 blocking antibodies have been found to decrease primary tumor size and/or metastasis in various pre-clinical models. In this review, we highlight the various functions of CD47, discuss anti-tumor responses generated by both the innate and adaptive immune systems as a consequence of administering anti-CD47 blocking antibody, and finally elaborate on the clinical potential of CD47 blockade. We argue that CD47 is a checkpoint molecule for both innate and adaptive immunity for tumor evasion and is thus a promising target for cancer immunotherapy.
CD47-SIRPα interaction acts as a “don’t eat me” signal and is exploited by cancer to downregulate innate and adaptive immune surveillance. There has been intense interest to develop a mechanism of blockade, and we aimed to analyze the emerging data from early clinical trials. We performed a systematic review and meta-analysis of relevant databases and conference abstracts including clinical trials using CD47 and/or SIRPα inhibitors in cancer treatment. Nonlinear mixed models were applied for comparison of response and toxicity. We retrieved 317 articles, 24 of which were eligible. These included 771 response-evaluable patients with hematologic (47.1%) and solid tumors (52.9%). Of these, 6.4% experienced complete response, 10.4% partial response, and 26.1% stable disease for a 16.7% objective response rate (ORR), 42.8% disease control rate, and 4.8-month median duration of response. ORR was significantly higher for hematologic cancers (25.3%) than solid cancers (9.1%, p=0.042). Comparing by mechanism, seven CD47 monoclonal antibodies (mAbs) and six selective SIRPα blockers were given alone or combined with checkpoint inhibitors, targeted therapy, and/or chemotherapy. In solid cancers, selective SIRPα blockade showed a higher ORR (16.2%) than anti-CD47 mAbs (2.8%, p=0.079), which was significant for combination therapies (ORR 28.3% vs 3.0%, respectively, p=0.010). Responses were seen in head and neck, colorectal, endometrial, ovarian, hepatocellular, non-small cell lung, and HER2+gastroesophageal cancers. Dose-limiting toxicity (DLT) was seen in 3.3% of patients (5.4% anti-CD47 mAbs, 1.4% selective SIRPα blockers; p=0.01). The frequency of treatment-related adverse events (TRAEs) ≥grade 3 was 18.0%, similar between the two groups (p=0.082), and mostly laboratory abnormalities. For anti-CD47 mAbs, the most common toxicities included grade 1-2 fatigue (27.2%), headache (21.0%), and anemia (20.5%). For selective SIRPα blockers, these included grade 1-2 infusion reaction (23.1%) and fatigue (15.8%). Anti-CD47 mAbs were significantly more likely than selective SIRPα blockers to cause grade 1-2 fever, chills, nausea/vomiting, headache, and anemia. In conclusion, combination therapies using selective SIRPα blockade had higher response rates in solid tumors than anti-CD47 mAb combinations. Hematologic changes were the main TRAEs, and selective SIRPα blockers seemed to have a better grade 1-2 toxicity profile. Treatment was well-tolerated with minimal DLTs.
Abstract Background The CD47‐signal regulatory protein alpha (SIRPα) ‘don't eat me’ signalling axis is perhaps the most prominent innate immune checkpoint to date. However, from initial clinical trials, it is evident that monotherapy with CD47‐SIRPα blocking has a limited therapeutic effect at the maximum tolerated dose. Furthermore, treatment is associated with severe side effects, most notably anaemia, that are attributable to the ubiquitous expression of CD47. Nevertheless, promising clinical responses have been reported upon combination with the tumour‐targeting antibody rituximab or azacytidine, although toxicity issues still hamper clinical application. Main body Here, we discuss the current state of CD47‐SIRPα blocking therapy with a focus on limitations of current strategies, such as depletion of red blood cells. Subsequently, we focus on innovations designed to overcome these limitations. These include novel antibody formats designed to selectively target CD47 on tumour cells as well as tumour‐targeted bispecific antibodies with improved selectivity. In addition, the rationale and outcome of combinatorial approaches to improve the therapeutic effect of CD47 blockade are discussed. Such combinations include those with tumour‐targeted opsonizing antibodies, systemic therapy, epigenetic drugs, other immunomodulatory T‐cell‐targeted therapeutics or dual immunomodulatory CD47 bispecific antibodies. Conclusion With these advances in the design of CD47‐SIRPα‐targeting therapeutic strategies and increasing insight into the mechanism of action of this innate checkpoint, including the role of adaptive immunity, further advances in the clinical application of this checkpoint can be anticipated.
Introduction The phagocytic activity of macrophages is regulated by activating ("eat") and inhibitory ("do not eat") signals. Under normal physiologic conditions, the ubiquitously expressed cell surface antigen CD47 suppresses phagocytosis by binding to signal regulatory protein alpha (SIRPα) on macrophages. It is hypothesized that overexpression of CD47 by cancer cells enables immune evasion. Blockade of CD47 results in phagocytosis of cells bearing "eat" signals and primes effective anti-tumor T cell responses. TTI-621(SIRPαFc)is a soluble recombinant fusion proteinconsisting of the CD47 binding domain of human SIRPα linked to the Fc region of human IgG1designed to both: 1) block the CD47 "do not eat" signal, and 2) engagemacrophage Fcγ receptors with IgG1 Fc to enhance phagocytosis and antitumor activity.In vitro, TTI-621 binds to normal human cells, platelets, a wide range of human primary tumor cells and cell lines, but only minimally to human erythrocytes. TTI-621 selectively promotes macrophage-mediated phagocytosis of hematologic and solid tumors over that observed with normal monocytes, and exhibits antitumor activity in xenograft mouse models. Methods A first-in-human, phase 1, open label, multicenter study (NCT02663518) is ongoing to evaluate the safety and tolerability, and to identify the maximum tolerated dose of TTI-621 in patients (pts) with relapsed/refractory lymphomas using a 3+3 dose-escalation design. Once the optimal dose has been determined in the dose-escalation phase, multiple expansion cohorts will be enrolled comprising pts with various relapsed/refractory hematologic malignancies. Assessments include peripheral receptor occupancy, serum cytokine levels, pharmacokinetics, and immunogenicity. Eligible pts are adults with advanced, measurable, hematologic malignancies, who have progressed on standard anticancer therapy or for whom no other approved therapy exists. Pts are required to have baseline hemoglobin ≥10 g/dL, platelets ≥75 x 109/L, and be transfusion- and growth factor-independent. Pts with cutaneous T-cell lymphoma, high-grade lymphoma, and acute promyelocytic leukemia are excluded. TTI-621 is administered IV once weekly at protocol-defined doses. Treatment may continue until disease progression or unacceptable toxicity. Results Eleven pts (6M/5F, age 21-72 years) have been enrolled as of the data cut-off date of 28 July 2016. Lymphoma diagnoses included Hodgkin (N=4), diffuse large B cell (DLBCL) (N=4), follicular (N=2), and mantle cell (N=1). Treatment has been reasonably well tolerated by pts in the 0.05 mg/kg (N=3), 0.1 mg/kg (N=3), and 0.3 mg/kg (N=5) dose cohorts. The majority of pts experienced mild to moderate infusion-related events. Hemoglobin levels have remained stable or improved with treatment. Transient, dose-dependent decreases in platelets and leukocytes occurred in the hours following infusion in all pts without clinical sequelae. The 0.3 mg/kg dose was associated with reversible, dose-limiting toxicity (DLT) in 2 of 5 pts: one pt with G3 elevated ALT/AST and G4 platelet count, and a second pt with G4 platelet count who was transfused. Dosing at 0.2 mg/kg is now being explored. Aside from the DLTs and 2 non-DLT G3 platelet count (all in 0.3 mg/kg cohort), treatment-related adverse events have been ≤G2. CD47 receptor occupancy increased with each cohort, peaking at the end of infusion and remaining detectable 24 hrs after the 1st infusion in Cohort 3. Macrophage-associated cytokines, including MIP-1α and MIP-1β, increased during the 4 hrs after infusion. Six pts continue to receive weekly infusions of TTI-621; one pt with DLBCL and another with FL have experienced progression-free intervals of 161 and 70 days, respectively. Conclusions TTI-621 has been reasonably well tolerated. Pts retained stable hemoglobin levels consistent with minimal drug binding to erythrocytes. Manageable, dose-dependent thrombocytopenia was likely due to increased phagocytic clearance of platelets. TTI-621 binds to CD47+ cells in a dose-dependent manner, potently yielding increases in cytokines associated with augmented phagocytic activity. Enrollment continues at the 0.2 mg/kg dose level; updated data will be provided at the meeting. Figure 1 Figure 1. Figure 2 Figure 2. Disclosures Ansell: BMS, Seattle Genetics, Merck, Celldex and Affimed: Research Funding. Chen:Seattle Genetics: Consultancy, Honoraria, Research Funding, Speakers Bureau; Millenium: Consultancy, Research Funding, Speakers Bureau; Genentech: Consultancy, Speakers Bureau; Merck: Consultancy, Research Funding. Flinn:Janssen: Research Funding; Pharmacyclics LLC, an AbbVie Company: Research Funding; Gilead Sciences: Research Funding; ARIAD: Research Funding; RainTree Oncology Services: Equity Ownership. O'Connor:Bristol Myers Squibb: Research Funding; Spectrum: Research Funding; TG Therapeutics: Research Funding; Mundipharma: Membership on an entity's Board of Directors or advisory committees; Celgene: Research Funding; Seattle Genetics: Research Funding; Bristol Myers Squibb: Research Funding; Mundipharma: Membership on an entity's Board of Directors or advisory committees; Celgene: Research Funding; TG Therapeutics: Research Funding. Johnson:Trillium Therapeutics: Employment. Irwin:Hoffmann La Roche: Employment, Equity Ownership; Trillium Therapeutics: Employment, Equity Ownership. Petrova:Trillium Therapeutics Inc: Employment, Membership on an entity's Board of Directors or advisory committees, Patents & Royalties. Uger:Trillium Therapeutics: Employment, Membership on an entity's Board of Directors or advisory committees, Patents & Royalties. Sievers:Seattle Genetics: Employment, Equity Ownership; Trillium Therapeutics: Employment, Equity Ownership; MEI Pharma: Consultancy.
… In conclusion, we have found that CD47 is expressed on a wide range of human solid tumors, … one function of CD47 on these cancers, as a “don't eat me” signal. CD47 therefore serves …
CD47 is ubiquitously expressed on the surface of cells and plays a critical role in self-recognition. By interacting with SIRPα, TSP-1 and integrins, CD47 modulates cellular phagocytosis by macrophages, determines life span of individual erythrocytes, regulates activation of immune cells, and manipulates synaptic pruning during neuronal development. As such, CD47 has recently be regarded as one of novel innate checkpoint receptor targets for cancer immunotherapy. In this review, we will discuss increasing awareness about the diverse functions of CD47 and its role in immune system homeostasis. Then, we will discuss its potential therapeutic roles against cancer and outlines, the possible future research directions of CD47- based therapeutics against cancer.
CD47 is an immunoglobulin that is overexpressed on the surface of many types of cancer cells. CD47 forms a signaling complex with signal-regulatory protein α (SIRPα), enabling the escape of these cancer cells from macrophage-mediated phagocytosis. In recent years, CD47 has been shown to be highly expressed by various types of solid tumors and to be associated with poor patient prognosis in various types of cancer. A growing number of studies have since demonstrated that inhibiting the CD47-SIRPα signaling pathway promotes the adaptive immune response and enhances the phagocytosis of tumor cells by macrophages. Improved understanding in this field of research could lead to the development of novel and effective anti-tumor treatments that act through the inhibition of CD47 signaling in cancer cells. In this review, we describe the structure and function of CD47, provide an overview of studies that have aimed to inhibit CD47-dependent avoidance of macrophage-mediated phagocytosis by tumor cells, and assess the potential and challenges for targeting the CD47-SIRPα signaling pathway in anti-cancer therapy.
CD47 is a “don’t eat me” signal to phagocytes that is overexpressed on many tumor cells as a potential mechanism for immune surveillance evasion. CD47 and its interaction with signal-regulating protein alpha (SIRPα) on phagocytes is therefore a promising cancer target. Therapeutic antibodies and fusion proteins that block CD47 or SIRPα have been developed and have shown activity in preclinical models of hematologic and solid tumors. Anemia is a common adverse event associated with anti-CD47 treatment, but mitigation strategies—including use of a low ‘priming’ dose—have substantially reduced this risk in clinical studies. While efficacy in single-agent clinical studies is lacking, findings from studies of CD47–SIRPα blockade in combination with agents that increase ‘eat me’ signals or with antitumor antibodies are promising. Magrolimab, an anti-CD47 antibody, is the furthest along in clinical development among agents in this class. Magrolimab combination therapy in phase Ib/II studies has been well tolerated with encouraging response rates in hematologic and solid malignancies. Similar combination therapy studies with other anti-CD47–SIRPα agents are beginning to report. Based on these early clinical successes, many trials have been initiated in hematologic and solid tumors testing combinations of CD47–SIRPα blockade with standard therapies. The results of these studies will help determine the role of this novel approach in clinical practice and are eagerly awaited.
Cancer immunotherapy has emerged as a promising strategy for the treatment of cancer, with the tumor microenvironment (TME) playing a pivotal role in modulating the immune response. CD47, a cell surface protein, has been identified as a crucial regulator of the TME and a potential therapeutic target for cancer therapy. However, the precise functions and implications of CD47 in the TME during immunotherapy for cancer patients remain incompletely understood. This comprehensive review aims to provide an overview of CD47’s multifaced role in TME regulation and immune evasion, elucidating its impact on various types of immunotherapy outcomes, including checkpoint inhibitors and CAR T-cell therapy. Notably, CD47-targeted therapies offer a promising avenue for improving cancer treatment outcomes, especially when combined with other immunotherapeutic approaches. The review also discusses current and potential CD47-targeted therapies being explored for cancer treatment and delves into the associated challenges and opportunities inherent in targeting CD47. Despite the demonstrated effectiveness of CD47-targeted therapies, there are potential problems, including unintended effects on healthy cells, hematological toxicities, and the development if resistance. Consequently, further research efforts are warranted to fully understand the underlying mechanisms of resistance and to optimize CD47-targeted therapies through innovative combination approaches, ultimately improving cancer treatment outcomes. Overall, this comprehensive review highlights the significance of CD47 as a promising target for cancer immunotherapy and provides valuable insight into the challenges and opportunities in developing effective CD47-targeted therapies for cancer treatment.
Simple Summary The interaction between cluster of differentiation 47 (CD47) on cancer cells and signal regulatory protein alpha (SIRPα) on immune cells, such as macrophages and dendritic cells, generates a “don’t eat me” signal. This is a common mechanism that provides cancer cells an escape from the innate immune system. Several therapeutics directed to CD47 or SIRPα have entered early clinical trials in recent years. In this article, we review the role of CD47/SIRPα axis in cancer, and summarize the literature on the efficacy and safety of therapeutics targeting CD47 or SIRPα. We also discuss the future implementation of these therapeutics in the treatments of various cancer types. Abstract In the past decade, the field of cancer immunotherapy has rapidly advanced, establishing a crucial role for immune checkpoint blockers in the treatment of a variety of cancer types. In parallel with these remarkable clinical developments, further efforts have focused on ways of unleashing adaptive immune responses against cancer. CD47, a cell surface molecule overexpressed by several cancer types that facilitates immune escape from macrophages, dendritic cells and natural killer cells, and its ligand SIRPα, have emerged as potential therapeutic targets. A number of agents directed to CD47/SIRPα have been developed and demonstrated preclinical activity. Early phase clinical trials are investigating CD47/SIRPα directed agents with available data, suggesting safety and preliminary activity. Herein, we provide an overview of the mechanistic rationale of targeting CD47/SIRPα axis and associated clinical evidence.
Background Chimeric antigen receptor macrophage (CAR-Mφ) therapy has promising therapeutic potential in solid tumors, yet challenges remain in target compatibility and systemic toxicity. Methods In this study, we screened the CD47-scFv sequence of CAR-Mφ as the extracellular structure. We then constructed a classical CD47 CAR-Mφ incorporated the costimulatory domain of the α1β1 integrin-mediated Fc-gamma receptor I (FcγRI) signaling component. Subsequently, we developed a tumor microenvironment (TME)-responsive CAR macrophage platform by the arginase 1 (Arg1) promoter to target CD47, a highly expressed but clinically challenging immune checkpoint in solid tumors. Results We found that anti-CD47-scFv-mediated macrophages can effectively kill tumor cells both in vivo and in vitro. Furthermore, by integrating an α1β1 integrin-mediated FcγRI signaling domain, CD47 CAR-Mφ exhibited superior antitumor activity in hCD47+4T1 and SGC-7901 cells in vitro, which demonstrated that the CD47 CAR-Mφ was effective against solid tumors. Subsequently, Arg1-mediated activated pArg1 CD47 CAR-Mφ exhibited strong cytotoxicity against target cancer cells. We further demonstrated TME-controllable CAR gene expression in situ and induced a significant regression of established tumors in vivo. Besides, TME-dependent activation of CD47 CAR Mφ reduced the cytotoxic killing effect on erythrocytes. Conclusions Our findings confirmed that the TME-specific activation mechanism of pArg1 CD47 CAR-Mφ based on intrinsic Arg1 promoter reprogramming endowed CAR-Mφ to effectively mitigate erythrocyte toxicity while enabling safe multidose administration regimens. This Trojan horse-like CAR-Mφ system achieves tumor-specific activation while minimizing systemic toxicity, offering a novel strategy to expand CAR-Mφ applications for solid tumors.
Background The antiphagocytic molecule CD47 is overexpressed in a wide variety of cancer cells, and antibodies targeting CD47 for cancer therapies are currently under intensive investigation. However, owing to the ubiquitous expression of CD47 on healthy cells, anti-CD47 therapies often achieve only weak therapeutic benefits and can induce severe side effects. Here, we report the generation of a pH-dependent anti-CD47 antibody (BC31M4) which selectively binds to tumors under the acidic solid tumor microenvironment. Methods BC31M4 was generated using antibody phage display and a pH-dependent selection strategy. The pH-dependent binding and blocking activities of BC31M4 were verified using in vitro assays, and the structural basis of the pH-dependent binding property was characterized. BC31M4’s antitumor effect was confirmed by both phagocytosis assays and studies in xenograft models. The tumor selectivity, mechanism of action, PK properties, side effects, and therapeutic efficacy were further evaluated in humanized (hCD47 and its receptor hSIRPα) immunocompetent syngeneic mouse models. Results The crystal structure reveals that two histidines locate within the CDRs of the light chain directly contribute to the pH-dependent binding of BC31M4. BC31M4 promotes macrophage phagocytosis of tumor cells more potently at acidic-pH than at physiological-pH. Our hCD47/hSIRPα humanized syngeneic mouse model results demonstrated that BC31M4 selectively accumulates in tumors but not in normal tissues. BC31M4 causes minimal side effects and exhibits superior PK properties as compared to the other examined anti-CD47 antibodies. When combined with adoptive T cell transfer, BC31M4 efficiently promotes adaptive immune responses against tumors and also induces immune memory. Moreover, we show that BC31M4’s antitumor effects rely on an Fc that mediates strong effector functions. Conclusions Our study illustrates that the development of a tumor-selective, pH-dependent anti-CD47 antibody safely confers strong therapeutic effects against solid tumors, thus providing a promising therapeutic strategy to overcome the challenges of anti-CD47 therapy.
Overexpression of CD47 is frequently observed in various types of human malignancies, inhibiting myeloid-mediated elimination of tumor cells and affecting the prognosis of cancer patients. By mapping biomarker expression, immuno-positron emission tomography has been increasingly used for patient screening and response monitoring. By immunization alpacas with recombinant human CD47, we prepared a CD47-targeting nanobody C2 and developed [68Ga]Ga-NOTA-C2, followed by an exploration of the diagnostic value in CD47-expressing tumor models including gastric-cancer patient-derived xenograft models. By fusing C2 to an albumin binding domain (ABD), we synthesized ABDC2, which had increased in vivo half-life and improved targeting properties. We further labeled ABDC2 with 68Ga/89Zr/177Lu to develop radionuclide theranostic pairs and evaluated the pharmacokinetics and theranostic efficacies of the agents in cell- and patient-derived models. Both C2 and ABDC2 specifically reacted with human CD47 with a high KD value of 23.50 and 84.57 pM, respectively. [68Ga]Ga-NOTA-C2 was developed with high radiochemical purity (99 >%, n = 4) and visualized CD47 expression in the tumors. In comparison to the rapid renal clearance and short half-life of [68Ga]Ga-NOTA-C2, both [68Ga]Ga-NOTA-ABDC2 and [89Zr]Zr-DFO-ABDC2 showed prolonged circulation and increased tumor uptake, with the highest uptake of [89Zr]Zr-DFO-ABDC2 occurring at 72 h post-injection. Moreover, [177Lu]Lu-DOTA-ABDC2 radioimmunotherapy suppressed the tumor growth but was associated with toxicity, warranting further optimization of the treatment schedules. Taken together, we reported a series of nanobody-derived CD47-targeted agents, of which [68Ga]Ga-NOTA-C2 and [89Zr]Zr-DFO-ABDC2 are readily translatable. Optimization and translation of CD47-targeted theranostic pair may provide new prospects for CD47-targeted management of solid tumors.
ABSTRACT Background Immunotherapy is an emerging strategy in cancer therapeutics aimed at modulating the immune system to inhibit pro-tumor pathways and increase a tumor’s sensitivity to chemotherapy. Several clinically approved immunotherapy treatments, such as monoclonal antibody treatments, have been successful in solid tumors such as breast, colorectal, and pancreatic. However, an outstanding challenge of these strategies is tumor cell resistance. One target of interest for immune cell modulation is targeting macrophages that enter the tumor microenvironment. More specifically, an immune checkpoint of interest is CD47. CD47 is a transmembrane protein that inhibits phagocytic activity by acting as a “don’t eat me” signal. In both mice and humans, healthy cells can express CD47, while solid malignancies like colorectal and breast cancer express it most strongly. Methods Analysis of literature data on the physiological and functional roles of tissue-resident macrophages, along with the structure and mechanisms of action of the CD47 pathway was explored. We also explored how CD47 can influence different aspects of the tumor microenvironment (i.e. cellular metabolism and hypoxia) in addition to current clinical strategies and challenges associated with targeting CD47. Results Overall, it was discovered that CD47 is overexpressed in a variety of cancer types in addition to normal tissue, making it a promising treatment regimen to enhance the capability of macrophages to phagocytose tumor cells. However, treatment efficacy is varied in pre-clinical and clinical models due to various challenges such as off-target effects. Conclusion This review emphasizes the diverse functionality of macrophages in normal and cancerous tissue, while also emphasizing the importance of macrophage targeting and their clinical significance.
Accumulating evidence indicates that a small subset of cancer cells, termed the tumor-initiating cells or cancer stem cells (CSCs), construct a reservoir of self-sustaining cancer cells with the characteristic ability to self-renew and maintain the tumor mass. The CSCs play an important role in the tumor initiation, development, relapse, metastasis, and the ineffectiveness of conventional cancer therapies. CD47 is a ligand for signal-regulatory protein-α expressed on phagocytic cells and functions to inhibit phagocytosis. This study was to explore if the expression of CD47 is the mechanism used by lung cancer cells, especially CSCs, to escape phagocytosis in vitro and in vivo. Here, we selected CD133 as the marker for lung CSCs according to previous reports. We analyzed lung cancer and matched adjacent normal (non-tumor) tissue and revealed that CD47 is overexpressed on lung cancer cells, especially on lung CSCs. The mRNA expression levels of CD47 and CD133 correlated with a decreased probability of survival for multiple types of lung cancer. Blocking CD47 function with anti-CD47 antibodies enabled macrophage phagocytosis of lung cancer cells and lung CSCs. Anti-CD47 antibodies inhibited tumor growth in immunodeficient mouse xenotransplantation models established with lung cancer cells or lung CSCs and improved survival in tumor-bearing animals. These data indicate that CD47 is a valid target for cancer therapies, especially for anti-CSC therapies.
In 2015, as part of the Reproducibility Project: Cancer Biology, we published a Registered Report (Chroscinski et al., 2015) that described how we intended to replicate selected experiments from the paper “The CD47-signal regulatory protein alpha (SIRPa) interaction is a therapeutic target for human solid tumors “(Willingham et al., 2012). Here we report the results of those experiments. We found that treatment of immune competent mice bearing orthotopic breast tumors with anti-mouse CD47 antibodies resulted in short-term anemia compared to controls, consistent with the previously described function of CD47 in normal phagocytosis of aging red blood cells and results reported in the original study (Table S4; Willingham et al., 2012). The weight of tumors after 30 days administration of anti-CD47 antibodies or IgG isotype control were not found to be statistically different, whereas the original study reported inhibition of tumor growth with anti-CD47 treatment (Figure 6A,B; Willingham et al., 2012). However, our efforts to replicate this experiment were confounded because spontaneous regression of tumors occurred in several of the mice. Additionally, the excised tumors were scored for inflammatory cell infiltrates. We found IgG and anti-CD47 treated tumors resulted in minimal to moderate lymphocytic infiltrate, while the original study observed sparse lymphocytic infiltrate in IgG-treated tumors and increased inflammatory cell infiltrates in anti-CD47 treated tumors (Figure 6C; Willingham et al., 2012). Furthermore, we observed neutrophilic infiltration was slightly increased in anti-CD47 treated tumors compared to IgG control. Finally, we report a meta-analysis of the result. DOI: http://dx.doi.org/10.7554/eLife.18173.001
In the tumor microenvironment (TME), tumor-associated macrophages (TAMs) are the most abundant immune cells, which act as a key regulator in tumorigenesis and progression. Increasing evidence have demonstrated that the TME alters the nature of macrophages to maintain dynamic tissue homeostasis, allowing TAMs to acquire the ability to stimulate angiogenesis, promote tumor metastasis and recurrence, and suppress anti-tumor immune responses. Furthermore, tumors with high TAM infiltration have poor prognoses and are resistant to treatment. In the field of solid tumor, the exploration of tumor-promoting mechanisms of TAMs has attracted much attention and targeting TAMs has emerged as a promising immunotherapeutic strategy. Currently, the most common therapeutic options for targeting TAMs are as follows: the deletion of TAMs, the inhibition of TAMs recruitment, the release of phagocytosis by TAMs, and the reprogramming of macrophages to remodel their anti-tumor capacity. Promisingly, the study of chimeric antigen receptor macrophages (CAR-Ms) may provide even greater benefit for patients with solid tumors. In this review, we discuss how TAMs promote the progression of solid tumors as well as summarize emerging immunotherapeutic strategies that targeting macrophages.
Selective CD47 blockade on CTLA-4high tumor-infiltrating Treg cells reduces systemic toxicity and enhances antitumor immunity. Targeting Treg cells Depletion of regulatory T (Treg) cells is an attractive strategy to promote antitumor immunity. One strategy that could deplete Treg cells is blockade of the “do not eat me” signal, CD47, which prevents Treg cells from being targets of phagocytosis. However, CD47 is broadly expressed, making Treg cell–specific targeting difficult. To selectively deplete Treg cells, Zhang et al. designed a heterodimer that combines an anti–cytotoxic T lymphocyte antigen 4 (CTLA-4) antibody, which targets intratumoral Treg cells, and the CD47 ligand, signal regulatory protein α (SIRPα). Treatment with this heterodimer increased phagocytosis of Treg cells, leading to their depletion, and promoted antitumor immunity in mouse models. Thus, dual targeting of CD47 and CTLA-4 selectively depletes Treg cells and can promote immune responses against solid tumors. Blockade of CD47, the “do not eat me” signal, has limited effects in solid tumors despite its potent antitumor effects in hematopoietic malignancies. Taking advantage of the high expression of cytotoxic T lymphocyte–associated protein 4 (CTLA-4) on Treg cells and abundant Fc receptor–expressing active phagocytes inside the tumor microenvironment (TME), we designed and tested a heterodimer combining an anti–CTLA-4 antibody, which targets Treg cells, with the CD47 ligand, signal regulatory protein α (SIRPα), to selectively block CD47 on intratumoral Treg cells. We hypothesized that heterodimer treatment would increase antibody-dependent cellular phagocytosis of the targeted Treg cells. We found that anti–CTLA-4×SIRPα preferentially depleted ICOShigh immunosuppressive Treg cells in the TME and enhanced immunity against solid tumors, including MC38 and CT26 murine colon cancers. Mechanistically, we found that CD47 expression on Treg cells limited anti–CTLA-4–mediated depletion and Fc on the heterodimer-enhanced depletion. Furthermore, anti-human CTLA-4×SIRPα depleted tumor Treg cells and exhibits less toxicity than anti-human CTLA-4 in a humanized mouse model. Collectively, these results demonstrate that simultaneously modulating both “eat me” and do not eat me signals induces Treg cell depletion inside the TME and may be an effective strategy for treating solid tumors.
2630Background: AK117 is a novel humanized IgG4 monoclonal antibody (mAb) targeting CD47, a macrophage immune checkpoint that allows tumor cells to evade immune destruction by phagocytic cells. CD4...
CD47 performs a vital function in cancer therapy by binding to different SIRPα, thrombospondin 1, and integrin. However, its role in tumor immunity and its correlation with prognosis among many cancer types remain unknown. The raw mRNA expression data of CD47 in cancer patients was downloaded from TCGA and GTEx datasets. The protein expression of CD47 was detected using a microarray. Kaplan Meier analysis and forest plot were performed to compare the effects of high and low expression of CD47 on overall survival in different cancers. In addition, the correlations between CD47 expression and immune cell infiltration, stromal components, immune checkpoint genes, tumor mutational burden (TMB), and microsatellite instability (MSI) were analyzed from the public database. The gene function was determined by Gene Set Enrichment Analysis (GSEA). The expressions of CD47 in CHOL, COAD, ESCA, HNSC, KIRC, STAD, and THCA were higher compared with normal tissues. Elevated expression of CD47 predicted poor prognosis in ACC, KICH, KIRP, LGG, PAAD and UCEC. CD47 expression was strongly associated with immune infiltrating cells among KICH, KIRP, LGG, and PAAD. In addition, significant positive correlations with most immune checkpoint genes including PDCD 1 (PD-1), CD274 (PD-L1), CTLA4 in BLCA, DLBC, KICH, KIRC, LUAD, LUSC, PAAD, PCPG, SKCM, STAD, UCEC, and UVM was noted for the expression of CD47. GSEA analysis demonstrated that CD47 was a key regulator in metabolism-related pathways. These findings provide novel evidence that CD47 could be utilized as a promising prognostic biomarker and combination treatment target in various cancers.
High expression levels of cluster of differentiation 47 (CD47) have been recognized as poor survival in several different cancers. Nevertheless, the significance of CD47 in patients with solid tumors remains controversial.
Abstract The macrophage checkpoint is an anti-phagocytic interaction between signal regulatory protein alpha (SIRPα) on a macrophage and CD47 on all types of cells – ranging from blood cells to cancer cells. This interaction has emerged over the last decade as a potential co-target in cancer when combined with other anti-cancer agents, with antibodies against CD47 and SIRPα currently in preclinical and clinical development for a variety of hematological and solid malignancies. Monotherapy with CD47 blockade is ineffective in human clinical trials against many tumor types tested to date, except for rare cutaneous and peripheral lymphomas. In contrast, pre-clinical results show efficacy in multiple syngeneic mouse models of cancer, suggesting that many of these tumor models are more immunogenic and likely artificial compared to human tumors. However, combination therapies in humans of anti-CD47 with agents such as the anti-tumor antibody rituximab do show efficacy against liquid tumors (lymphoma) and are promising. Here, we review such trials as well as key interaction and structural features of CD47-SIRPα.
The mammalian immune system consists of two distinct arms, nonspecific innate and more specific adaptive, with the innate immune response as the first line of defense and protection, which primes and amplifies subsequent adaptive responses. On the basis of this binary immune interplay, stimulation of T cells through checkpoint inhibitors (CIs), which bypasses innate involvement, seems likely to engender suboptimal or incomplete anticancer immunity, given that the successful induction of effect or responses depends on two-way innate/adaptive coordination. Indeed, the majority of patients-70%-80%, do not respond to CIs, which is potentially problematic if access to more optimal standard therapies is withheld or delayed in favor of ineffective or only marginally effective anti-PD-1/PD-L1 treatment. Therefore, stimulation of the innate immune response in combination with CIs (or other inducers of T cell cytotoxicity) has the potential to make the immune system "whole" and thereby to enhance and broaden the anti-tumor activity of PD-1/PD-L1 inhibitors for example, in relatively nonimmunogenic or "cold" tumor types. A critical innate macrophage immune checkpoint and druggable target is the antiphagocytic and "marker of self" CD47-SIRPα pathway, which is co-opted by cancer cells to mediate escape from immune-mediated clearance and checkpoint inhibition. This review summarizes the status of key CD47 antagonists in clinical trials, including the biologics, Hu5F9-G4 (5F9), TTI-621, and ALX148, as well as the small molecule, RRx-001, now in a Phase 3 clinical trial, which has not been previously included in CD47-SIRPα reviews focused on biologics. Hu5F9-G4 (5F9), TTI-621, ALX148, and RRx-001 are chosen as compounds with potentially promising data that have advanced the farthest in clinical development.
Immunotherapy using PD-1 and CTLA4 inhibitors to stimulate T cell immunity has achieved significant clinical success. However, only a portion of patients benefit from T cell-based immunotherapy. Macrophages, the most abundant type of innate immune cells in the body, play an important role in eliminating tumor cells and infectious microbes. The phagocytic check point protein CD47 inhibits the phagocytic activity of macrophages through binding to SIRPα expressed on macrophages. Blockade of the interaction between CD47 and SIRPα could restore phagocytic activity and eliminate tumor cells in vitro and in vivo. In this manuscript, we review the mechanism of action and development status of agents (antibodies targeting CD47 and SIRPα, SIRPα-Fc fusion proteins, and bi-specific antibodies) that block CD47/SIRPα interaction in preclinical studies and in the clinical setting. In addition, small molecules, mRNA, and CAR-T/M that target the CD47/SIRPα axis are also reviewed in this article.
<p>Triple therapy (ALX90, cetuximab, and pembrolizumab) activates human T cells and slows tumor growth of CRC307P colorectal cancer MSS PDX in HIS-BRGS mice. <b>A,</b> SGRs of CRC307P in HIS-BRGS mice among treatment groups: vehicle (V), ALX90 (A), cetuximab (C) + pembrolizumab (CP), ACP (ALX90 + cetuximab + pembrolizumab), LC, and ACP + LC. <b>B,</b> Human immune infiltration in CRC307P tumors in HIS-BRGS mice. Left, frequency of human immune (human CD45<sup>+</sup> of mouse + human CD45<sup>+</sup>). Middle, number of human T cells. Right, frequency of CD8<sup>+</sup> T cells among CD3<sup>+</sup> cells. <b>C,</b> IFNγ+ and TNFα+ cytotoxic CD4<sup>+</sup> and CD8<sup>+</sup> tumor-infiltrating T cells. <b>D,</b> Immunophenotype correlation with tumor growth (SGR) among triple therapy (ACP, red), triple therapy following LC treatments (ACP + LC, purple), and all mice treated with triple therapy with or without LC (ACP ± LC, black). Statistics of linear correlation are provided; *, <i>P</i> < 0.05; **, <i>P</i> < 0.001. GrzB, granzyme B.</p>
Since its initial report in 2015, CD47 has garnered significant attention as an innate immune checkpoint, raising expectations to become the next “PD-1.” The optimistic early stages of clinical development spurred a flurry of licensing deals for CD47-targeted molecules and company mergers or acquisitions for related assets. However, a series of setbacks unfolded recently, starting with the July 2023 announcement of discontinuing the phase 3 ENHANCE study on Magrolimab plus Azacitidine for higher-risk myelodysplastic syndromes (MDS). Subsequently, in August 2023, the termination of the ASPEN-02 program, assessing Evorpacept in combination with Azacitidine in MDS patients, was disclosed due to insufficient improvement compared to Azacitidine alone. These setbacks have cast doubt on the feasibility of targeting CD47 in the industry. In this review, we delve into the challenges of developing CD47-SIRPα-targeted drugs, analyze factors contributing to the mentioned setbacks, discuss future perspectives, and explore potential solutions for enhancing CD47-SIRPα-targeted drug development.
Background SL-172154 is a hexameric fusion protein adjoining the extracellular domain of SIRPα to the extracellular domain of CD40L via an inert IgG4-derived Fc domain. In preclinical studies, a murine equivalent SIRPα-Fc-CD40L fusion protein provided superior antitumor immunity in comparison to CD47- and CD40-targeted antibodies. A first-in-human phase I trial of SL-172154 was conducted in patients with platinum-resistant ovarian cancer. Methods SL-172154 was administered intravenously at 0.1, 0.3, 1.0, 3.0, and 10.0 mg/kg. Dose escalation followed a modified toxicity probability interval-2 design. Objectives included evaluation of safety, dose-limiting toxicity, recommended phase II dose, pharmacokinetic (PK) and pharmacodynamic (PD) parameters, and antitumor activity. Results 27 patients (median age 66 years (range, 33–85); median of 4 prior systemic therapies (range, 2–9)) with ovarian (70%), fallopian tube (15%), or primary peritoneal (15%) cancer received SL-172154. Treatment-emergent adverse events (TEAEs) were reported for 27 patients (100%), with 24 (88.9%) having a drug-related TEAE and infusion-related reactions being the most common. 12 patients (44.4%) had grade 3/4 TEAEs, and half of these patients (22.2%) had a drug-related grade 3/4 TEAE. There were no fatal adverse events, and no TEAEs led to drug discontinuation. SL-172154 Cmax and area under the curve increased with dose with greater than proportional exposure noted at 3.0 and 10.0 mg/kg. CD47 and CD40 target engagement on CD4+ T cells and B cells, respectively, approached 100% by 3.0 mg/kg. Dose-dependent responses in multiple cytokines (eg, interleukin 12 (IL-12), IP-10) approached a plateau at ≥3.0 mg/kg. Paired tumor biopsies demonstrated a shift in macrophages from an M2- to an M1-dominant phenotype and increased infiltration of CD8 T cells. PK/PD modeling showed near maximal margination of B cells and a dose-dependent production of IL-12 nearing a plateau at >3.0 mg/kg. The best response was stable disease in 6/27 (22%) patients. Conclusions SL-172154 was tolerable as monotherapy and induced, dose-dependent, and cyclical immune cell activation, increases in multiple serum cytokines, and trafficking of CD40-positive B cells and monocytes following each infusion. The safety, PK, and PD activity support 3.0 mg/kg as a safe and pharmacologically active dose. Trial registration number NCT04406623.
… patients with MDS treated in a Phase 1b trial of magrolimab plus azacitidine, four patients had TP53-mutant disease and three of them achieved an objective response (CR/marrow CR). …
Targeting CD47 is in the spotlight of cancer immunotherapy. Blocking CD47 triggers the recognition and elimination of cancer cells by the innate immunity. There are three CD47 antagonists in phase I clinical trials, but their potential efficacies are highly controversial. We raise our concern that NOD-based xenograft hosts tend to overestimate, while syngeneic mouse models could substantially underestimate the efficacy of anti-CD47 therapy. Such discrepancy may be resulted from specific reagent that alters CD47 clustering, and the highly variable avidities of interspecies and intraspecies CD47-SIRPα interaction. This problem can be addressed by alternative animal models for better recapitulation of human CD47-SIRPα interaction. Both fragment crystallizable (Fc) fragment-dependent effects, like antibody-dependent cell-mediated cytotoxicity (ADCC), and Fc-independent CD47 intrinsic functions are involved in anti-CD47 therapy. The latter may be SIRPα-dependent or SIRPα-independent, such as the case of calreticulin. It has not reached a consensus which of the factors predominate the process, but the answer to this question will determine the optimal pharmaceutical and clinical design of CD47 targeting strategies.
… This response protected animals from tumor challenge. We conclude that anti-CD47 antibody treatment not only enables macrophage phagocytosis of cancer but also can initiate an …
Tumor-associated macrophages (TAMs) represent an important cellular subset within the glioblastoma (WHO grade IV) microenvironment and are a potential therapeutic target. TAMs display a continuum of different polarization states between antitumorigenic M1 and protumorigenic M2 phenotypes, with a lower M1/M2 ratio correlating with worse prognosis. Here, we investigated the effect of macrophage polarization on anti-CD47 antibody-mediated phagocytosis of human glioblastoma cells in vitro, as well as the effect of anti-CD47 on the distribution of M1 versus M2 macrophages within human glioblastoma cells grown in mouse xenografts. Bone marrow-derived mouse macrophages and peripheral blood-derived human macrophages were polarized in vitro toward M1 or M2 phenotypes and verified by flow cytometry. Primary human glioblastoma cell lines were offered as targets to mouse and human M1 or M2 polarized macrophages in vitro. The addition of an anti-CD47 monoclonal antibody led to enhanced tumor-cell phagocytosis by mouse and human M1 and M2 macrophages. In both cases, the anti-CD47-induced phagocytosis by M1 was more prominent than that for M2. Dissected tumors from human glioblastoma xenografted within NOD.Cg-Prkdcscid Il2rgtm1Wjl/SzJ mice and treated with anti-CD47 showed a significant increase of M1 macrophages within the tumor. These data show that anti-CD47 treatment leads to enhanced tumor cell phagocytosis by both M1 and M2 macrophage subtypes with a higher phagocytosis rate by M1 macrophages. Furthermore, these data demonstrate that anti-CD47 treatment alone can shift the phenotype of macrophages toward the M1 subtype in vivo.
Cancer immunotherapy, mainly including immune checkpoints-targeted therapy and the adoptive transfer of engineered immune cells, has revolutionized the oncology landscape as it utilizes patients’ own immune systems in combating the cancer cells. Cancer cells escape immune surveillance by hijacking the corresponding inhibitory pathways via overexpressing checkpoint genes. Phagocytosis checkpoints, such as CD47, CD24, MHC-I, PD-L1, STC-1 and GD2, have emerged as essential checkpoints for cancer immunotherapy by functioning as “don’t eat me” signals or interacting with “eat me” signals to suppress immune responses. Phagocytosis checkpoints link innate immunity and adaptive immunity in cancer immunotherapy. Genetic ablation of these phagocytosis checkpoints, as well as blockade of their signaling pathways, robustly augments phagocytosis and reduces tumor size. Among all phagocytosis checkpoints, CD47 is the most thoroughly studied and has emerged as a rising star among targets for cancer treatment. CD47-targeting antibodies and inhibitors have been investigated in various preclinical and clinical trials. However, anemia and thrombocytopenia appear to be formidable challenges since CD47 is ubiquitously expressed on erythrocytes. Here, we review the reported phagocytosis checkpoints by discussing their mechanisms and functions in cancer immunotherapy, highlight clinical progress in targeting these checkpoints and discuss challenges and potential solutions to smooth the way for combination immunotherapeutic strategies that involve both innate and adaptive immune responses.
Macrophages are one of the most abundant non‐malignant cells in the tumor microenvironment, playing critical roles in mediating tumor immunity. As important innate immune cells, macrophages possess the potential to engulf tumor cells and present tumor‐specific antigens for adaptive antitumor immunity induction, leading to growing interest in targeting macrophage phagocytosis for cancer immunotherapy. Nevertheless, live tumor cells have evolved to evade phagocytosis by macrophages via the extensive expression of anti‐phagocytic molecules, such as CD47. In addition, macrophages also rapidly recognize and engulf apoptotic cells (efferocytosis) in the tumor microenvironment, which inhibits inflammatory responses and facilitates immune escape of tumor cells. Thus, intervention of macrophage phagocytosis by blocking anti‐phagocytic signals on live tumor cells or inhibiting tumor efferocytosis presents a promising strategy for the development of cancer immunotherapies. Here, the regulation of macrophage‐mediated tumor cell phagocytosis is first summarized, followed by an overview of strategies targeting macrophage phagocytosis for the development of antitumor therapies. Given the potential off‐target effects associated with the administration of traditional therapeutics (for example, monoclonal antibodies and small molecule inhibitors), the opportunity for nanomedicine in macrophage phagocytosis intervention is highlighted.
… We found that SCLC cells express high levels of CD47 and that blocking CD47 enhances phagocytosis of SCLC cells and inhibits tumor growth. Since no therapeutic antibodies have …
The use of immunotherapy has achieved great advances in the treatment of cancer. Macrophages play a pivotal role in the immune defense system, serving both as phagocytes (removal of pathogens and cancer cells) and as antigen‐presenting cells (activation of T cells). However, research regarding tumor immunotherapy is mainly focused on the adaptive immune system. The usefulness of innate immune cells (eg, macrophages) in the treatment of cancer has not been extensively investigated. Recent advances in synthetic biology and the increasing understanding of the cluster of differentiation 47/signal regulatory protein alpha (CD47/SIRPɑ) axis may provide new opportunities for the clinical application of engineered macrophages. The CD47/SIRPɑ axis is a major known pathway, repressing phagocytosis and activation of macrophages. In this article, we summarize the currently available evidence regarding the CD47/SIRPɑ axis, and immunotherapies based on blockage. In addition, we propose cell therapy strategies based on macrophage engineering.
… antibodies stimulated macrophage phagocytosis in vitro and suppressed tumour growth … CD47 acts as a predominant inhibitory signal that prevents macrophage phagocytosis of cancer …
… of tumor cells … of SIRPα-exosomes onto CD47 could enhance tumor cell phagocytosis in vitro. After … that activation of macrophages might have therapeutic effects on tumor growth. Prior …
The ability of a macrophage to engulf and break down invading cells and other targets provides a first line of immune defense in nearly all tissues. This defining ability to “phagos” or devour can subsequently activate the entire immune system against foreign and diseased cells, and progress is now being made on a decades-old idea of directing macrophages to phagocytose specific targets, such as cancer cells. Engineered T cells provide precedence with recent clinical successes against liquid tumors, but solid tumors remain a challenge, and a handful of clinical trials seek to exploit the abundance of tumor-associated macrophages instead. Although macrophage differentiation into such phenotypes with deficiencies in phagocytic ability can raise challenges, newly recognized features of cancer cells that might be manipulated to increase the phagocytosis of those cells include ≥1 membrane protein, CD47, which broadly inhibits phagocytosis and is abundantly expressed on all healthy cells. Physical properties of the target also influence phagocytosis and again relate—via cytoskeleton forces—to differentiation pathways in solid tumors. Such pathways extend to mechanosensing by the nuclear lamina, which is known to influence signaling by soluble retinoids that can regulate the macrophage SIRPα, the receptor for CD47. Here, we highlight some of those past, present, and rapidly emerging efforts to understand and control macrophages for cancer therapy.
Background The chimeric antigen receptor (CAR)-T therapy has a limited therapeutic effect on solid tumors owing to the limited CAR-T cell infiltration into solid tumors and the inactivation of CAR-T cells by the immunosuppressive tumor microenvironment. Macrophage is an important component of the innate and adaptive immunity, and its unique phagocytic function has been explored to construct CAR macrophages (CAR-Ms) against solid tumors. This study aimed to investigate the therapeutic application of CAR-Ms in ovarian cancer. Methods In this study, we constructed novel CAR structures, which consisted of humanized anti-HER2 or CD47 scFv, CD8 hinge region and transmembrane domains, as well as the 4-1BB and CD3ζ intracellular domains. We examined the phagocytosis of HER2 CAR-M and CD47 CAR-M on ovarian cancer cells and the promotion of adaptive immunity. Two syngeneic tumor models were used to estimate the in vivo antitumor activity of HER2 CAR-M and CD47 CAR-M. Results We constructed CAR-Ms targeting HER2 and CD47 and verified their phagocytic ability to ovarian cancer cells in vivo and in vitro. The constructed CAR-Ms showed antigen-specific phagocytosis of ovarian cancer cells in vitro and could activate CD8^+ cytotoxic T lymphocyte (CTL) to secrete various anti-tumor factors. For the in vivo model, mice with human-like immune systems were used. We found that CAR-Ms enhanced CD8^+ T cell activation, affected tumor-associated macrophage (TAM) phenotype, and led to tumor regression. Conclusions We demonstrated the inhibition effect of our constructed novel HER2 CAR-M and CD47 CAR-M on target antigen-positive ovarian cancer in vitro and in vivo, and preliminarily verified that this inhibitory effect is due to phagocytosis, promotion of adaptive immunity and effect on tumor microenvironment.
CD47 is overexpressed in various types of cancers and it can directly bind with SIRPα, which is mainly located on macrophages. The binding of CD47-SIRPα transmits a “don't eat me” signal, which can prevent cancer cells from immune clearance. Targeting the phagocytosis checkpoint of CD47-SIRPα axis has shown remarkable anticancer effect in preclinical and clinical research, which indicates the potential application of CD47-SIRPα blockade for cancer treatment. In this case, the comprehensive description of the regulation of CD47 in different types of cancer cells has significant implications for furthering our understanding of the role of CD47 in cancer. Based on the current reports, we summarized the regulatory factors, i.e., cytokines, oncogenes, microRNAs as well as enzymes, of CD47 expression in cancer cells. Accordingly, we also proposed several points needing further research, hoping to provide useful insights for the future investigation on the regulation of CD47 in cancers.
Targeting CD47 efficiently enhances macrophage phagocytosis in both physiological and pathological conditions. Anti-CD47 antibodies have been shown to inhibit the progression of several types of cancer. However, the mechanism of anti-CD47 monoclonal antibody (mAb) treatment remains controversial. In this study, we confirmed that CD47 protein is highly expressed in ovarian cancer, and is correlated with poor clinical characteristics and prognosis. CD47 knockdown in the ovarian cancer cell line, SK-OV-3, promoted phagocytosis by macrophages in vitro and inhibited tumor growth in vivo. These data combined suggest that CD47 inhibition is a potential strategy for cancer treatment. Using an anti-CD47 mAb, we found that CD47 inhibition in both SK-OV-3 cells and primary cancer cells was able to recapitulate our knockdown results and led to an increase in the number of infiltrating macrophages. In addition, the CD133+ tumor initiating cells expressed a high level of CD47, and anti-CD47 mAb treatment was able to trigger the phagocytosis of this cell population. In conclusion, our results indicate that CD47 inhibits macrophage phagocytosis of ovarian cancer cells, and down-regulation of CD47 or inhibiting CD47 by mAb was able to reverse the negative effect. Thus, CD47 antibody therapy may be a promising strategy to treat ovarian cancer.
There are rapidly emerging efforts to explore tumor-associated macrophages (TAMs) as a tumor therapy target. Tumor cells express CD47, which can interact with the macrophages' SIRPα transmitting a “don't eat me” signal to macrophages. The expression of CD47 increases in various tumors to evade immune attack. However, the expression of CD47 in endometrial cancer (EC) and the role of CD47-SIRPα in the TAMs which mediate the progression of EC remain unclear. Our study shows that there are increased TAMs in EC which dominantly consist of M2 macrophages and contribute to the progression of EC. We confirm that CD47 is highly expressed in EC tissue using the TCGA database, qPCR, and flow cytometry. Instead of directly promoting the apoptosis of EC cells, anti-CD47 blocking antibody promoted phagocytosis of EC cells by macrophages and the increased phagocytosis ability was mediated by M2 macrophages in a coculture assay. Besides, CD47 blockade inhibited the growth of the EC tumors in vivo and increased the infiltration of macrophages with antitumor ability in the tumor microenvironment (TME). These findings might assist in developing promising strategies that blocked the CD47-SIRPa interaction for EC therapy.
Cluster of differentiation 47 (CD47) is a transmembrane protein that is widely and moderately expressed on the surface of various cells and can have an essential role in mediating cell proliferation, migration, phagocytosis, apoptosis, immune homeostasis and other related responses by binding to its ligands, integrins, thrombospondin-1 and signal regulatory protein α. The poor prognosis of cancer patients is closely associated with high expression of CD47 in glioblastoma, ovarian cancer, breast cancer, bladder cancer, colon cancer and hepatocellular carcinoma. Upregulation of CD47 expression facilitates the growth of numerous types of tumor cells, while downregulation of its expression promotes phagocytosis of tumor cells by macrophages, thereby limiting tumor growth. In addition, blocking CD47 activates the cyclic GMP-AMP (cGAMP) synthase/cGAMP/interferon gene stimulating factor signaling pathway and initiates an adaptive immune response that kills tumor cells. The present review describes the structure, function and interactions of CD47 with its ligands, as well as its regulation of phagocytosis and tumor cell fate. It summarizes the therapeutics, mechanisms of action, research advances and challenges of targeting CD47. In addition, this paper provides an overview of the latest therapeutic options for targeting CD47, such as chimeric antigen receptor (CAR) T-cells, CAR macrophages and nanotechnology-based delivery systems, which are essential for future clinical research on targeting CD47.
Signal regulatory protein alpha (SIRPα) is an essential immune checkpoint, predominantly expressed on myeloid cells, that binds to CD47. This interaction, termed the ‘don't eat me’ signal, contributes to immune suppression. Consequently, disruption of the SIRPα/CD47 axis emerges as a promising strategy to intervene in the ‘don't eat me’ signal, thereby initiating phagocytic activation. Various preclinical and clinical studies employed SIRPα/CD47‐targeting molecules to disrupt the SIRPα/CD47 axis to promote cancer phagocytosis. However, concerns regarding their limited efficacy and side effects pose a challenge to applying this approach to cancer therapy. Here, we investigated the role of the SIRPα/CD47 axis in phagocytosis by performing clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9‐mediated SIRPA gene disruption in the monocytic cell line THP‐1. The SIRPα knockout (KO) THP‐1 cells were comprehensively characterized for their phenotype and functions, including differentiation into M0 macrophages, polarization into M1 or M2 macrophages, and phagocytosis of bioparticles and cancer cells, and compared to their wild‐type (WT) counterparts. The SIRPα KO THP‐1 cells retained their monocyte and macrophage characteristics. Remarkably, they exhibited enhanced phagocytosis of bioparticles and leukemic cell lines but not breast cancer cell lines. The introduction of a chimeric antigen receptor (CAR) targeting tumor‐associated mucin1 antigen (tMUC1‐CAR) further enhanced their phagocytic activity against the breast cancer cell line, MCF‐7, which expresses high levels of MUC1. Our findings highlight the therapeutic potential of SIRPα KO macrophages in cancer immunotherapy, particularly for hematologic malignancies. However, a combination with CAR was necessary to enhance the phagocytic activity against solid cancer models.
Glioblastoma multiforme (GBM) is one of the deadliest human cancers with very lim-ited treatment options available. The malignant behavior of GBM is manifest in a tu-mor which is highly invasive, resistant to standard cytotoxic chemotherapy and is strongly immunosuppressive. Immune checkpoint inhibitors have recently been in-troduced in the clinic and have yielded promising results in certain cancers. GBM however is largely refractory to these treatments. The immune checkpoint CD47 has recently gained attention as potential target for intervention as it conveys a “don’t eat me” signal to tumor associated macrophages via the inhibitory SIRP alpha protein. In preclinical models, administration of anti-CD47 monoclonal antibodies have shown impressive results with GBM and other tumor models. Several well characterized on-cogenic pathways have recently been shown to regulate CD47 expression in GBM cells and Glioma Stem cells (GSCs) include EGFR, beta catenin and LRIG2. Other macro-phage pathways involved in regulating phagocytosis including TREM2 and glycan binding proteins are discussed as well. Finally, Chimeric Antigen Receptor Macro-phages (CAR)-M could be leveraged for greatly enhancing phagocytosis of GBM and repolarization of the microenvironment in general. Here we comprehensively review the mechanisms that regulate about macrophage phagocytosis of GBM cells.
Antibody‐based CD47 blockade aims to activate macrophage phagocytosis of tumor cells. However, macrophages possess a high degree of phenotype heterogeneity that likely influences phagocytic capacity. In murine models, proinflammatory (M1) activation increases macrophage phagocytosis of tumor cells, but in human models, results have been conflicting. Here, we investigated the effects of proinflammatory polarization on the phagocytic response of human monocyte‐derived macrophages in an in vitro model. Using both flow cytometry‐based and fluorescence live‐cell imaging‐based phagocytosis assays, we observed that mouse monoclonal anti‐CD47 antibody (B6H12) induced monocyte‐derived macrophage phagocytosis of cancer cells in vitro. Proinflammatory (M1) macrophage polarization with IFN‐γ+LPS resulted in a severe reduction in phagocytic response to CD47 blockade. This reduction coincided with increased expression of the antiphagocytic membrane proteins LILRB1 and Siglec‐10 but was not rescued by combination blockade of the corresponding ligands. However, matrix metalloproteinase inhibitors (TAPI‐0 or GM6001) partly restored response to CD47 blockade in a dose‐dependent manner. In summary, these data suggest that proinflammatory (M1) activation reduces phagocytic response to CD47 blockade in human monocyte‐derived macrophages.
… The results from the correlation analysis are shown in Figure 4D where a significant negative association between CD47 expression and macrophage phagocytosis can be clearly …
PURPOSE Magrolimab is a monoclonal antibody that blocks cluster of differentiation 47, a don't-eat-me signal overexpressed on cancer cells. Cluster of differentiation 47 blockade by magrolimab promotes macrophage-mediated phagocytosis of tumor cells and is synergistic with azacitidine, which increases expression of eat-me signals. We report final phase Ib data in patients with untreated higher-risk myelodysplastic syndromes (MDS) treated with magrolimab and azacitidine (ClinicalTrials.gov identifier: NCT03248479). PATIENTS AND METHODS Patients with previously untreated Revised International Prognostic Scoring System intermediate-/high-/very high-risk MDS received magrolimab intravenously as a priming dose (1 mg/kg) followed by ramp-up to a 30 mg/kg once‐weekly or once‐every-2-week maintenance dose. Azacitidine 75 mg/m2 was administered intravenously/subcutaneously once daily on days 1-7 of each 28-day cycle. Primary end points were safety/tolerability and complete remission (CR) rate. RESULTS Ninety-five patients were treated. Revised International Prognostic Scoring System risk was intermediate/high/very high in 27%, 52%, and 21%, respectively. Fifty-nine (62%) had poor-risk cytogenetics and 25 (26%) had TP53 mutation. The most common treatment-emergent adverse effects included constipation (68%), thrombocytopenia (55%), and anemia (52%). Median hemoglobin change from baseline to first postdose assessment was −0.7 g/dL (range, −3.1 to +2.4). CR rate and overall response rate were 33% and 75%, respectively. Median time to response, duration of CR, duration of overall response, and progression-free survival were 1.9, 11.1, 9.8, and 11.6 months, respectively. Median overall survival (OS) was not reached with 17.1-month follow-up. In TP53-mutant patients, 40% achieved CR with median OS of 16.3 months. Thirty-four patients (36%) had allogeneic stem-cell transplant with 77% 2-year OS. CONCLUSION Magrolimab + azacitidine was well tolerated with promising efficacy in patients with untreated higher-risk MDS, including those with TP53 mutations. A phase III trial of magrolimab/placebo + azacitidine is ongoing (ClinicalTrials.gov identifier: NCT04313881 [ENHANCE]).
PURPOSE Magrolimab is a first-in-class humanized monoclonal antibody against cluster of differentiation 47, an antiphagocytic signal used by cancer cells to evade phagocytosis. Azacitidine upregulates prophagocytic signals on AML cells, further increasing phagocytosis when combined with magrolimab. We report final phase Ib data for magrolimab with azacitidine in patients with untreated AML ineligible for intensive chemotherapy (ClinicalTrials.gov identifier: NCT03248479). PATIENTS AND METHODS Patients with previously untreated AML, including TP53-mutant AML, received magrolimab intravenously as an initial dose (1 mg/kg, days 1 and 4), followed by 15 mg/kg once on day 8 and 30 mg/kg once weekly or every 2 weeks as maintenance. Azacitidine 75 mg/m2 was administered intravenously/subcutaneously once daily on days 1-7 of each 28-day cycle. Primary end points were safety/tolerability and proportion with complete remission (CR). RESULTS Eighty-seven patients were enrolled and treated; 72 (82.8%) had TP53 mutations with a median variant allele frequency of 61% (range, 9.8-98.7). Fifty-seven (79.2%) of TP53-mutant patients had European LeukemiaNet 2017 adverse-risk cytogenetics. Patients received a median of 4 (range, 1-39) cycles of treatment. The most common treatment-emergent adverse events included constipation (49.4%), nausea (49.4%), and diarrhea (48.3%). Thirty (34.5%) experienced anemia, and the median hemoglobin change from baseline to first postdose assessment was –0.9 g/dL (range, –3.6 to 2.5 g/dL). Twenty-eight (32.2%) patients achieved CR, including 23 (31.9%) patients with TP53 mutations. The median overall survival in TP53-mutant and wild-type patients were 9.8 months and 18.9 months, respectively. CONCLUSION Magrolimab with azacitidine was relatively well tolerated with promising efficacy in patients with AML ineligible for intensive induction chemotherapy, including those with TP53 mutations, warranting further evaluation of magrolimab with azacitidine in AML. The phase III randomized ENHANCE-2 (ClinicalTrials.gov identifier: NCT04778397) and ENHANCE-3 (ClinicalTrials.gov identifier: NCT05079230) studies are recruiting frontline patients with AML.
Key Points • M+R induced durable responses (ORR, 52%; complete response, 30%; median DOR, 15.9 months; median OS, not reached) in R/R iNHL.• M+R remained well tolerated, with no new TEAEs in long-term follow-up.
<div>AbstractPurpose:<p>Magrolimab is a monoclonal antibody directed against the macrophage checkpoint CD47 on myeloid leukemia cells that was preclinically synergistic with azacitidine–venetoclax, warranting further clinical evaluation.</p>Patients and Methods:<p>In this phase Ib/II study, the triplet combination of azacitidine, venetoclax, and magrolimab was evaluated in adult patients with first-line (ineligible for intensive chemotherapy) and relapsed/refractory acute myeloid leukemia. Azacitidine was dosed at 75 mg/m<sup>2</sup> for 7 days, venetoclax at 400 mg/day for 28 days, and magrolimab (recommended phase II dose) as follows: 1 mg/kg dose on days 1 and 4, 15 mg/kg on day 8, and 30 mg/kg on days 11, 15, and 22 (cycle 1), followed by 30 mg/kg weekly for cycle 2 and then 30 mg/kg every 2 weeks for cycle 3 and beyond. The primary endpoint was the recommended phase II dose for phase Ib and rates of composite complete response (CRc) in phase II.</p>Results:<p>The first-line cohort included 54 patients (median age 70.1 years); 35 (64.8%) were <i>TP53</i> mutated (<i>TP53</i><sup>mut</sup>). CRc was attained in 34 patients (63%)–49% in <i>TP53</i><sup>mut</sup> and 90% in the <i>TP53</i> wild-type patients. At a median follow-up of 27.9 months, the median event-free survival and overall survival (OS) were 6.6 and 9.8 months, respectively; for <i>TP53</i><sup>mut</sup> patients, the median event-free survival and OS were 5.9 and 7.6 months, whereas for <i>TP53</i> wild type, they were 9.6 and 13 months, respectively. CRc in the relapsed/refractory cohort (<i>n</i> = 52) was 29% and the median OS was 3.9 months. The regimen was well tolerated; infections were the most common ≥ grade 3 adverse event (75.4%) with no immune toxicities or deaths related to therapy. Single-cell RNA sequencing was performed on 27 longitudinal samples from 11 <i>TP53</i><sup>mut</sup> patients (eight responders). Gene set enrichment analysis revealed enrichment of IFNγ and TNFα signaling in nonresponders at baseline, whereas erythroid differentiation was associated with resistance. Patients at relapse also showed upregulated CD47 expression and elevated leukemia regeneration score.</p>Conclusions:<p>The triplet regimen was safe but did not lead to promising survival outcomes.</p></div>
7507Background: Magrolimab (Hu5F9-G4) is an antibody blocking CD47, a macrophage immune checkpoint and don’t eat me signal on cancers. It induces tumor phagocytosis and eliminates leukemia stem cel...
This phase 2 study evaluated magrolimab+venetoclax (VEN)+azacitidine (AZA) in untreated, unfit acute myeloid leukaemia (AML) and magrolimab+mitoxantrone+etoposide+cytarabine in relapsed/refractory (R/R) AML.
Follicular lymphoma (FL), marginal zone lymphoma (MZL), chronic lymphocytic leukaemia (CLL) and mantle cell lymphoma (MCL) are characterized by a continuous incidence of relapse and increasing resistance to therapy. Novel immunotherapy approaches are needed. Magrolimab, a CD47‐blocking antibody, disrupts CD47:SIRPα‐mediated antiphagocytic signalling. When combined with a prophagocytic signal from an anti‐CD20 antibody rituximab, it has shown activity in relapsed or refractory FL and MZL. In this phase 1 study, adding the BCL2‐inhibitor venetoclax to magrolimab and the anti‐CD20 antibody obinutuzumab resulted in complete responses in 6 of 10 (60%) evaluable patients with FL, MZL or CLL. Notably, we did not observe increased risk of infections previously reported from studies of magrolimab in acute myeloid leukaemia and higher risk myelodysplastic syndromes.
… Magrolimab was administered intravenously (IV) at 1 mg/kg at an … Treatment-related TEAEs leading to magrolimab discontinuation … This study supports further evaluation of magrolimab …
Transfusion management in the era of magrolimab (Hu5F9‐G4), an anti‐CD47 monoclonal antibody therapy
… A phase 3 clinical trial of magrolimab combined with azacitidine for treatment of … blood typing.This review focuses specifically on the magrolimab interference with pretransfusion testing. …
AML-113 Magrolimab Efficacy and Struggle for Approval in Acute Myeloid Leukemia: A Systematic Review
… Our systematic review focuses on the role of magrolimab, an … Our systematic review focuses on the role of magrolimab, an … "acute myeloid leukemia" and "magrolimab." After primary and …
Background Outcomes remain poor for patients (pts) with RRMM; thus, novel combinations incorporating standard-of-care (SOC) regimens with new drugs possessing unique mechanisms of action and nonoverlapping toxicity are needed. Magrolimab (Magro) is a first-in-class monoclonal immunoglobulin G4 antibody blocking CD47, an antiphagocytic signal overexpressed in cancer cells, including MM, enabling them to evade phagocytosis. In vitro, blocking CD47 resulted in elimination of MM cells, and preclinical data suggested that Magro may synergize with commonly used agents in MM. Reported here are initial safety and tolerability data from 3 safety run-in (SRI) cohorts of our phase 2, open-label, multiarm study (NCT04892446) in which Magro-based combinations were evaluated in pts with RRMM. Methods Adult pts with RRMM were eligible if they had received ≥3 prior lines of therapy for MM, including an immunomodulatory drug and a proteasome inhibitor. In the SRI cohorts, pts received Magro in the following combinations: with daratumumab (Magro + D), pomalidomide/dexamethasone (Magro + Pd), or carfilzomib/dexamethasone (Magro + Kd). At the initial dose level tested, Magro was given intravenously as a 1-mg/kg priming dose, followed by a maintenance dose of 30 mg/kg every week during the first 2 cycles and then every 2 weeks starting in cycle 3. All other therapies were administered at standard doses and schedules per clinical guidelines. Dose-limiting toxicities (DLTs) were evaluated throughout cycle 1 (35 days); cycles were 28 days thereafter. Primary end points of the SRI included incidence of adverse events (AEs) and DLTs. Pts were included in the DLT-evaluable population if they met 1 of 2 criteria: (1) experienced a DLT during cycle 1 or (2) completed cycle 1 and received ≥3 Magro infusions and ≥2 (D, d, K) or ≥10 (P) doses of the SOC agents. DLTs were generally defined as grade (gr) ≥3 AEs that worsened from baseline and were at least possibly Magro-related (with a few exceptions, including gr 3 anemia and gr 3 neutropenia resolving within 2 weeks). Dose de-escalation of Magro was planned in the event of >2 DLTs per 6 DLT-evaluable pts. Results Of the 25 pts treated in the SRI (Magro + D, n = 9 [6 DLT evaluable]; Magro + Pd, n = 9 [6 DLT evaluable]; Magro + Kd, n = 7 [5 DLT evaluable]), all were treated at the Magro initial dose level. Median (range) age was 59 (55-78) years for Magro + D, 69 (46-79) years for Magro + Pd, and 64 (57-82) years for Magro + Kd. The mean (range) number of prior lines of therapy received was 5.2 (3-9). Two DLTs were reported: gr 3 febrile neutropenia (Magro + D) and gr 3 dyspnea (Magro + Pd) experienced in a context of probable infusion-related reaction (IRR). No DLTs were reported in the Magro + Kd arm. All pts experienced ≥1 treatment-emergent AE (TEAE); all but 2 experienced ≥1 Magro-related TEAE ( Table 1). The most common Magro-related TEAE observed in each cohort was anemia; other common Magro-related TEAEs were headache (Magro + D), fatigue (Magro + D, Magro + Pd), and thrombocytopenia (Magro + Kd). Magro-related anemia was reported in 13 of 25 pts (gr ≥3, n = 6). There were 3 pts with Magro-related IRRs (all gr 1-2: Magro + Kd, n = 1; Magro + D, n = 2) and 1 pt with a subcutaneous D-related IRR. Gr 3-4 Magro-related TEAEs reported in >1 pt in any cohort were anemia (Magro + D, n = 3; Magro + Pd, n = 2), decreased neutrophil count (Magro + Pd, n = 2), and decreased platelet count (Magro + Pd, n = 2). Serious Magro-related TEAEs occurred in 3 of 9 pts in the Magro + D cohort (febrile neutropenia, a DLT, on day 12; anemia on day 21; bacteremia on day 135), 1 of 9 pts in the Magro + Pd cohort (dyspnea, a DLT, on day 9 followed by febrile neutropenia on day 22 occurring in the same pt), and 1 of 7 pts in the Magro + Kd cohort (pneumonia on day 75). One pt (in the Magro + Pd arm) discontinued treatment due to Magro-related TEAEs reported on day 15 (gr 1 fatigue, gr 3 decreased neutrophil count, gr 3 decreased white blood cell count). No TEAEs leading to death occurred. Conclusion Magro demonstrated an acceptable safety profile with minimal additive toxicity when given in combination with SOC regimens for pts with heavily pretreated RRMM.
7054 Background: Magrolimab is a monoclonal antibody that blocks CD47, a “don’t eat me” signal expressed on cancer cells to escape immune surveillance and macrophage-mediated clearance. Prior preclinical studies have shown that CD47 is critical to RBC homeostasis, with CD47 deficiency decreasing RBC half-life. Fc-mediated opsonization also depletes RBCs, raising concerns for potential on-target anemia from anti-CD47 agents via multiple mechanisms. Notwithstanding, several clinical trials have demonstrated that magrolimab can be safely administered as a monotherapy with initial lower “priming” dose yielding transient anemia with compensatory reticulocytosis, with anemia not observed at subsequent higher maintenance doses. However, the mechanism underlying this observed protection has not been fully defined. Here we describe manageable anemia in patients (pts) with HR-MDS treated with magrolimab in combination with azacitidine (AZA) (NCT03248479) and further investigate these underlying mechanisms in preclinical models. Methods: In a multicenter prospective study, CBCs, peripheral blood, and bone marrow (BM) were collected at prespecified timepoints from HR-MDS pts (n = 57) treated with magrolimab in combination with AZA. CBCs were measured, and blood and BM samples were analyzed by flow cytometry for expression of CD47 on RBCs and WBCs. Magrolimab was initially dosed with a priming dose (1mg/kg) followed by an initial weekly maintenance dosing (30mg/kg) before transitioning to every 2 weeks maintenance dosing. AZA 75mg/m 2 was administered on days 1-7 of the 28-day cycle. Preclinical modeling studies were conducted with intact and Fc-deficient anti-mouse CD47 (MIAP410) and anti-human CD47 (magrolimab) antibodies in murine models, including C57BL/6J B-hSIRPA/hCD47 mice. Results: Combination treatment of magrolimab with AZA resulted in a tolerable anemia that correlated with rapid, near complete loss of CD47 from RBCs, but not WBCs. The initial 1mg/kg priming dose was sufficient for this CD47 loss, which persisted under subsequent 30mg/kg maintenance doses. Both findings are consistent with prior clinical observations in solid tumor pts with magrolimab monotherapy and lymphoma pts in combination with rituximab. Our preclinical studies with mouse models revealed that the CD47 removal is mechanistically independent of previously described RBC antigen modulation mechanisms and cellular compartments. Instead, this CD47 loss requires anti-CD47 crosslinking between RBCs and non-RBCs. Conclusions: Overall, these results support that on-target magrolimab mediated anemia is mitigated by a near complete loss of RBC CD47. HR-MDS patients treated with magrolimab in combination with AZA exhibit a tolerable anemia through priming and maintenance doses. Clinical trial information: NCT03248479.
Chemotherapy plus epidermal growth factor receptor (EGFR) inhibitors, such as cetuximab, is standard therapy for KRAS wild-type (KRASwt) colorectal cancer (CRC); however, responses are infrequent. Magrolimab is a monoclonal antibody targeting CD47, an antiphagocytic signal overexpressed in solid tumors (STs). This open-label, multicenter phase 1b/2 study (NCT02953782) aimed to determine the recommended phase 2 dose (RP2D) and evaluate the safety, tolerability, and efficacy of magrolimab + cetuximab in patients with advanced CRC or other STs. A total of 78 patients were enrolled at eight study sites in the USA. In phase 1b, patients with advanced STs received weekly maintenance doses of magrolimab at 10–45 mg/kg and cetuximab at 200–250 mg/m2 following 3 + 3 dose-escalation. In phase 2, patients with anti–EGFR-refractory CRC received magrolimab + cetuximab at RP2Ds. Primary endpoints were dose-limiting toxicities, adverse events, and objective response rate (ORR; phase 2). The maximum tolerated dose was not reached in phase 1b. Two RP2Ds were explored in phase 2: magrolimab at 30 or 45 mg/kg plus cetuximab at 250 mg/m2. Most common treatment-related adverse events (TRAEs) were dermatitis acneiform (35.9%), infusion-related reactions (33.3%), dry skin (32.1%), fatigue (32.1%), and headache (29.5%). Most common grade ≥ 3 TRAEs were anemia (11.5%), increased blood bilirubin (9.0%), and decreased lymphocyte count (9.0%). Discontinuation of any study treatment owing to TRAEs occurred in 3.8% of patients. No deaths occurred due to TRAEs. In phase 2, ORR was 6.3% and 0% in the KRASwt and KRASmt CRC cohorts, respectively; disease control rate was 50.0% and 38.1%, and median overall survival was 9.5 and 7.6 months, respectively. These results indicate tolerability and potential antitumor activity when combining anti-CD47 therapy and cetuximab in heavily pretreated patients with CRC.
… is a therapeutic anti-CD47 antibody with anti-tumor potency, which can be … limits the efficacy of this antibody in solid tumors. … expression and subsequently inhibit the immune response. …
Tumour therapy has entered the era of immunotherapy. Monoclonal antibodies (mAb), immune checkpoint inhibitors, chimeric antigen receptor T‐cell (CAR‐T), cytokine‐induced killer (CIK), tumour‐infiltrating lymphocytes (TILs) and other cellular immunotherapies have become the focus of current research. The CD47/SIRPα target is becoming another popular tumour immunotherapy target following the PDCD1/CD247(PD1/PD‐L1) checkpoint inhibitor. In recent years, a large number of CD47/SIRPα mAbs, fusion proteins, and CD47/SIRPα‐based bispecific antibodies (BsAbs) are undergoing preclinical and clinical trials and have good curative effects in the treatment of haematological tumours and solid tumours. They bring new vitality and hope for the treatment of patients with advanced tumours. This review summarizes the research progress of CD47/SIRPα‐based BsAbs with different targets for tumour treatment. There are 12 and 9 BsAbs in clinical trials and pre‐clinical research, respectively. We report on the mechanism of 15 BsAb molecules with different target and analyse the efficacy and safety of preclinical and clinical trials, discuss the issues that may be faced in the development of CD47‐based BsAbs, and dual‐target molecules, and summarize their development prospects. This review provides a reference for the safety and effectiveness of BsAbs in clinical application and in the future development of antibodies.
… overexpression is a common feature of hematologic and solid tumors (7–10). By binding and … A dose-dependent response was seen when the antibody was increased to 32 mg/kg …
ABSTRACT The host immune system generally serves as a barrier against tumor formation. Programmed death-ligand 1 (PD-L1) is a critical “don't find me” signal to the adaptive immune system, whereas CD47 transmits an anti-phagocytic signal, known as the “don't eat me” signal, to the innate immune system. These and similar immune checkpoints are often overexpressed on human tumors. Thus, dual targeting both innate and adaptive immune checkpoints would likely maximize anti-tumor therapeutic effect and elicit more durable responses. Herein, based on the variable region of atezolizumab and consensus variant 1 (CV1) monomer, we constructed a dual-targeting fusion protein targeting both CD47 and PD-L1 using “Knobs-into-holes” technology, denoted as IAB. It was effective in inducing phagocytosis of tumor cells, stimulating T-cell activation and mediating antibody-dependent cell-mediated cytotoxicity in vitro. No obvious sign of hematological toxicity was observed in mice administered IAB at a dose of 100 mg/kg, and IAB exhibited potent antitumor activity in an immune-competent mouse model of MC38. Additionally, the anti-tumor effect of IAB was impaired by anti-CD8 antibody or clodronate liposomes, which implied that both CD8+ T cells and macrophages were required for the anti-tumor efficacy of IAB and IAB plays an essential role in the engagement of innate and adaptive immune responses. Collectively, these results demonstrate the capacity of an elicited endogenous immune response against tumors and elucidate essential characteristics of synergistic innate and adaptive immune response, and indicate dual blockade of CD47 and PD-L1 by IAB may be a synergistic therapy that activates both innate and adaptive immune response against tumors.
114Background: Magrolimab (M, Hu5F9-G4) is an antibody targeting CD47, a macrophage “don’t eat me” signal that demonstrates preclinical synergy with cetuximab (C) in refractory KRAS wild type (KRAS...
… in various blood and solid tumors, interacts with ligand SIPRα … synergize with CD47 antibody in reducing tumor growth in … , CD47 blockade triggers a strong anti-tumor T cell response …
18Background: Magrolimab (M, Hu5F9-G4) is an antibody targeting CD47, a “don’t eat me” signal for macrophages that enhances ovarian cancer cell phagocytosis in preclinical models in combination wit...
… cancer cells (2–4). In this study, a previously undescribed effect of the anti-CD47 antibody … to the tumor would be recruited into the tumor-rejection reaction. This is the case for the anti-…
BACKGROUND CD47 has been identified as a phagocytosis checkpoint conferring poor clinical outcomes in various cancer types. A flurry of clinical trials designed to evaluate agents that block CD47 have been initiated. We aimed to explore the clinical significance of CD47 and its correlation with immune infiltration and molecular features in clear cell renal cell carcinoma (ccRCC). METHODS 235 tumor tissue microarray specimens of ccRCC patients from Zhongshan Hospital, 530 ccRCC patients from The Cancer Genome Atlas and 726 ccRCC patients from JAVELIN Renal 101 study were analyzed. CD47 expression and immune contexture were examined by immunohistochemistry and CIBERSORT algorithm. Survival analyses were conducted through Kaplan-Meier curves and Cox regression model. RESULTS We demonstrated that ccRCC patients with high CD47 expression exhibited inferior overall survival and recurrence-free survival. CD47 expression associated with heavily immune infiltrated but immunosuppressed microenvironment. CD8+ T cells infiltration had discordant prognostic value based on CD47 expression, where high CD8+ T cell infiltration was associated with worse clinical outcome in CD47hi patients and with favorable prognosis in CD47lo patients. Patients with mutated PBRM1 and SETD2 correlated with decreased CD47 mRNA expression. Patients with higher CD47 expression possessed improved PFS in ICI + VEGFR TKI combination therapy. CONCLUSIONS CD47 expression was an independent prognosticator of clinical outcome for ccRCC patients. CD47 expression correlated with ccRCC molecular classification and response to combination therapy. The phagocytosis checkpoint CD47 could be applied as an attractive candidate for immunotherapeutic approach in ccRCC.
The CD47 molecule, often referred to as the “do not eat me” signal, is frequently overexpressed in tumor cells. This signaling pathway limits phagocytosis by macrophages. Our objective was to determine CD47 abundance in various soft tissue sarcomas (STS) to investigate whether it could serve as a potential evasion mechanism for tumor cells. Additionally, we aimed to assess the prognostic value of CD47 expression by examining its association with different clinicopathological factors. This study aimed to elucidate the significance of CD47 in the context of emerging anti-tumor targeting approaches. In this retrospective study, formalin-fixed paraffine-embedded (FFPE) tumor tissues of 55 treatment-naïve patients were evaluated by immunohistochemistry for the abundance of CD47 molecule on tumor cells. The categorization of CD47 positivity was as follows: 0 (no staining of tumor cells), 1 + (less than 1/3 of tumor area positive), 2 + (between 1/3 and 2/3 of tumor area positive), and 3 + (more than 2/3 of tumor area positive for CD47). Next, we compared CD47 abundance between different tumor grades (G1–3). We used Kaplan–Meier survival curves with log-rank test to analyze the differences in survival between patients with different CD47 expression. Moreover, we performed Cox proportional hazards regression model to evaluate the clinical significance of CD47. CD47 is widely prevalent across distinct STS subtypes. More than 80% of high grade undifferentiated pleiomorphic sarcoma (UPS), 70% of myxofibrosarcoma (MFS) and more than 60% of liposarcoma (LPS) samples displayed a pattern of moderate-to-diffuse positivity. This phenomenon remains consistent regardless of the tumor grade. However, there was a tendency for higher CD47 expression levels in the G3 group compared to the combined G1 + G2 groups when all LPS, MFS, and UPS were analyzed together. No significant associations were observed between CD47 abundance, death, and metastatic status. Additionally, high CD47 expression was associated with a statistically significant increase in progression-free survival in the studied cohort of patients. This study highlights the potential of the CD47 molecule as a promising immunotherapeutic target in STS, particularly given its elevated expression levels in diverse sarcoma types. Our data showed a notable trend linking CD47 expression to tumor grade, while also suggesting an interesting correlation between enhanced abundance of CD47 expression and a reduced hazard risk of disease progression. Although these findings shed light on different roles of CD47 in STS, further research is crucial to assess its potential in clinical settings.
CD47 is a widely expressed cellular receptor well known for its immunoregulatory functions. By interacting with its ligands, including thrombospondin-1 (TSP-1), signal regulatory protein α (SIRPα), integrins, and SH2-domain bearing protein tyrosine phosphatase substrate-1 (SHPS-1), it modulates cellular phagocytosis by macrophages, transmigration of neutrophils and activation of dendritic cells, T cells and B cells. Ample studies have shown that various types of cancer express high levels of CD47 to escape from the immune system. Based on this observation, CD47 is currently considered as a prominent target in cancer therapy. Here, we review the role of CD47 in the maintenance of immune system homeostasis. We also depict three emerging CD47-targeting strategies for cancer therapy, including the use of mimicry peptides, antibodies, and gene silencing strategies. Among these approaches, the most advanced one is the use of anti-CD47 antibodies, which enhances cancer cell phagocytosis via inhibition of the CD47-SIRPα axis. These antibodies can also achieve higher anti-cancer efficacies when combined with chemotherapy and immunotherapy and hold promise for improving the survival of patients with cancer.
ABSTRACT The treatment of breast cancer largely depends on the utilization of immunogenic chemotherapeutics, which, as a common leitmotif, stimulate the exposure of calreticulin (CALR) on the surface of cancer cells, thereby facilitating their recognition by dendritic cells for the uptake of tumor-associated antigens and subsequent antigen cross-presentation to cytotoxic T cells. Breast cancer cells also express the calreticulin antagonist CD47, which inhibits tumor cell phagocytosis and consequently subverts anticancer immune responses. Here, we treated carcinogen-induced or transplantable mouse models of cancer by a CD47 blocking antibody that was at least as efficient as chemotherapy and that could be favorably combined with the anthracycline mitoxantrone in the context of carcinogen-induced orthotopic breast cancers. Monotherapy by CD47 blockade led to a reduction in tumor growth and an increase in overall survival. Of note, this treatment lead to a moderate depletion of M2 macrophages as well as close-to-complete elimination of regulatory T cells from the tumor bed, suggesting a strong favorable impact of CD47 blockade on the tumor microenvironment.
Macrophage phagocytosis of tumor cells mediated by CD47-specific blocking antibodies has been proposed to be the major effector mechanism in xenograft models. Here, using syngeneic immunocompetent mouse tumor models, we reveal that the therapeutic effects of CD47 blockade depend on dendritic cell but not macrophage cross-priming of T cell responses. The therapeutic effects of anti-CD47 antibody therapy were abrogated in T cell–deficient mice. In addition, the antitumor effects of CD47 blockade required expression of the cytosolic DNA sensor STING, but neither MyD88 nor TRIF, in CD11c+ cells, suggesting that cytosolic sensing of DNA from tumor cells is enhanced by anti-CD47 treatment, further bridging the innate and adaptive responses. Notably, the timing of administration of standard chemotherapy markedly impacted the induction of antitumor T cell responses by CD47 blockade. Together, our findings indicate that CD47 blockade drives T cell–mediated elimination of immunogenic tumors.
<div>Abstract<p>CD47, also called integrin-associated protein, plays a critical role in the innate immune response and is an atypical member of the immunoglobulin superfamily that interacts with and activates β3 integrins. β3 integrin<sup>−/−</sup> mice have defective platelet and osteoclast function and are protected from bone metastasis. The role of CD47 in skeletal homeostasis and bone metastasis has not been described. CD47<sup>−/−</sup> mice had increased bone mass and defective osteoclast function <i>in vivo</i>. Although the number of functional osteoclasts formed by differentiating CD47<sup>−/−</sup> bone marrow macrophages was decreased, high doses of RANKL rescued differentiation and function of CD47<sup>−/−</sup> osteoclasts <i>ex vivo</i> and rescued the osteoclast defect in CD47<sup>−/−</sup> mice. Inhibition of nitric oxide (NO) synthase, which is expressed at higher levels in CD47<sup>−/−</sup> osteoclasts, also rescued the osteoclast defect in CD47<sup>−/−</sup> cells. We then examined the consequences of this osteoclast defect in bone metastasis. In a model of tumor metastasis to bone, bone tumor burden was decreased in the CD47<sup>−/−</sup> mice compared with wild-type (WT) controls, with no decrease in s.c. tumor growth in CD47<sup>−/−</sup> mice. There was decreased tumor-associated bone destruction in the CD47<sup>−/−</sup> mice compared with WT controls, consistent with a defect in osteoclast function that was not rescued by the presence of tumor. Our data show that CD47 regulates osteoclastogenesis, in part, via regulation of NO production, and its disruption leads to a decrease in tumor bone metastasis. CD47 is a novel therapeutic target to strengthen bone mass and diminish metastatic tumor growth in bone. [Cancer Res 2009;69(7):3196–204]</p></div>
CD47 expressed on tumor cells binds to signal regulatory protein alpha on macrophages, initiating inhibition of phagocytosis. We investigated the relationships between tumor expression of CD47 and CD68 macrophage content, subsets of tumor‐infiltrating lymphocytes (TILs), and vascular invasion in breast cancer. A population‐based series of 282 cases (200 screen detected and 82 interval patients) from the Norwegian Breast Cancer Screening Program was examined. Immunohistochemical staining for CD47 and CD68 was evaluated on tissue microarray (TMA) slides. For CD47 evaluation, a staining index was used. CD68 tumor‐associated macrophages were counted and dichotomized. TIL subsets (CD45, CD3, CD4, CD8, and FOXP3) were counted and dichotomized using immunohistochemistry on TMA slides. Vascular invasion (both lymphatic and blood vessel) was determined on whole tissue slides. High CD47 tumor cell expression or high counts of CD68 macrophages were significantly associated with elevated levels of all TIL subsets (p < 0.02), CD163 macrophages (p < 0.001), blood vessel invasion (CD31 positive) (p < 0.01), and high tumor cell Ki67 (p < 0.004). High CD47 expression was associated with ER negativity (p < 0.001), HER2 positive status (p = 0.03), and interval‐detected tumors (p = 0.03). Combined high expression of CD47–CD68 was associated with a shorter recurrence‐free survival (RFS) by multivariate analysis (hazard ratio [HR]: 2.37, p = 0.018), adjusting for tumor diameter, histologic grade, lymph node status, and molecular subtype. Patients with luminal A tumors showed a shorter RFS for CD47–CD68 high cases by multivariate assessment (HR: 5.73, p = 0.004). This study demonstrates an association of concurrent high CD47 tumor cell expression and high CD68 macrophage counts with various TIL subsets, blood vessel invasion (CD31 positive), other aggressive tumor features, and interval‐presenting breast cancer. Our findings suggest a link between CD47, tumor immune response, and blood vessel invasion (CD31 positive). Combined high expression of CD47–CD68 was an independent prognostic factor associated with poor prognosis in all cases, as well as in the luminal A category.
CD47 is an antiphagocytic molecule that contributes to tumor cell resistance in host immune surveillance. CD47 overexpression correlated with tumor progression and shorter survival in lung cancer. However, the expression and functional significance of CD47 in Non‐Small Cell Lung Cancer (NSCLC) has not been completely understood.
Background The Hu5F9‐G4 (hereafter, 5F9) antibody is a macrophage immune checkpoint inhibitor blocking CD47 that induces tumor‐cell phagocytosis. 5F9 synergizes with rituximab to eliminate B‐cell non‐Hodgkin's lymphoma cells by enhancing macrophage‐mediated antibody‐dependent cellular phagocytosis. This combination was evaluated clinically. Methods We conducted a phase 1b study involving patients with relapsed or refractory non‐Hodgkin's lymphoma. Patients may have had diffuse large B‐cell lymphoma (DLBCL) or follicular lymphoma. 5F9 (at a priming dose of 1 mg per kilogram of body weight, administered intravenously, with weekly maintenance doses of 10 to 30 mg per kilogram) was given with rituximab to determine safety and efficacy and to suggest a phase 2 dose. Results A total of 22 patients (15 with DLBCL and 7 with follicular lymphoma) were enrolled. Patients had received a median of 4 (range, 2 to 10) previous therapies, and 95% of the patients had disease that was refractory to rituximab. Adverse events were predominantly of grade 1 or 2. The most common adverse events were anemia and infusion‐related reactions. Anemia (an expected on‐target effect) was mitigated by the strategy of 5F9 prime and maintenance dosing. Dose‐limiting side effects were rare. A selected phase 2 dose of 30 mg of 5F9 per kilogram led to an approximate 100% CD47‐receptor occupancy on circulating white and red cells. A total of 50% of the patients had an objective (i.e., complete or partial) response, with 36% having a complete response. The rates of objective response and complete response were 40% and 33%, respectively, among patients with DLBCL and 71% and 43%, respectively, among those with follicular lymphoma. At a median follow‐up of 6.2 months among patients with DLBCL and 8.1 months among those with follicular lymphoma, 91% of the responses were ongoing. Conclusions The macrophage checkpoint inhibitor 5F9 combined with rituximab showed promising activity in patients with aggressive and indolent lymphoma. No clinically significant safety events were observed in this initial study. (Funded by Forty Seven and the Leukemia and Lymphoma Society; ClinicalTrials.gov number, NCT02953509.)
CD47 is a novel therapeutic target in the treatment of solid‐organ and hematologic malignancies. CD47 is also expressed on RBCs. Here, we report our experience of the RBC effects and the impact on blood bank testing and transfusion management in a Phase 1 trial of the humanized anti‐CD47 monoclonal antibody Hu5F9‐G4 in relapsed or primary refractory acute myeloid leukemia (AML) (NCT02678338).
PURPOSE To evaluate the safety, pharmacokinetics, and pharmacodynamics of Hu5F9-G4 (5F9), a humanized IgG4 antibody that targets CD47 to enable phagocytosis. PATIENTS AND METHODS Adult patients with solid tumors were treated in four cohorts: part A, to determine a priming dose; part B, to determine a weekly maintenance dose; part C, to study a loading dose in week 2; and a tumor biopsy cohort. RESULTS Sixty-two patients were treated: 11 in part A, 14 in B, 22 in C, and 15 in the biopsy cohort. Part A used doses that ranged from 0.1 to 3 mg/kg. On the basis of tolerability and receptor occupancy studies that showed 100% CD47 saturation on RBCs, 1 mg/kg was selected as the priming dose. In subsequent groups, patients were treated with maintenance doses that ranged from 3 to 45 mg/kg, and most toxicities were mild to moderate. These included transient anemia (57% of patients), hemagglutination on peripheral blood smear (36%), fatigue (64%), headaches (50%), fever (45%), chills (45%), hyperbilirubinemia (34%), lymphopenia (34%), infusion-related reactions (34%), and arthralgias (18%). No maximum tolerated dose was reached with maintenance doses up to 45 mg/kg. At doses of 10 mg/kg or more, the CD47 antigen sink was saturated by 5F9, and a 5F9 half-life of approximately 13 days was observed. Strong antibody staining of tumor tissue was observed in a patient at 30 mg/kg. Two patients with ovarian/fallopian tube cancers had partial remissions for 5.2 and 9.2 months. CONCLUSION 5F9 is well tolerated using a priming dose at 1 mg/kg on day 1 followed by maintenance doses of up to 45 mg/kg weekly.
SUMMARY Acute myelogenous leukemia (AML) is organized as a cellular hierarchy initiated and maintained by a subset of self-renewing leukemia stem cells (LSC). We hypothesized that increased CD47 expression on human AML LSC contributes to pathogenesis by inhibiting their phagocytosis through the interaction of CD47 with an inhibitory receptor on phagocytes. We found that CD47 was more highly expressed on AML LSC than their normal counterparts, and that increased CD47 expression predicted worse overall survival in 3 independent cohorts of adult AML patients. Furthermore, blocking monoclonal antibodies directed against CD47 preferentially enabled phagocytosis of AML LSC and inhibited their engraftment in vivo. Finally, treatment of human AML LSC-engrafted mice with anti-CD47 antibody depleted AML and targeted AML LSC. In summary, increased CD47 expression is an independent poor prognostic factor that can be targeted on human AML stem cells with blocking monoclonal antibodies capable of enabling phagocytosis of LSC.
合并后形成八个相互并列的方向:首先建立CD47–SIRPα吞噬检查点的机制和总体治疗图谱;其次分别呈现血液瘤的疾病生物学、临床前依据及较成熟的临床联合治疗证据;再次将实体瘤区分为表达与临床前疗效研究,以及独立的早期临床探索;随后讨论CD47阻断与适应性免疫的协同,以及肿瘤选择性药物和工程化巨噬细胞等新技术;最后以跨瘤种疗效、安全性、临床失败和模型外推限制进行综合比较。总体而言,血液瘤拥有更丰富的人体临床数据和联合治疗信号,而实体瘤疗效更依赖肿瘤微环境、联合免疫策略和肿瘤选择性设计。