输血依赖与铁过载管理
输血相关铁过载的发生机制、毒性与全身临床后果
本组聚焦输血依赖、无效造血和铁代谢异常导致铁负荷累积的基本机制,以及铁沉积引发的肝脏、心脏、肺部和其他全身性损伤。文献重点在于阐释铁过载的疾病生物学、毒性机制、临床负担和总体管理目标,而不以具体影像学技术或单一螯合药物比较为核心。
- Iron overload in thalassemia: different organs at different rates.(A. Taher, Antoine N. Saliba, 2017, Hematology)
- Iron overload following red blood cell transfusion and its impact on disease severity.(C. Ozment, Jennifer L. Turi, 2009, Biochimica et Biophysica Acta (BBA) - General Subjects)
- Transfusional iron overload(Sujit Sheth, 2022, Rossi's Principles of Transfusion Medicine)
- The Clinical Significance of Iron Overload and Iron Metabolism in Myelodysplastic Syndrome and Acute Myeloid Leukemia(Sarah Weber, Anastasia Parmon, Nina Kurrle, F. Schnütgen, H. Serve, 2021, Frontiers in Immunology)
- Iron Overload and Chelation Therapy in Non-Transfusion Dependent Thalassemia(R. Bou-Fakhredin, A. Bazarbachi, B. Chaya, Joseph Sleiman, M. Cappellini, A. Taher, 2017, International Journal of Molecular Sciences)
- Understanding the Intricacies of Iron Overload Associated with β-Thalassemia: A Comprehensive Review(Subhangi Basu, Motiur Rahaman, T. Dolai, P. Shukla, N. Chakravorty, 2023, Thalassemia Reports)
- Management of iron overload: lessons from transfusion-dependent hemoglobinopathies.(Thomas D Coates, 2024, Blood)
- Iron overload and toxicity: the hidden risk of multiple blood transfusions(A. Shander, M. D. Cappellini, L. T. Goodnough, 2009, Vox Sanguinis)
- Complications in patients with transfusion dependent thalassemia: A descriptive cross‐sectional study(Mohammad Faranoush, Pooya Faranoush, Iraj Heydari, M. Foroughi‐Gilvaee, A. Azarkeivan, Ali Parsai Kia, Negin Sadighnia, Ali Elahinia, Afsoon Zandi, Mohammad Reza Rezvany, Nahid Hashemi-Madani, Amir Ziaee, Reza Nekouian, F. Rohani, 2023, Health Science Reports)
- Pulmonary function in patients with transfusion-dependent thalassemia and its associations with iron overload(K. Chan, C. Au, A. Leung, Albert M. Li, Chi-kong Li, M. Wong, Carol Li, Hang L. Cheung, Philip Fan, S. Ling, R. Li, S. Ha, 2023, Scientific Reports)
- Iron overload in transfusion-dependent patients.(T. Coates, 2019, Hematology)
- Clinical consequences of iron overload from chronic red blood cell transfusions, its diagnosis, and its management by chelation therapy(A. Shander, K. Sazama, 2010, Transfusion)
- Concepts and goals in the management of transfusional iron overload(J. Porter, 2007, American Journal of Hematology)
- Iron overload disorders(Christine C. Hsu, N. Senussi, K. Fertrin, K. Kowdley, 2022, Hepatology Communications)
非输血依赖型地中海贫血的铁过载与螯合决策
本组专门讨论非输血依赖型地中海贫血及地中海贫血中间型患者的铁过载。研究重点包括肠道铁吸收增加、无规律输血背景下的铁积累、肝脏及其他器官并发症,以及肝铁浓度评估和螯合治疗启动决策。
- Non-transfusion-dependent thalassemias(K. Musallam, S. Rivella, E. Vichinsky, E. Rachmilewitz, 2013, Haematologica)
- Iron overload in non-transfusion-dependent thalassemia(K. Musallam, 2013, Thalassemia Reports)
- Thalassemia Intermedia: Chelator or Not?(Yen-Chien Lee, Chi-Tai Yen, Yen-ling Lee, Rong-Jane Chen, 2022, International Journal of Molecular Sciences)
- Iron overload in non-transfusion-dependent thalassemia: association with genotype and clinical risk factors(A. Tantiworawit, P. Charoenkwan, S. Hantrakool, W. Choeyprasert, C. Sivasomboon, T. Sanguansermsri, 2016, International Journal of Hematology)
铁过载的实验室评估、MRI器官定量与动态监测
本组集中于铁过载的实验室评估、组织铁定量和长期监测,涵盖血清铁蛋白、肝铁浓度、心脏及肝脏MRI、T2/T2*、R2/R2*、T1/T2 mapping及多回波心血管磁共振技术。研究共同强调血清指标与组织铁之间可能存在偏差,以及器官特异性无创监测在早期识别、风险分层和疗效随访中的价值。
- Ferritin in Human Tissues and Serum(Mark Worwood, 1982, Clinics in Haematology)
- Severe Liver Iron Concentrations (LIC) in 24 Patients with β-Thalassemia Major: Correlations with Serum Ferritin, Liver Enzymes and Endocrine Complications(I. Kanbour, P. Chandra, A. Soliman, V. De Sanctis, A.J. Nashwan, Sandra Abusamaan, Abbas Moustafa, M. Yassin, 2018, Mediterranean Journal of Hematology and Infectious Diseases)
- Magnetic resonance imaging measurement of iron overload(J. Wood, 2007, Current Opinion in Hematology)
- Serum ferritin underestimates liver iron concentration in transfusion independent thalassemia patients as compared to regularly transfused thalassemia and sickle cell patients(Z. Pakbaz, R. Fischer, E. Fung, P. Nielsen, P. Harmatz, E. Vichinsky, 2007, Pediatric Blood & Cancer)
- Cardiac iron overload in chronically transfused patients with thalassemia, sickle cell anemia, or myelodysplastic syndrome(M. de Montalembert, J. Ribeil, V. Brousse, A. Guerci-Bresler, A. Stamatoullas, J. Vannier, C. Dumesnil, A. Lahary, M. Touati, K. Bouabdallah, M. Cavazzana, E. Chauzit, A. Baptiste, T. Lefèbvre, H. Puy, C. Elie, Z. Karim, O. Ernst, C. Rose, 2017, PLOS ONE)
- Investigation and management of a raised serum ferritin(J. Cullis, E. Fitzsimons, W. Griffiths, E. Tsochatzis, D. Thomas, 2018, British Journal of Haematology)
- Serum ferritin.(Mark Worwood, J. Cook, 1979, CRC Critical Reviews in Clinical Laboratory Sciences)
- Myocardial iron overload assessment by T2* magnetic resonance imaging in adult transfusion dependent patients with acquired anemias(A. D. Di Tucci, G. Matta, S. Deplano, A. Gabbas, Cristina Depau, D. Derudas, G. Caocci, A. Agus, E. Angelucci, 2008, Haematologica)
- Low Serum Ferritin Levels are Misleading for Detecting Cardiac Iron Overload and Increase the Risk of Cardiomyopathy in Thalassemia Patients. The Importance of Cardiac Iron Overload Monitoring Using Magnetic Resonance Imaging T2 and T2*(A. Kolnagou, C. Economides, E. Eracleous, G. Kontoghiorghes, 2006, Hemoglobin)
- Cardiovascular T2-star (T2*) magnetic resonance for the early diagnosis of myocardial iron overload.(L. Anderson, S. Holden, B. Davis, E. Prescott, C. Charrier, N. Bunce, D. Firmin, B. Wonke, J. Porter, J. Walker, D. Pennell, 2001, European Heart Journal)
- Hepatic iron concentration combined with long‐term monitoring of serum ferritin to predict complications of iron overload in thalassaemia major(P. Telfer, E. Prestcott, S. Holden, M. Walker, A. Hoffbrand, B. Wonke, 2000, British Journal of Haematology)
- Improved R2* measurements in myocardial iron overload(N. Ghugre, C. Enriquez, T. Coates, Marvin D. Nelson, J. Wood, 2006, Journal of Magnetic Resonance Imaging)
- Myocardial iron overload assessed by magnetic resonance imaging (MRI)T2* in multi-transfused patients with thalassemia and acquired anemias.(A. Fragasso, A. Ciancio, C. Mannarella, C. Gaudiano, O. Scarciolla, C. Ottonello, M. Francone, M. Nardella, A. Peluso, A. Melpignano, Maria Rosaria Veglio, G. Quarta, Cristiano Turchetti, 2011, European Journal of Internal Medicine)
- Assessment of iron overload with T2* magnetic resonance imaging.(L. Anderson, 2011, Progress in Cardiovascular Diseases)
- Correlation between serum ferritin levels and liver iron concentration determined by MR imaging: impact of hematologic disease and inflammation.(A. Olthof, P. Sijens, H. Kreeftenberg, P. Kappert, R. Irwan, E. J. van der Jagt, M. Oudkerk, 2007, Magnetic Resonance Imaging)
- T2* map at cardiac MRI reveals incidental hepatic and cardiac iron overload.(J. Brendel, Alina Kratzenstein, Josephine Berger, Florian Hagen, K. Nikolaou, M. Gawaz, S. Greulich, P. Krumm, 2023, Diagnostic and Interventional Imaging)
- Iron overload status in patients with non-transfusion-dependent thalassemia in China(Yumei Huang, Gaohui Yang, Man-zhi Wang, Xiaoyun Wei, L. Pan, Jiaodi Liu, Yu Lei, Peng, L. Long, Y. Lai, Rongrong Liu, 2016, Therapeutic Advances in Hematology)
- Detection of cardiac iron overload with native magnetic resonance T1 and T2 mapping in patients with thalassemia.(R. Krittayaphong, Shuo Zhang, P. Saiviroonporn, V. Viprakasit, P. Tanapibunpon, C. Komoltri, Wipaporn Wangworatrakul, 2017, International Journal of Cardiology)
- Serum ferritin in patients with iron overload and with acute and chronic liver diseases.(J. Prieto, M. Barry, S. Sherlock, 1975, Gastroenterology)
- Early cardiac iron overload in children with transfusion-dependent anemias(J. Fernandes, A. Fabron, Mônica Veríssimo, 2009, Haematologica)
- Multislice multiecho T2* cardiovascular magnetic resonance for detection of the heterogeneous distribution of myocardial iron overload(A. Pepe, V. Positano, M. Santarelli, F. Sorrentino, E. Cracolici, D. De Marchi, A. Maggio, M. Midiri, L. Landini, M. Lombardi, 2006, Journal of Magnetic Resonance Imaging)
- MRI of cardiac iron overload(W. Chu, W. Au, W. M. Lam, 2012, Journal of Magnetic Resonance Imaging)
- Evaluation of cardiac and hepatic iron overload in thalassemia major patients with T2* magnetic resonance imaging(P. Wahidiyat, Felix Liauw, Damayanti Sekarsari, Siti Ayu Putriasih, V. Berdoukas, D. Pennell, 2017, Hematology)
- History and Current Impact of Cardiac Magnetic Resonance Imaging on the Management of Iron Overload(J. Wood, 2009, Circulation)
- A comparison of magnetic resonance imaging and cardiac biopsy in the evaluation of heart iron overload in patients with β‐thalassemia major(S. Mavrogeni, V. Markussis, L. Kaklamanis, D. Tsiapras, I. Paraskevaidis, Georgios Karavolias, M. Karagiorga, M. Douskou, D. Cokkinos, D. Kremastinos, 2005, European Journal of Haematology)
- Myocardial iron overload by cardiovascular magnetic resonance native segmental T1 mapping: a sensitive approach that correlates with cardiac complications(A. Meloni, N. Martini, V. Positano, A. de Luca, L. Pistoia, Sara Sbragi, A. Spasiano, T. Casini, P. Bitti, Massimo Allò, P. M. G. Sanna, R. de Caterina, G. Sinagra, A. Pepe, 2021, Journal of Cardiovascular Magnetic Resonance)
- Quantification of Myocardial Iron Overload by Cardiovascular Magnetic Resonance Imaging T2* and Review of the Literature(Ashok Kondur, Tao Li, P. Vaitkevicius, L. Afonso, 2009, Clinical Cardiology)
- On T2* Magnetic Resonance and Cardiac Iron(J. Carpenter, M. Sheppard, J. Porter, J. Wood, G. Forni, D. Firmin, 2011, Circulation)
- Prevalence and distribution of iron overload in patients with transfusion‐dependent anemias differs across geographic regions: results from the CORDELIA study(Y. Aydinok, J. Porter, A. Piga, Mohsen Saleh Elalfy, A. El‐Beshlawy, Y. Kilinç, V. Viprakasit, A. Yeşilipek, D. Habr, E. Quebe‐Fehling, D. Pennell, 2015, European Journal of Haematology)
- A single breath‐hold multiecho T2* cardiovascular magnetic resonance technique for diagnosis of myocardial iron overload(M. Westwood, L. Anderson, D. Firmin, P. Gatehouse, C. Charrier, B. Wonke, D. Pennell, 2003, Journal of Magnetic Resonance Imaging)
- Correlation of liver iron concentration determined by R2 magnetic resonance imaging with serum ferritin in patients with thalassemia intermedia(A. Taher, Fuad El Rassi, H. Isma'eel, Suzan Koussa, A. Inati, M. Cappellini, 2008, Haematologica)
- Iron status as measured by serum ferritin: the marker and its limitations.(Ivor Cavill, 1999, American Journal of Kidney Diseases)
- The impact of liver steatosis on the ability of serum ferritin levels to be predictive of liver iron concentration in non‐transfusion‐dependent thalassaemia patients(P. Ricchi, A. Meloni, A. Spasiano, S. Costantini, A. Pepe, Patrizia Cinque, A. Filosa, 2018, British Journal of Haematology)
铁螯合治疗的药物选择、联合方案与器官特异性管理
本组围绕铁螯合治疗的药物策略和长期管理展开,涵盖去铁胺、去铁酮、地拉罗司及口服螯合剂的疗效、安全性、适应证、给药方式和联合治疗。文献还涉及心脏铁过载的清除、治疗启动与强化、不同疾病场景下的方案选择,以及减少输血铁输入和优化总体铁负荷管理的策略。
- Iron Chelators in Treatment of Iron Overload(Sarina Entezari, Seyedeh Mona Haghi, Narges Norouzkhani, Barsa Sahebnazar, Fatemeh Vosoughian, Diba Akbarzadeh, Muhammad Islampanah, Navid Naghsh, Mohammad Abbasalizadeh, N. Deravi, 2022, Journal of Toxicology)
- Iron chelation therapy in sickle-cell disease and other transfusion-dependent anemias.(J. Kwiatkowski, A. Cohen, 2004, Hematology/Oncology Clinics of North America)
- Iron chelation therapy in thalassemia major: a systematic review with meta-analyses of 1520 patients included on randomized clinical trials.(A. Maggio, A. Filosa, A. Vitrano, G. Aloj, A. Kattamis, A. Ceci, S. Fucharoen, P. Cianciulli, R. Grady, L. Prossomariti, J. Porter, A. Iacono, M. Cappellini, F. Bonifazi, F. Cassarà, P. Harmatz, J. Wood, C. Gluud, 2011, Blood Cells, Molecules, and Diseases)
- Iron chelation therapy(A. Bruzzese, E. Martino, F. Mendicino, E. Lucia, V. Olivito, C. Bova, G. Filippelli, I. Capodanno, A. Neri, F. Morabito, M. Gentile, E. Vigna, 2023, European Journal of Haematology)
- Clinical Challenges with Iron Chelation in Beta Thalassemia.(J. Kwiatkowski, 2023, Hematology/Oncology Clinics of North America)
- Overview of guidelines on iron chelation therapy in patients with myelodysplastic syndromes and transfusional iron overload(N. Gattermann, 2008, International Journal of Hematology)
- Strategies for managing transfusional iron overload: conventional treatments and novel strategies(S. Sheth, 2019, Current Opinion in Hematology)
- Current recommendations for chelation for transfusion‐dependent thalassemia(J. Kwiatkowski, 2016, Annals of the New York Academy of Sciences)
- Myelodysplastic syndromes: iron overload consequences and current chelating therapies.(P. Greenberg, 2006, Journal of the National Comprehensive Cancer Network)
- Reducing the iron burden and improving survival in transfusion-dependent thalassemia patients: current perspectives(K. Bayanzay, Lama Alzoebie, 2016, Journal of Blood Medicine)
- Deferiprone(J. A. Barman Balfour, R. Foster, 1999, Drugs)
- Iron-chelating therapy and the treatment of thalassemia.(N. Olivieri, G. Brittenham, 1997, Blood)
- Efficacy and safety of iron-chelation therapy with deferoxamine, deferiprone, and deferasirox for the treatment of iron-loaded patients with non-transfusion-dependent thalassemia syndromes(C. Kontoghiorghe, G. Kontoghiorghes, 2016, Drug Design, Development and Therapy)
- How I treat transfusional iron overload.(A. Hoffbrand, A. Taher, M. Cappellini, 2012, Blood)
- Update on iron chelators in thalassemia.(E. Neufeld, 2010, Hematology)
- Iron chelation beyond transfusion iron overload(A. Pietrangelo, 2007, American Journal of Hematology)
- Iron Toxicity and Chelation Therapy(R. Britton, K. Leicester, B. Bacon, 2002, International Journal of Hematology)
- Iron chelation therapy in the management of transfusion‐related cardiac iron overload(J. Fernandes, 2012, Transfusion)
- Transfusional iron overload and chelation therapy with deferoxamine and deferiprone (L1).(G. Kontoghiorghes, Katerina Pattichi, M. Hadjigavriel, A. Kolnagou, 2000, Transfusion Science)
- Iron chelation therapy in transfusion-dependent thalassemia patients: current strategies and future directions(Antoine N. Saliba, A. Harb, A. Taher, 2015, Journal of Blood Medicine)
- Diagnosis and treatment of cardiac iron overload in transfusion-dependent thalassemia patients(Natthaphat Siri-Angkul, S. Chattipakorn, N. Chattipakorn, 2018, Expert Review of Hematology)
- The effect of iron chelation therapy on overall survival in sickle cell disease and β‐thalassemia: A systematic review(S. Ballas, A. Zeidan, V. Duong, M. Deveaux, M. Heeney, 2018, American Journal of Hematology)
- Iron-Chelating Therapy for Transfusional Iron Overload(G. Brittenham, 2011, New England Journal of Medicine)
- Oral chelators in transfusion-dependent thalassemia major patients may prevent or reverse iron overload complications.(K. Farmaki, Ioanna Tzoumari, C. Pappa, 2011, Blood Cells, Molecules, and Diseases)
- Chelation therapy for iron overload(J. Barton, 2007, Current Gastroenterology Reports)
- Italian Society of Hematology practice guidelines for the management of iron overload in thalassemia major and related disorders(E. Angelucci, G. Barosi, C. Camaschella, M. Cappellini, M. Cazzola, R. Galanello, M. Marchetti, A. Piga, S. Tura, 2008, Haematologica)
- Consensus statement on iron overload in myelodysplastic syndromes(J. Bennett, 2008, American Journal of Hematology)
- Role of deferiprone in chelation therapy for transfusional iron overload.(A. Hoffbrand, A. Cohen, C. Hershko, 2003, Blood)
- Iron Chelation in Thalassemia Major.(C. Borgna-Pignatti, M. Marsella, 2015, Clinical Therapeutics)
- Iron chelation therapy in the management of thalassemia: the Asian perspectives(V. Viprakasit, C. Lee-Lee, Q. Chong, K. Lin, A. Khuhapinant, 2009, International Journal of Hematology)
- Safety and Efficacy of the New Combination Iron Chelation Regimens in Patients with Transfusion-Dependent Thalassemia and Severe Iron Overload(R. Origa, Monia Cinus, Maria Paola Pilia, Barbara Gianesin, Antonietta Zappu, V. Orecchia, M. Clemente, Carla Pitturru, A. R. Denotti, F. Corongiu, Simona Piras, S. Barella, 2022, Journal of Clinical Medicine)
- Management of transfusional iron overload – differential properties and efficacy of iron chelating agents(J. Kwiatkowski, 2011, Journal of Blood Medicine)
- Cardiac iron across different transfusion-dependent diseases(J. Wood, 2008, Blood Reviews)
- Red blood cell transfusions and iron overload in the treatment of patients with myelodysplastic syndromes(E. Jabbour, H. Kantarjian, C. Koller, A. Taher, 2008, Cancer)
MDS及非地中海贫血性输血依赖贫血中的铁过载管理
本组专门聚焦骨髓增生异常综合征及相关非地中海贫血性输血依赖贫血。研究共同关注无效造血、铁调素异常和输血负担造成的继发性铁过载,以及铁毒性对器官功能、输血需求、造血恢复、事件无进展生存和总体生存的影响,并评价去铁治疗的临床获益。
- Iron overload in patients with myelodysplastic syndromes: An updated overview(N. Moukalled, Fuad El Rassi, S. Temraz, A. Taher, 2018, Cancer)
- Iron overload in myelodysplastic syndromes (MDS)(N. Gattermann, 2017, International Journal of Hematology)
- Clinical consequences of acquired transfusional iron overload in adults.(A. Schafer, R. Cheron, R. Dluhy, B. Cooper, R. Gleason, J. Soeldner, H. Bunn, 1981, New England Journal of Medicine)
- Iron chelation therapy associated with improvement of hematopoiesis in transfusion‐dependent patients(E. Oliva, F. Ronco, A. Marino, C. Alati, G. Praticò, F. Nobile, 2010, Transfusion)
- Overall survival in lower IPSS risk MDS by receipt of iron chelation therapy, adjusting for patient‐related factors and measuring from time of first red blood cell transfusion dependence: an MDS‐CAN analysis(H. Leitch, Ambica Parmar, R. Wells, L. Chodirker, N. Zhu, T. Nevill, K. Yee, B. Leber, M. Keating, M. Sabloff, Eve St Hilaire, Rajat Kumar, R. Delage, M. Geddes, J. Storring, A. Kew, A. Shamy, M. Elemary, M. Lenis, A. Mamedov, J. Ivo, J. Francis, Liying Zhang, R. Buckstein, 2017, British Journal of Haematology)
- Iron overload in myelodysplastic syndromes: diagnosis and management.(A. List, 2010, Cancer Control)
- Clinical relevance of anemia and transfusion iron overload in myelodysplastic syndromes.(M. Cazzola, M. D. Della Porta, L. Malcovati, 2008, Hematology)
- Retrospective study of the association between transfusion frequency and potential complications of iron overload in patients with myelodysplastic syndrome and other acquired hematopoietic disorders*(T. Delea, M. Hagiwara, P. Phatak, 2009, Current Medical Research and Opinion)
- Red Blood Cell Transfusion Independence Following the Initiation of Iron Chelation Therapy in Myelodysplastic Syndrome(M. Badawi, L. Vickars, Jocelyn M. Chase, H. Leitch, 2009, Advances in Hematology)
- Adequate iron chelation therapy for at least six months improves survival in transfusion-dependent patients with lower risk myelodysplastic syndromes.(M. Delforge, D. Selleslag, Y. Beguin, A. Triffet, P. Mineur, K. Theunissen, C. Graux, F. Trullemans, D. Boulet, K. van Eygen, L. Noens, S. Van Steenweghen, J. Lemmens, P. Pierre, Randal D'hondt, A. Ferrant, D. Deeren, A. V. D. Van de Velde, W. Wynendaele, M. André, R. de Bock, A. Efira, D. Breems, A. Deweweire, K. Geldhof, W. Pluymers, A. Harrington, K. MacDonald, I. Abraham, C. Ravoet, 2014, Leukemia Research)
- Improved Survival in Patients with Myelodysplastic Syndrome Receiving Iron Chelation Therapy(H. Leitch, C. Léger, Trisha A. Goodman, K. Wong, Dominica H. C. Wong, K. Ramadan, M. Rollins, M. Barnett, P. Galbraith, L. Vickars, 2008, Clinical Leukemia)
- Impact of iron overload and potential benefit from iron chelation in low-risk myelodysplastic syndrome.(Niraj K Shenoy, N. Vallumsetla, E. Rachmilewitz, A. Verma, Y. Ginzburg, 2014, Blood)
- The impact of chelation therapy on survival in transfusional iron overload: a meta-analysis of myelodysplastic syndrome(A. Mainous, R. Tanner, M. Hulihan, Mirna P. Amaya, T. Coates, 2014, British Journal of Haematology)
- Management of iron overload in adult myelodysplastic syndrome.(Heather A. Leitch, R. Buckstein, 2025, Hematology)
- Iron Chelation in Transfusion-Dependent Patients With Low- to Intermediate-1–Risk Myelodysplastic Syndromes(Emanuele Angelucci, Junmin Li, Peter L. Greenberg, Depei Wu, Mingxiao Hou, Efreen Horacio Montaño Figueroa, Maria Guadalupe Rodriguez, Xunwei Dong, Jagannath Ghosh, Miguel Izquierdo, Guillermo Garcia‐Manero, on behalf of the TELESTO Study Investigators*, 2020, Annals of Internal Medicine)
- Iron overload in myelodysplastic syndromes(S. Mahesh, Y. Ginzburg, A. Verma, 2008, Leukemia & Lymphoma)
- Treatment of transfusional iron overload in patients with myelodysplastic syndrome or severe anemia: data from multicenter clinical practices(A. Raptis, M. Duh, Si-Tien Wang, E. Dial, I. Fanourgiakis, B. Fortner, C. Paley, N. Mody-Patel, M. Corral, J. Scott, 2010, Transfusion)
输血依赖与铁过载相关的临床结局及生存预后
本组考察输血依赖、继发性铁过载和螯合治疗与长期临床结局之间的关系,重点包括总生存、心脏事件、疾病进展、AML转化、输血依赖持续时间及预后分层。其核心研究问题是铁负荷本身及其干预是否能够独立影响患者的生存和疾病结局。
- Improved survival with iron chelation therapy for red blood cell transfusion dependent lower IPSS risk MDS may be more significant in patients with a non-RARS diagnosis.(H. Leitch, Christopher Chan, C. Léger, L. Foltz, K. Ramadan, L. Vickars, 2012, Leukemia Research)
- Delayed time from RBC transfusion dependence to first cardiac event in lower IPSS risk MDS patients receiving iron chelation therapy.(Colleen A C Wong, H. Leitch, 2019, Leukemia Research)
- Clinical outcomes of transfusion-associated iron overload in patients with refractory chronic anemia(C. Gao, Li Li, Baoan Chen, Hui-hui Song, Jian Cheng, Xiao-ping Zhang, Yun-yu Sun, 2014, Patient Preference and Adherence)
- Improved survival in MDS patients receiving iron chelation therapy - a matched pair analysis of 188 patients from the Düsseldorf MDS registry.(J. Neukirchen, F. Fox, A. Kündgen, K. Nachtkamp, C. Strupp, R. Haas, U. Germing, N. Gattermann, 2012, Leukemia Research)
- Impact of iron overload in myelodysplastic syndromes.(P. Fenaux, C. Rose, 2009, Blood Reviews)
- Does iron chelation therapy improve survival in regularly transfused lower risk MDS patients? A multicenter study by the GFM (Groupe Francophone des Myélodysplasies).(C. Rose, S. Bréchignac, D. Vassilief, L. Pascal, A. Stamatoullas, A. Guerci, Dalila Larbaa, F. Dreyfus, O. Beyne-Rauzy, M. Chaury, L. Roy, S. Cheze, P. Morel, P. Fenaux, 2010, Leukemia Research)
- Independent Impact of Iron Overload and Transfusion Dependency on Survival and Leukemic Evolution in Patients with Myelodysplastic Syndrome(G. Sanz, B. Nomdedeu, E. Such, T. Bernal, M. Belkaid, M. Ardanaz, V. Marco, C. Pedro, F. Ramos, M. C. Cañizo, E. Luño, F. Cobo, F. Carbonell, V. Gómez, J. Muñoz, M. Amigo, A. Bailén, S. Bonanad, M. Tormo, R. Andreu, B. Arrizabalaga, M. Arilla, J. Bueno, M. Requena, J. Bargay, Joaquín Sánchez, L. Senent, L. Arenillas, R. de Paz, B. Xicoy, R. Duarte, J. Cervera, 2008, Blood)
- Iron overload in lower international prognostic scoring system risk patients with myelodysplastic syndrome receiving red blood cell transfusions: Relation to infections and possible benefit of iron chelation therapy.(Colleen A C Wong, Shannon A Y Wong, H. Leitch, 2018, Leukemia Research)
- Impact of transfusion dependency and secondary iron overload on the survival of patients with myelodysplastic syndromes.(L. Malcovati, 2007, Leukemia Research)
- Improved survival in red blood cell transfusion dependent patients with primary myelofibrosis (PMF) receiving iron chelation therapy(H. Leitch, Jocelyn M. Chase, Trisha A. Goodman, H. Ezzat, M. Rollins, Dominica H. C. Wong, M. Badawi, C. Léger, K. Ramadan, M. Barnett, L. Foltz, L. Vickars, 2009, Hematological Oncology)
铁过载管理指南、依从性与临床实施体系
本组关注铁过载管理从证据到临床实施的转化,涵盖国际和国家级指南、心脏并发症管理建议、患者中心决策、铁螯合治疗依从性及其测量和干预。同时纳入医疗可及性、专科管理体系、血清铁蛋白结果解读和营养支持等影响长期管理质量的实践问题。
- A systematic review of adherence to iron chelation therapy among children and adolescents with thalassemia(P. Reddy, Margaret Locke, S. Badawy, 2022, Annals of Medicine)
- Adherence to Iron Chelation Therapy Among Adults with Thalassemia: A Systematic Review(Margaret Locke, P. S. Reddy, S. Badawy, 2022, Hemoglobin)
- TIF Guidelines for the Management of Transfusion‐Dependent β‐Thalassemia(K. Musallam, M. Domenica Cappellini, John B Porter, D. Farmakis, A. Eleftheriou, M. Angastiniotis, A. Taher, 2025, HemaSphere)
- 2021 Thalassaemia International Federation Guidelines for the Management of Transfusion-dependent Thalassemia(D. Farmakis, J. Porter, A. Taher, M. Domenica Cappellini, M. Angastiniotis, A. Eleftheriou, 2022, HemaSphere)
- Guideline recommendations for heart complications in thalassemia major(T. Cogliandro, G. Derchi, L. Mancuso, M. C. Mayer, B. Pannone, A. Pepe, M. Pili, P. Bina, P. Cianciulli, V. De Sanctis, A. Maggio, 2008, Journal of Cardiovascular Medicine)
- Cross-Talk between Available Guidelines for the Management of Patients with Beta-Thalassemia Major(K. Musallam, M. Angastiniotis, A. Eleftheriou, J. Porter, 2013, Acta Haematologica)
- The challenges of iron chelation therapy in thalassemia: how do we overcome them?(Lauren E Wang, Sara Muttar, S. Badawy, 2025, Expert Review of Hematology)
- Nutritional Deficiencies Are Common in Patients with Transfusion-Dependent Thalassemia and Associated with Iron Overload(Elijah K. Goldberg, Sushrita Neogi, A. Lal, Annie Higa, E. Fung, 2018, Journal of Food and Nutrition Research)
- Retrospective nationwide survey of Japanese patients with transfusion‐dependent MDS and aplastic anemia highlights the negative impact of iron overload on morbidity/mortality(M. Takatoku, T. Uchiyama, S. Okamoto, Y. Kanakura, K. Sawada, M. Tomonaga, S. Nakao, T. Nakahata, M. Harada, T. Murate, K. Ozawa, 2007, European Journal of Haematology)
- Interpreting raised serum ferritin levels(Marianna Koperdanova, J. Cullis, 2015, BMJ)
合并后形成七个相互并列的研究方向:首先阐释输血依赖及无效造血相关铁过载的机制和全身毒性;其次单独讨论非输血依赖型地中海贫血的铁负荷与螯合决策;随后总结血清指标、肝铁浓度及心脏和肝脏MRI的定量监测;在治疗层面系统归纳螯合药物、联合方案及心脏铁过载管理;另行突出MDS等非地中海贫血性输血依赖贫血的管理特点;并分析铁过载和输血依赖对生存及疾病结局的影响;最后补充指南、依从性、营养支持和医疗实施体系。整体形成“发生机制—器官负荷评估—治疗干预—特殊疾病场景—长期结局—实施优化”的完整研究链条。
总计 124 篇相关文献
… iron excess are much less common than disorders of iron deficiency… iron overload generally and transfusional iron overload … monitoring of iron levels in transfusiondependent patients …
Prior to the advent of effective iron chelation, death from iron-induced cardiomyopathy and endocrine failure occurred in the second decade in patients with thalassemia major and this experience has driven expectation of poor outcomes and caused anxiety in all disorders associated with iron loading to this day. To be clear, severe iron overload still causes significant morbidity and mortality in many parts of the world, but current understanding of iron metabolism, non-invasive monitoring of organ specific iron loading in humans and effective iron chelators have dramatically reduced morbidity of iron overload. Furthermore, clinical experience in hemoglobinopathies supports iron biology learned from animal studies and identifies common concepts in the biology of iron toxicity that inform the management of iron toxicity in several human disorders. The resultant significant increase in survival uncovers new complications due to much longer exposure to anemia and to iron which must be considered in long-term therapeutic strategies. This review will discuss the management of iron toxicity in patients with hemoglobinopathies and transfusion-dependent anemias and how iron biology informs the clinical approach to treatment.
Before the advent of effective iron chelation, death from iron-induced cardiomyopathy occurred in the second decade in patients with transfusion-dependent chronic anemias. The advances in our understanding of iron metabolism; the ability to monitor iron loading in the liver, heart, pancreas and pituitary; and the availability of several effective iron chelators have dramatically improved survival and reduced morbidity from transfusion-related iron overload. Nevertheless, significantly increased survival brings about new complications such as malignant transformation resulting from prolonged exposure to iron, which need to be considered when developing long-term therapeutic strategies. This review discusses the current biology of iron homeostasis and its close relation to marrow activity in patients with transfusion-dependent anemias, and how biology informs clinical approach to treatment.
… disease in transfusion dependent … anemia instead of myocyte iron overload as they do not show the same T2⁎ changes on MRI [71]. As in TM, ferritin is a poor marker of iron overload in …
Patients with β-thalassemia major (TM) and other refractory anemias requiring regular blood transfusions accumulate iron that damages the liver, endocrine system, and most importantly the heart. The prognosis in TM has improved remarkably over the past 10 years. This improvement has resulted from the development of magnetic resonance imaging (MRI) techniques, especially T2*, to accurately measure cardiac and liver iron, and from the availability of 3 iron-chelating drugs. In this article we describe the use of MRI to determine which adult and pediatric patients need to begin iron chelation therapy and to monitor their progress. We summarize the properties of each of the 3 drugs, deferoxamine (DFO), deferiprone (DFP), and deferasirox (DFX), including their efficacy, patient acceptability, and side effects. We describe when to initiate or intensify therapy, switch to another drug, or use combined therapy. We also discuss the management of refractory anemias other than TM that may require multiple blood transfusions, including sickle cell anemia and myelodysplasia. The development of a potential fourth chelator FBS 0701 and the combined use of oral chelators may further improve the quality of life and survival in patients with TM and other transfusion-dependent patients.
… , in anemic patients with iatrogenic iron overload as sequela of repeated transfusions … was to investigate the relationships between iron overload, current chelation practices, and …
The randomized comparison of deferasirox to deferoxamine for myocardial iron removal in patients with transfusion‐dependent anemias (CORDELIA) gave the opportunity to assess relative prevalence and body distribution of iron overload in screened patients.
… iron overload in 15 nonthalassemic adults (40 to 71 years of age) with anemias requiring transfusions… primary hypothyroidism antedating their transfusion dependence; one was not …
Most patients with myelodysplastic syndrome eventually become dependent on regular red cell transfusions. This dependency has a negative impact on clinical outcome, primarily because it may be associated with more severe marrow failure. In addition, however, transfusion dependency may involve clinical consequences of chronic anemia and iron overload. Although transfusion iron is primarily taken up by the reticuloendothelial cells, the metal is later redistributed to parenchymal cells. This redistribution is modulated by several factors, including the degree of ineffective erythropoiesis through its suppressive effect on hepcidin production. Body iron status is routinely assessed by serum ferritin and transferrin saturation, but there is a need of reliable tools for locating iron accumulation in patients. Magnetic resonance imaging T2* provides a non-invasive method for detecting and quantifying both liver and myocardial iron overload. Clinical consequences of parenchymal iron overload have been reported not only in thalassemia major, but also in patients with myelodysplastic syndrome. Transfusion-dependent patients with isolated erythroid dysplasia and low risk of leukemic evolution are more likely to develop parenchymal iron overload and its toxicity, and therefore may benefit from chelation therapy. There may also be a benefit of chelation therapy in patients with transfusion iron overload undergoing allogeneic stem cell transplantation. Deferoxamine and deferasirox are currently available for treatment of transfusion iron overload in patients with myelodysplastic syndrome.
Iron overload disorders represent a variety of conditions that lead to increased total body iron stores and resultant end‐organ damage. An elevated ferritin and transferrin‐iron saturation can be commonly encountered in the evaluation of elevated liver enzymes. Confirmatory homeostatic iron regulator (HFE) genetic testing for C282Y and H63D, mutations most encountered in hereditary hemochromatosis, should be pursued in evaluation of hyperferritinemia. Magnetic resonance imaging with quantitative assessment of iron content or liver biopsy (especially if liver disease is a cause of iron overload) should be used as appropriate. A secondary cause for iron overload should be considered if HFE genetic testing is negative for the C282Y homozygous or C282Y/H63D compound heterozygous mutations. Differential diagnosis of secondary iron overload includes hematologic disorders, iatrogenic causes, or chronic liver diseases. More common hematologic disorders include thalassemia syndromes, myelodysplastic syndrome, myelofibrosis, sideroblastic anemias, sickle cell disease, or pyruvate kinase deficiency. If iron overload has been excluded, evaluation for causes of hyperferritinemia should be pursued. Causes of hyperferritinemia include chronic liver disease, malignancy, infections, kidney failure, and rheumatic conditions, such as adult‐onset Still's disease or hemophagocytic lymphohistiocytosis. In this review, we describe the diagnostic testing of patients with suspected hereditary hemochromatosis, the evaluation of patients with elevated serum ferritin levels, and signs of secondary overload and treatment options for those with secondary iron overload.
Clinical outcomes of transfusion-associated iron overload in patients with refractory chronic anemia
Background The purpose of this study was to evaluate the clinical outcomes of transfusion-associated iron overload in patients with chronic refractory anemia. Methods Clinical manifestations, main organ function, results of computed tomography (CT), endocrine evaluation, and serum ferritin levels were analyzed retrospectively in 13 patients who were transfusion-dependent for more than 1 year (receiving >50 units of red blood cells) to determine the degree of iron overload and efficacy of iron-chelating therapy. Results Serum ferritin levels increased to 1,830–5,740 ng/mL in all patients. Ten patients had abnormal liver function. The CT Hounsfield units in the liver increased significantly in eleven patients, and were proportional to their serum ferritin levels. Skin pigmentation, liver dysfunction, and endocrine dysfunction were observed in nine patients with serum ferritin >3,500 ng/mL, eight of whom have since died. Interestingly, serum ferritin levels did not decrease significantly in nine transfusion-dependent patients who had received 15–60 days of iron-chelating therapy. Conclusion Transfusion-dependent patients may progress to secondary iron overload with organ impairment, which may be fatal in those who are heavily iron-overloaded. The CT Hounsfield unit is a sensitive indicator of iron overload in the liver. Iron chelation therapy should be initiated when serum ferritin is >1,000 ng/mL and continued until it is <1,000 ng/mL in transfusional iron-overloaded patients.
In this study, gradient echo T2* magnetic resonance imaging provided a rapid and reproducible method for detecting myocardial iron overload which developed after a heavy transfusion burden equal to or greater than 290 mL/kg of packed red blood cell units. Only limited data are available regarding myocardial iron overload in adult patients with transfusion dependent acquired anemias. To address this topic using MRI T2* we studied 27 consecutive chronic transfusion dependent patients with acquired anemias: (22 myelodysplastic syndrome, 5 primary myelofibrosis). Cardiac MRI T2* values obtained ranged from 5.6 to 58.7 (median value 39.8) milliseconds. Of the 24 analyzable patients, cardiac T2* correlated with transfusion burden (p=0.0002). No patient who had received less than 290 mL/kg of packed red blood cells (101 units=20 grams of iron) had a pathological cardiac T2* value (< 20 ms). All patients who had received at least 24 PRBC units showed MRI T2* detectable hepatic iron (liver T2* value ≤6.3 ms). Only patients with severe hepatic iron overload (T2* <1.4 ms) showed cardiac T2* value indicative of dangerous myocardial iron deposition. Serum ferritin was not significantly correlated with cardiac T2* (p=0.24). Gradient echo T2* magnetic resonance imaging provides a rapid and reproducible method for detecting myocardial iron overload which developed after a heavy transfusion burden equal to or greater than 290 mL/kg of packed red blood cell units.
… of transfusion-dependent patients with refractory anemias, and … for measuring secondary iron overload in MDS patients. The … those who are transfusiondependent than among those who …
Tissue iron overload inevitably results in patients who receive regular red blood cell transfusions for congenital or acquired anemias. Iron overload is a significant cause of transfusion-related morbidity and mortality. The goal of therapy for individuals with transfusional iron overload is to maintain iron balance at low levels of tissue iron, thereby preventing the development of overload and complications. In summary, the pathophysiology of iron metabolism in the condition underlying the transfusion-dependent anemia, as well as the factors directly related to the initiation, intensity, duration, and effectiveness of both the transfusion regimen and the chelation regimen, contributes to the pathology of transfusional iron overload. The primary goal of chelation therapy is to prevent tissue deposition of excess iron, thereby preventing organ damage and resulting morbidity and mortality. Maintaining safe levels of tissue iron requires achieving a balance between the amount of iron entering the body and that being removed by chelation.
Summary Iron overload occurs in patients who require regular blood transfusions to correct genetic and acquired anaemias, such as β-thalassaemia major, sickle cell disease, and myelodysplastic syndromes. Although iron overload causes damage in many organs, accumulation of cardiac iron is a leading cause of death in transfused patients with β-thalassaemia major. The symptoms of cardiac iron overload will occur long after the first cardiac iron accumulation, at a point when treatment is more complex than primary prevention would have been. Direct measurement of cardiac iron using T2* magnetic resonance imaging, rather than indirect methods such as measuring serum ferritin levels or liver iron concentration have contributed to earlier recognition of myocardial iron loading and prevention of cardiac toxicity. Cardiac siderosis occurs in all transfusional anaemias, but the relative risk depends upon the underlying disease state, transfusional load, and chelation history. All three available iron chelators can be used to remove cardiac iron, but each has unique physical properties that influence their cardiac efficacy. More prospective trials are needed to assess the effects of single-agent or combination iron chelation therapy on the levels of cardiac iron and cardiac function. Ultimately, iron chelation therapies should be tailored to meet individual patient needs and lifestyle demands.
Quantitative magnetic resonance imaging (MRI) heart iron assessment has been an important advance in the follow-up of patients with transfusion-dependent anemias.[1][1] Few longitudinal data are available on the natural history of cardiac iron overload.[2][2] We refer this letter to the manuscript
Thalassemic disorders lie on a phenotypic spectrum of clinical severity that depends on the severity of the globin gene mutation and coinheritance of other genetic determinants. Iron overload is associated with increased morbidity in both patients with transfusion-dependent thalassemia (TDT) and non–transfusion-dependent thalassemia (NTDT). The predominant mechanisms driving the process of iron loading include increased iron burden secondary to transfusion therapy in TDT and enhanced intestinal absorption secondary to ineffective erythropoiesis and hepcidin suppression in NTDT. Different organs are affected differently by iron overload in TDT and NTDT owing to the underlying iron loading mechanism and rate of iron accumulation. Serum ferritin measurement and noninvasive imaging techniques are available to diagnose iron overload, quantify its extent in different organs, and monitor clinical response to therapy. This chapter discusses the general approach to iron chelation therapy based on organ involvement using the available iron chelators: deferoxamine, deferiprone, and deferasirox. Other novel experimental options for treatment and prevention of complications associated with iron overload in thalassemia are briefly discussed.
Hypertransfusion regimens for thalassemic patients revolutionized the management of severe thalassemia; transforming a disease which previously led to early infant death into a chronic condition. The devastating effect of the accrued iron from chronic blood transfusions necessitates a more finely tuned approach to limit the complications of the disease, as well as its treatment. A comprehensive approach including carefully tailored transfusion protocol, continuous monitoring and assessment of total body iron levels, and iron chelation are currently the mainstay in treating iron overload. There are also indications for ancillary treatments, such as splenectomy and fetal hemoglobin induction. The main cause of death in iron overload continues to be related to cardiac complications. However, since the widespread use of iron chelation started in the 1970s, there has been a general improvement in survival in these patients.
… Iron chelation therapy effectively acts to prevent long-term complications of iron overload,- in transfusion-dependent thalassemia major patients. Most complications could be reversible …
… thalassaemia and other transfusion-dependent diseases develop iron overload from chronic blood transfusions and require regular iron chelation to prevent potentially fatal iron-related …
One of the most common hemoglobinopathies globally related to blood transfusion and iron overload in the body is thalassemia syndrome. Increasing ferritin levels can cause severe damage to the patient's body organs. This study aims to evaluate the complications of iron overload on vital body organs in patients with transfusion‐dependent beta‐thalassemia.
The aim of this study is the evaluation of the safety and the efficacy of long-term combination therapy deferasirox plus desferrioxamine and deferasirox plus deferiprone in a large group of transfusion-dependent thalassemia patients with high values of serum ferritin and/or magnetic resonance, indicative of severe liver and cardiac iron accumulation. Sixteen adults with transfusion-dependent thalassemia were treated simultaneously with deferasirox plus desferrioxamine, while another 42 patients (seven children) were treated with deferasirox plus deferiprone. The hepatic and cardiac iron overload was assessed prior to treatment and then annually with magnetic resonance imaging, and the serum ferritin was measured monthly. Adverse events were checked at each transfusion visit. The safety of both the combinations was consistent with established monotherapies. Both treatments were able to decrease the serum ferritin and liver iron concentration over time, depending on the level of compliance with therapy. Cardiac iron measured as R2* did not significantly change in patients treated with deferasirox plus desferrioxamine. Most patients with MRI indicative of myocardial siderosis at the beginning of treatment reached normal values of cardiac iron at the last determination if treated with deferasirox plus desferrioxamine. The greatest limitation of these therapies was low patient adherence to the two drugs, which is not surprising considering that the need for an intensive chelation is generally linked to previous issues of compliance.
Patients with thalassemia are frequently deficient in key micronutrients. Attempts to correct these inadequacies through nutritional supplementation have been met with some success, although disparities between intake and circulating levels continue to be observed. This study employed a convenience sample of 41 well-nourished transfusion dependent patients with thalassemia to identify possible mechanisms behind nutritional deficiencies. Each subject completed a Block 2005© Food Frequency Questionnaire (FFQ), through which macro and micronutrient intake was quantified. Fasting blood was drawn to assess vitamins A, C, D, E, copper, selenium, zinc and hematologic parameters. Dietary intake was found to be inadequate compared to Institute of Medicine (IOM) recommendations for many of the fat-soluble vitamins, as well as calcium and zinc. Circulating deficiencies of vitamins C, D, copper, zinc and γ tocopherol were also present in over 20% of patients. Many individuals who consumed an adequate dietary intake had deficient levels of circulating nutrients, which suggest alternative etiologies of nutrient excretion or loss, in addition to higher micronutrient requirements. Liver iron concentration displayed a significant negative relationship with vitamins C (r=−0.62, p<0.001), E (r=−0.37, p=0.03), and zinc (r=−0.35, p=0.037), indicating that in iron-overloaded patients, these nutrients are either endogenously consumed at higher rates or sequestered within the liver, resulting in a functional nutrient deficiency. While this study identified hepatic iron overload to be a significant cause of nutritional deficits commonly observed in patients with thalassemia, multiple etiologies are simultaneously responsible. In response to these findings, nutritional status should be monitored regularly in at-risk patients with thalassemia, and prophylactically addressed with supplementation or aggressive chelation to avoid associated co-morbidities.
Understanding the Intricacies of Iron Overload Associated with β-Thalassemia: A Comprehensive Review
β-thalassemia, a congenital genetic hematological disorder characterized by the decrease or absence of β-globin chains, leads to a decrease in levels of Hemoglobin A. The affected individuals can be categorized into two cohorts based on transfusion dependency: transfusion-dependent thalassemia (TDT) and non-transfusion-dependent thalassemia (NTDT). Remarkably, despite the primary pathology lying in β-globin chain depletion, β-thalassemia also exhibits an intriguing association with iron overload. Iron metabolism, a tightly regulated physiological process, reveals a complex interplay in these patients. Over time, both cohorts of β-thalassemic individuals develop iron overload, albeit through distinct mechanisms. Addressing the diverse complications that arise due to iron overload in β-thalassemic patients, the utilization of iron chelators has gained a lot of significance. With varying efficacies, routes of administration, and modes of action, different iron chelators offer unique benefits to patients. In the Indian context, three commercialized iron chelators have emerged, showcasing a high adherence rate to iron chelator-based treatment regimens among β-thalassemic individuals. In this review, we explore the intriguing connection between β-thalassemia and iron overload, shedding light on the intricate mechanisms at play. We delve into the intricacies of iron metabolism, unveiling the distinct pathways leading to iron accumulation in these patients. Additionally, the therapeutic efficacy of different iron chelators in managing iron overload complications is mentioned briefly, along with the guidelines for their usage in India. Through this comprehensive analysis, we aim to deepen our understanding of β-thalassemia and iron overload, paving the way for optimized treatment strategies. Ultimately, our findings provide valuable insights into improving the care and outcomes of individuals affected by β-thalassemia.
… Introduction: Thalassemia is among the most … are transfusion-dependent, leading to iron overload. A condition which can eventually develop in the iron-loaded heart is iron overload …
In patients with transfusion-dependent thalassemia (TDT), pulmonary function impairment has been reported but data are conflicting. Moreover, it remains unclear whether pulmonary dysfunction is associated with iron overload. This study aimed to evaluate the pulmonary function in patients with TDT and to investigate the associations between pulmonary dysfunction and iron overload. It was a retrospective observational study. 101 patients with TDT were recruited for lung function tests. The most recent ferritin levels (pmol/L) and the magnetic resonance imaging (MRI) measurements of the myocardial and liver iron status, as measured by heart and liver T2* relaxation time (millisecond, ms) respectively, were retrieved from the computerized medical records. Only data within 12 months from the lung function measurement were included in the analysis. The serum ferritin, and the cardiac and liver T2* relaxation time were the surrogate indexes of body iron content. The threshold of abnormality in lung function was defined as under 80% of the predicted value. 101 subjects were recruited with a mean age of 25.1 years (standard deviation (SD) 7.9 years). Thirty-eight (38%) and five (5%) demonstrated restrictive and obstructive lung function deficits, respectively. A weak correlation of FVC %Predicted and TLC %Predicted with MRI myocardial T2* relaxation time (rho = 0.32, p = 0.03 and rho = 0.33, p = 0.03 respectively) was observed. By logistic regression, MRI cardiac T2* relaxation time was negatively associated with restrictive lung function deficit (B − 0.06; SE 0.03; Odds ratio 0.94; 95% confidence interval (CI) 0.89–0.99; p = 0.023) after adjusting for age, sex and body mass index. Restrictive pulmonary function deficit was commonly observed in patients with TDT, and the severity potentially correlates with myocardial iron content. Monitoring of lung function in this group of patients, particularly for those with iron overload, is important.
Non-transfusion-dependent thalassemias include a variety of phenotypes that, unlike patients with beta (β)-thalassemia major, do not require regular transfusion therapy for survival. The most commonly investigated forms are β-thalassemia intermedia, hemoglobin E/β-thalassemia, and α-thalassemia intermedia (hemoglobin H disease). However, transfusion-independence in such patients is not without side effects. Ineffective erythropoiesis and peripheral hemolysis, the hallmarks of disease process, lead to a variety of subsequent pathophysiologies including iron overload and hypercoagulability that ultimately lead to a number of serious clinical morbidities. Thus, prompt and accurate diagnosis of non-transfusion-dependent thalassemia is essential to ensure early intervention. Although several management options are currently available, the need to develop more novel therapeutics is justified by recent advances in our understanding of the mechanisms of disease. Such efforts require wide international collaboration, especially since non-transfusion-dependent thalassemias are no longer bound to low- and middle-income countries but have spread to large multiethnic cities in Europe and the Americas due to continued migration.
Iron overload due to increased intestinal iron absorption remains a concern in patients with non-transfusion-dependent thalassemia (NTDT). A dynamic regulation between ineffective erythropiesis and iron metabolism in these disorders has been recently elucidated. Although the rate of iron loading in NTDT is slower than that observed in regularly transfused patients, the process is cumulative and patients may reach considerably high liver iron concentration levels. The clinical consequences of iron overload in patients with NTDT are various and include hepatic disease, endocrinopathy, bone disease, and vascular outcomes; while cardiac siderosis is less frequently observed. Although serum ferritin levels correlate with LIC in NTDT, they underestimate iron load when compared with transfusion-dependent patients with equivalent LIC. Therefore, direct measurement of LIC is recommended to identify patients at risk and guide iron chelation decisions.
Background: Iron overload is one of the main factors that increase morbidity and mortality in patients with non-transfusion dependent thalassemia (NTDT). Aim: This study aimed at investigating the prevalence and severity of iron overload in Chinese NTDT patients. Methods: we analyzed serum ferritin (SF), liver iron concentration (LIC) and cardiac T2* in 178 Chinese NTDT in this cross-sectional study. Results: The median SF level was 996.00(27.15–19704.00) ng/ml and the median LIC value was 8.90(0.60–43.00) mg Fe/g dry weight (dw). The youngest patient with liver iron overload was 5 years old with 5.6 mg Fe/g dw in LIC. The median cardiac T2* was 33.06(7.46–75.08) ms. 6 patients had cardiac T2*⩽20ms. The patients with β thalassemia intermedia and HbE/β thalassemia showed a statistically significant lower Hb and higher values of SF and LIC than those of hemoglobin H disease patients. On multivariate logistic regression analysis, patients in ⩾ age 30-year old had a significant higher risk for iron overload (OR: 77.75, 95% CI: 8.76–690.49) in the age group. The detailed analysis of proportions of different LIC indicate in > 30-year old group, 76.8% patients suffered from moderate and severe LIC. Conclusion: Our study provides a strong support for the novel findings that Chinese NTDT patients have a high prevalence of iron overload. The first assessment of MRI LIC should be performed as early as 5 years old. Then, NTDT patients > 30 years old may suffer with a high burden of iron overload.
… Iron overload is associated with other complications therefore early detection and prompt … the prevalence of iron overload in patients with non-transfusion-dependent thalassemia (NTDT…
Iron overload (IOL) due to increased intestinal iron absorption constitutes a major clinical problem in patients with non-transfusion-dependent thalassemia (NTDT), which is a cumulative process with advancing age. Current models for iron metabolism in patients with NTDT suggest that suppression of serum hepcidin leads to an increase in iron absorption and subsequent release of iron from the reticuloendothelial system, leading to depletion of macrophage iron, relatively low levels of serum ferritin, and liver iron loading. The consequences of IOL in patients with NTDT are multiple and multifactorial. Accurate and reliable methods of diagnosis and monitoring of body iron levels are essential, and the method of choice for measuring iron accumulation will depend on the patient’s needs and on the available facilities. Iron chelation therapy (ICT) remains the backbone of NTDT management and is one of the most effective and practical ways of decreasing morbidity and mortality. The aim of this review is to describe the mechanism of IOL in NTDT, and the clinical complications that can develop as a result, in addition to the current and future therapeutic options available for the management of IOL in NTDT.
… only patients for whom chelation therapy with deferoxamine had previously failed because of lack of compliance or toxicity. Results were from single liver iron determinations. Because …
Patients suffering from iron overload can experience serious complications. In such patients, various organs, such as endocrine glands and liver, can be damaged. Although iron is a crucial element for life, iron overload can be potentially toxic for human cells due to its role in generating free radicals. In the past few decades, there has been a major improvement in the survival of patients who suffer from iron overload due to the application of iron chelation therapy in clinical practice. In clinical use, deferoxamine, deferiprone, and deferasirox are the three United States Food and Drug Administration-approved iron chelators. Each of these iron chelators is well known for the treatment of iron overload in various clinical conditions. Based on several up-to-date studies, this study explained iron overload and its clinical symptoms, introduced each of the above-mentioned iron chelators, and evaluated their advantages and disadvantages with an emphasis on combination therapy, which in recent studies seems a promising approach. In numerous clinical conditions, due to the lack of accurate indicators, choosing a standard approach for iron chelation therapy can be difficult; therefore, further studies on the issue are still required. This study aimed to introduce each of these iron chelators, combination therapy, usage doses, specific clinical applications, and their advantages, toxicity, and side effects.
A 16-year-old boy with sickle cell anemia undergoes routine screening with transcranial Doppler ultrasonography to assess the risk of stroke. This examination shows an abnormally elevated blood-flow velocity in the middle cerebral artery. The hemoglobin level is 7.2 g per deciliter, the reticulocyte count is 12.5%, and the fetal hemoglobin level is 8.0%. Long-term treatment with red-cell transfusion is initiated to prevent stroke. A hematologist recommends prophylactic iron-chelating therapy.
… in hereditary hemochromatosis, chelation therapy is required in the treatment of many patients who have combined secondary and transfusional iron overload due to disorders in …
… is a predictable consequence of chronic RBC transfusion therapy, many clinicians have little … are unfamiliar with transfusional iron overload and the associated risk of iron toxicity. …
… and in some cases toxicity. In the last 10 years we have witnessed the emergence of oral chelation therapy, which could potentially change the prognosis of all transfusional iron-loaded …
… of iron chelation therapy for … iron chelation therapy is to prevent the accumulation of iron reaching harmful levels by matching iron intake from blood transfusion, with iron excreted by iron …
Regular red cell transfusion therapy ameliorates disease-related morbidity and can be lifesaving in patients with various hematological disorders. Transfusion therapy, however, causes progressive iron loading, which, if untreated, results in endocrinopathies, cardiac arrhythmias and congestive heart failure, hepatic fibrosis, and premature death. Iron chelation therapy is used to prevent iron loading, remove excess accumulated iron, detoxify iron, and reverse some of the iron-related complications. Three chelators have undergone extensive testing to date: deferoxamine, deferasirox, and deferiprone (although the latter drug is not currently licensed for use in North America where it is available only through compassionate use programs and research protocols). These chelators differ in their modes of administration, pharmacokinetics, efficacy with regard to organ-specific iron removal, and adverse-effect profiles. These differential properties influence acceptability, tolerability and adherence to therapy, and, ultimately, the effectiveness of treatment. Chelation therapy, therefore, must be individualized, taking into account patient preferences, toxicities, ongoing transfusional iron intake, and the degree of cardiac and hepatic iron loading.
Iron overload is a pathological condition resulting from a congenital impairment of its regulation, increased intestinal iron absorption secondary to bone marrow erythroid hyperplasia, or a chronic transfusional regimen. In normal conditions, intracellular and systemic mechanisms contribute to maintaining iron balance. When this complex homeostatic mechanism fails, an iron overload could be present. Detecting an iron overload is not easy. The gold standard remains the liver biopsy, even if it is invasive and dangerous. Identifying iron using noninvasive techniques allowed a better understanding of the rate of iron overload in different organs, with a low risk for the patient. Estimating serum ferritin (mg/L) is the easiest and, consequently, the most employed diagnostic tool for assessing body iron stores, even if it could be a not specific method. The most common hematological causes of iron overload are myelodysplastic syndromes, sickle cell disease, and thalassemia. In all of these conditions, three drugs have been approved for the treatment of iron overload: deferiprone, deferoxamine, and deferasirox. These chelators have been demonstrated to help lower tissue iron levels and prevent iron overload complications, improving event‐free survival (EFS). Nowadays, the decision to start chelation and which chelator to choose remains the joint decision of the clinician and patient.
The prevalence rate of thalassemia, which is endemic in Southeast Asia, the Middle East, and the Mediterranean, exceeds 100,000 live births per year. There are many genetic variants in thalassemia with different pathological severity, ranging from a mild and asymptomatic anemia to life-threatening clinical effects, requiring lifelong treatment, such as regular transfusions in thalassemia major (TM). Some of the thalassemias are non-transfusion-dependent, including many thalassemia intermedia (TI) variants, where iron overload is caused by chronic increase in iron absorption due to ineffective erythropoiesis. Many TI patients receive occasional transfusions. The rate of iron overloading in TI is much slower in comparison to TM patients. Iron toxicity in TI is usually manifested by the age of 30–40 years, and in TM by the age of 10 years. Subcutaneous deferoxamine (DFO), oral deferiprone (L1), and DFO–L1 combinations have been effectively used for more than 20 years for the treatment of iron overload in TM and TI patients, causing a significant reduction in morbidity and mortality. Selected protocols using DFO, L1, and their combination can be designed for personalized chelation therapy in TI, which can effectively and safely remove all the excess toxic iron and prevent cardiac, liver, and other organ damage. Both L1 and DF could also prevent iron absorption. The new oral chelator deferasirox (DFX) increases iron excretion and decreases liver iron in TM and TI. There are drawbacks in the use of DFX in TI, such as limitations related to dose, toxicity, and cost, iron load of the patients, and ineffective removal of excess iron from the heart. Furthermore, DFX appears to increase iron and other toxic metal absorption. Future treatments of TI and related iron-loading conditions could involve the use of the iron-chelating drugs and other drug combinations not only for increasing iron excretion but also for preventing iron absorption.
Purpose of review For individuals who have transfusion-dependent anemia, iron overload is the long-term complication, which results in significant morbidity. Ameliorating this is now the biggest unmet need. This review specifically addresses this issue. Recent findings Over the last decade or so, major advances in the treatment of these individuals, has resulted from novel strategies aimed at reducing transfusion requirement as well as optimizing chelation therapy. This review will summarize these advances and provide insights into some of the therapies in the pipeline. Strategies aimed at reducing transfusion requirement include modulation of erythropoietic regulation by reducing ineffective red cell production through activin trapping, as well as stem cell gene modification approaches, which aim for a cure, and transfusion independence. Refined means of assessing tissue iron and the introduction of oral chelators have facilitated tailoring chelation regimens with closer monitoring and improved compliance. Newer approaches to ameliorate iron toxicity have focused on the hepcidin pathway, all of which would result in increased hepcidin levels and reduction of iron absorption from the intestine, sequestration of iron in normal storage sites and reduced exposure of more susceptible organs, such as the heart and endocrine organs, to the toxic effects of increased iron. Summary These advances offer the promise of improved management of transfusion-dependent individuals.
… to their cardiac iron overload status and ventricular function, this review identifies possible approaches for the initial treatment and follow-up of transfusion-related cardiac iron overload. …
… In chronically transfused patients, optimal iron chelation therapy is associated with reduced … effect of iron chelation on haemopoiesis in MDS patients with transfusional iron overload. Br …
… of transfusion iron overload in persons more than 2 years of age (Table 2). Preclinical and phase I and II data for deferasirox are summarized elsewhere [5]. Deferasirox enters a variety …
Between 2002 and 2008, a number of consensus statements and guidelines were developed by various groups around the world to educate healthcare professionals on the treatment of myelodysplastic syndromes (MDS), including the management of transfusional iron overload with iron chelation therapy. Guidelines have been developed by The Italian Society of Hematology, The UK MDS Guidelines Group, The Nagasaki Group, The National Comprehensive Cancer Network, and The MDS Foundation. These guidelines show that the approaches to managing iron overload in patients with MDS are region specific, differing in their recommendations for when iron chelation therapy should be initiated and strategies for the ongoing management of iron overload. The guidelines all agree that red blood cell transfusions are clinically beneficial to treat the symptomatic anemia in MDS, and that patients with low-risk MDS receiving transfusions are the most likely to benefit from iron chelation therapy.
… of iron chelation therapy to treat iron overload from causes other than transfusion overload. … This article provides examples of diseases where iron chelation therapy may prove useful in …
… serum ferritin protein and serum ferritin iron. B , Correlation between serum ferritin iron and the individual liver iron concentration. … ferritin iron and individual liver iron concentrations was …
… of the serum transaminase x liver iron concentration, … and liver iron store. There was a close linear correlation between the serum ferritin-transaminase ratio and liver iron concentration …
… In conclusion, the presented data show that serum ferritin underestimates the severity of iron … of liver iron concentration is therefore important in the clinical management of iron overload …
… serum ferritin concentrations and liver iron concentrations. … marrow or liver iron concentrations and serum ferritin levelsin normal … iron and ferritin in the bone marrow of patients with iron …
Thalassemia intermedia is a highly diverse group of thalassemia syndromes associated with anemia and a range of specific complications, such as extramedullary hematopoiesis, leg ulcers, gallstones and a hypercoagulable state, which are uncommon in patients with thalassemia major.[1][1] The degree of
… between storage iron levels and serum ferritin concentration is … iron was compared with initial serum ferritin concentration in … storage iron or liver iron concentrations and serum ferritin …
… patients who underwent liver biopsy between … in serum ferritin (TSF) during long-term monitoring and compared this with mean serum ferritin (MSF) and initial liver iron (LI) concentration …
Introduction Chronic blood transfusion is the mainstay of care for individuals with β-thalassemia major (BTM). However, it causes iron-overload that requires monitoring and management by long-term iron chelation therapy to prevent endocrinopathies and cardiomyopathies, which can be fatal. Hepatic R2 MRI method (FerriScan®) has been validated as the gold standard for evaluation and monitoring liver iron concentration (LIC) that reflects the total body iron-overload. Although adequate oral iron chelation therapy (OIC) is promising for the treatment of transfusional iron-overload, some patients are less compliant with it, and others suffer from long-term effects of iron overload. Objective The aim of our study was to evaluate the prevalence of endocrinopathies and liver dysfunction, in relation to LIC and serum ferritin level, in a selected group of adolescents and young adult BTM patients with severe hepatic iron overload (LIC from 15 to 43 mg Fe/g dry weight). Patients and Methods Twenty-four selected BTM patients with severe LIC, due to transfusion-related iron-overload, followed at the Haematology Section, National Centre for Cancer Care and Research, Hamad Medical Corporation of Doha (Qatar), from April 2015 to July 2017, were retrospectively evaluated. The prevalence of short stature, hypogonadism, hypothyroidism, hypoparathyroidism, impaired fasting glucose (IFG), diabetes, and adrenal insufficiency was defined and assessed according to the International Network of Clinicians for Endocrinopathies in Thalassemia (ICET) and American Diabetes Association criteria. Results Patients’ most common transfusion frequency was every three weeks (70.8%). At the time of LIC measurements, their median age was 21.5 years with a mean age of 21.7 ± 8.0 years. Mean LIC was 32.05 ± 10.53 mg Fe/g dry weight (range: 15 to 43 mg Fe/g dry weight), and mean serum ferritin level was 4,488.6 ± 2,779 μg/L. LIC was correlated significantly with serum ferritin levels (r = 0.512; p = 0.011). The overall prevalence of short stature was 26.1% (6/23), IFG was 16.7% (4/24), sub-clinical hypothyroidism was 14.3% (3/21), hypogonadotropic hypogonadism was 14.3% (2/14), diabetes mellitus was 12.5% (3/24), and biochemical adrenal insufficiency was 6.7% (1/15). The prevalence of hepatitis C positivity was 20.8% (5/24). No case of clinical hypothyroidism, adrenal insufficiency or hypoparathyroidism was detected in this cohort of patients. The prevalence of IFG impaired fasting glucose was significantly higher in BTM patients with very high LIC (>30 mg Fe/g dry liver) versus those with lower LIC (p = 0.044). The prevalence of endocrinopathies was not significantly different between the two groups of patients with LIC above and below 15 mg Fe/g dry weight. Conclusions A significant number of BTM patients, with high LIC and endocrine disorders, still exist despite the recent developments of new oral iron chelating agents. Therefore, physicians’ strategies shall optimize early identification of those patients to optimise their chelation therapy and to avoid iron-induced organ damage. We believe that further studies are needed to evaluate if serial measurements of quantitative LIC may predict the risk for endocrine complications. Until these data are available, we recommend a close monitoring of endocrine and other complications, according to the international guidelines.
… low serum ferritin levels invariably indicate reduced iron stores, raised serum ferritin levels can be due to multiple different aetiologies, including iron overload, inflammation, liver or …
… The ferritin levels and liver iron contents for the 28 patients examined by MRI are shown in … also show a better correlation of liver iron content with serum ferritin level than the group as a …
… frequently observed are markers of systemic inflammation, unrelated to the presence of iron … between serum ferritin levels and liver iron concentration (LIC) in patients with iron loading …
… An alcohol history is mandatory, as is assessment for liver disease. Check body mass index and blood pressure, as elevated ferritin levels in absence of iron overload are increasingly …
… use and limitations of serum ferritin as a marker of iron stores and will discuss iron status in … We currently do not know precisely how to interpret very high serum ferritin levels, so we …
Three iron chelators are currently available for treatment of transfusion iron overload: deferoxamine, deferiprone, and deferasirox. This article reports the Italian Society of Hematology practice guidelines for the management of iron overload in thalassemia major and related disorders. New measures of iron accumulation in liver and heart (superconducting quantum inference device and magnetic resonance imaging), and oral iron chelators (deferiprone and deferasirox) are available for managing iron overload in thalassemia major. To assure appropriate use of these new health technologies, the Italian Society of Hematology appointed a panel of experts to produce clinical practice-guidelines for the management of iron overload in thalassemia major and related disorders. The analytical hierarchy process, a technique for multicriteria decision analysis, was applied to relevant key questions in order to identify the alternative strategies, generate explicit criteria for their evaluation, and check how well the alternatives fulfilled the criteria. The result of a comprehensive systematic review of articles released from 1990 to 2007 was used as a source of scientific evidence to compare the decisional options pairwise, and select the final recommendation. Every step in the model was developed from questionnaires and group discussion. The resulting recommendations advise about which examination to carry out in order to plan iron chelation therapy, when to start iron chelation, which iron chelator to choose in regularly transfused patients, how to monitor iron chelation therapy, and when and how to switch standard therapy.
Beta-thalassemia and particularly its transfusion-dependent form (TDT) is a demanding clinical condition, requiring life-long care and follow-up, ideally in specialized centers and by multidisciplinary teams of experts. Despite the significant progress in TDT diagnosis and treatment over the past decades that has dramatically improved patients’ prognosis, its management remains challenging. On one hand, diagnostic and therapeutic advances are not equally applied to all patients across the world, particularly in several high-prevalence eastern regions. On the other, healthcare systems in low-prevalence western countries that have recently received large numbers of migrant thalassemia patients, were not ready to address patients’ special needs. Thalassaemia International Federation (TIF), a global patient-driven umbrella federation with 232 member-associations in 62 countries, strives for equal access to quality care for all patients suffering from thalassemia or other hemoglobinopathies in every part of the world by promoting education, research, awareness, and advocacy. One of TIF’s main actions is the development and dissemination of clinical practice guidelines for the management of these patients. In 2021, the fourth edition of TIF’s guidelines for the management of TDT was published. The full text provides detailed information on the management of TDT patients and the clinical presentation, pathophysiology, diagnostic approach, and treatment of disease complications or other clinical entities that may occur in these patients, while also covering relevant psychosocial and organizational issues. The present document is a summary of the 2021 TIF guidelines for TDT that focuses mainly on clinical practice issues and recommendations.
The prospect of patients with transfusion ‐ dependent β ‐ thalassemia (TDT), once considered a fatal childhood disorder, has completely transformed over the past 50 years. 1 This is primarily attributed to the adoption of hemovigilance in transfusion therapy, the development of effective iron chelators, the validation of non ‐ invasive tools for monitoring organ ‐ specific iron loading, and the introduction of multi-disciplinary care. Regrettably, access to these advances and optimal application of best practices remain largely confined to nations with robust economies, where comprehensive health and social care systems provide universal access to treatment. 2 Consequently, multimorbidity and shortened survival continue to burden patients in countries with limited resources, where most of TDT patients live. 3 In high ‐ income settings, improved survival of TDT did not come without its own “ side effect, ” where aging allowed several previously unrecognized morbidities to manifest, especially in patients who were exposed to the harmful effects of under ‐ or sub ‐ optimal treatment in the past. 4,5 Thus, the “ gold standard ” in TDT care is now fundamentally recognized as being a multidisciplinary approach to management, preferably in expert or reference centers, and with active engagement of patients and their families. 6 Since its inception in 1986, the Thalassaemia International Federation (TIF) has remained committed to supporting patients/families and patient organizations, healthcare professionals, and policymakers to promote optimal care for patients with thalassemia and other hemoglobinopathies across the world. The preparation, publication, translation, and free distribution of management guidelines is a cornerstone
Transfusional iron overload is a major target in the care of patients with transfusion-dependent thalassemia (TDT) and other refractory anemias. Iron accumulates in the liver, heart, and endocrine organs leading to a wide array of complications. In this review, we summarize the characteristics of the approved iron chelators, deferoxamine, deferiprone, and deferasirox, and the evidence behind the use of each, as monotherapy or as part of combination therapy. We also review the different guidelines on iron chelation in TDT. This review also discusses future prospects and directions in the treatment of transfusional iron overload in TDT whether through innovation in chelation or other therapies, such as novel agents that improve transfusion dependence.
… owing to transfusional iron overload in patients with thalassemia.Therefore, a central goal of iron chelation is to prevent or remove excessive cardiac iron. Cardiac T2* values should be …
… body iron burden.29 The effectiveness of antiviral therapy in thalassemia may therefore depend on that of iron-chelating … of iron overload, and provide guidelines for the control of body …
Efforts to optimize the management of patients with β-thalassemia major (TM) continue to expand. Evidence from biomedical research evaluating safe and careful processing measures of blood products, the efficacy and safety of oral iron chelators, and noninvasive techniques for the assessment of iron overload are translated into better patient outcomes. The construction of TM management guidelines facilitated the incorporation of such evidence into practice. However, as several aspects of the management of TM remain controversial or governed by resource availability, a concern regarding potential variations in recommendations made by the different guidelines becomes rational, especially for physicians treating TM patients outside countries where the guidelines were constructed. In this work, we overview currently available guidelines for the management of TM and explore apparent similarities and differences between them. The evaluated guidelines included the Thalassaemia International Federation, US, Canadian, UK, Italian and Australian guidelines. We noted a general consensus for most aspects of management, although some guidelines provided more comprehensive and contemporary recommendations than others. We did not identify differences warranting concern, although minor differences in iron overload assessment strategy and more notable variations in the recommendations for iron chelation therapy were observed.
… Within Asia, there are regional variations in thalassemia management protocols and guidelines, although most recommendations are in line with those of the TIF. In Taiwan, transfusion …
… Chelation therapy should be guided by magnetic resonance imaging that permits the … different chelators preferentially clear iron from different sites. Normal levels of body iron seem to …
Over the past four decades, there have been dramatic improvements in survival for patients with thalassemia major due in large measure to improved iron chelators. Two chelators are approved for use in the United States and Canada, parenteral deferoxamine and oral deferasirox. Three are available in much of the rest of the world, where oral deferiprone is also approved (in the United States, deferiprone is only available in studies, for emergency use, or on a “compassionate-use” basis). Many trials and worldwide clinical experience demonstrate that each of the three drugs can chelate and remove iron, and thereby prevent or improve transfusional hemosiderosis in thalassemia patients. However, the chelators differ strikingly in side-effect profile, cost, tolerability and ease of adherence, and (to some degree) efficacy for any specific patient. The entire field of chelator clinical trials suffers from the fact that each drug (as monotherapy or in combination) has not been tested directly against all of the other possibilities. Acknowledging the challenges of assessing chelators with diverse properties and imperfect comparative data, the purpose of this review is to summarize the last 4 years of studies that have improved our understanding of the applications and limitations of iron chelators in various settings for thalassemia patients, and to point out areas for much-needed future research.
… in combination on iron chelation in thalassemic children. Indian Pediatr 2004; 41:21–27. … iron chelator, in comparison to deferoxamine in thalassemia patients with transfusonal iron …
Conventional therapy for severe thalassemia includes regular red cell transfusions and iron chelation therapy to prevent and treat complications of iron overload. Iron chelation is very effective when appropriately used, but inadequate iron chelation therapy continues to contribute to preventable morbidity and mortality in transfusion-dependent thalassemia. Factors that contribute to suboptimal iron chelation include poor adherence, variable pharmacokinetics, chelator adverse effects, and difficulties with precise monitoring of response. The regular assessment of adherence, adverse effects, and iron burden with appropriate treatment adjustments is necessary to optimize patient outcomes.
Thalassemia is the most common genetic disorder worldwide. Thalassemia intermedia (TI) is non-transfusion-dependent thalassemia (NTDT), which includes β-TI hemoglobin, E/β-thalassemia and hemoglobin H (HbH) disease. Due to the availability of iron chelation therapy, the life expectancy of thalassemia major (TM) patients is now close to that of TI patients. Iron overload is noted in TI due to the increasing iron absorption from the intestine. Questions are raised regarding the relationship between iron chelation therapy and decreased patient morbidity/mortality, as well as the starting threshold for chelation therapy. Searching all the available articles up to 12 August 2022, iron-chelation-related TI was reviewed. In addition to splenectomized patients, osteoporosis was the most common morbidity among TI cases. Most study designs related to ferritin level and morbidities were cross-sectional and most were from the same Italian study groups. Intervention studies of iron chelation therapy included a subgroup of TI that required regular transfusion. Liver iron concentration (LIC) ≥ 5 mg/g/dw measured by MRI and ferritin level > 300 ng/mL were suggested as indicators to start iron chelation therapy, and iron chelation therapy was suggested to be stopped at a ferritin level ≤ 300 ng/mL. No studies showed improved overall survival rates by iron chelation therapy. TI morbidities and mortalities cannot be explained by iron overload alone. Hypoxemia and hemolysis may play a role. Head-to-head studies comparing different treatment methods, including hydroxyurea, fetal hemoglobin-inducing agents, hypertransfusion as well as iron chelation therapy are needed for TI, hopefully separating β-TI and HbH disease. In addition, the target hemoglobin level should be determined for β-TI and HbH disease.
… , and deferasirox and beta-thalassemia. CENTRAL, ISI Web of Knowledge, … : iron chelation therapy and thalassemia, iron chelation and thalassemia, deferoxamine and thalassemia, …
ABSTRACT Introduction Packed red blood cell (pRBC) transfusions are the primary treatment for thalassemia. However, chronic transfusions ultimately result in iron overload, causing heart, liver, and endocrine complications along with other comorbidities. Although iron chelation is routinely initiated to remove excess iron, adherence remains a challenge, and iron overload still contributes to significant morbidity and early mortality in thalassemia. Areas covered We review the evidence for iron overload and its complications in thalassemia. We also assess iron chelation strategies with possible adherence challenges categorized as patient-, medication-, and system-related barriers. Evidence suggests that lower adherence rates have been associated with more endorsed barriers. Further, patient-related barriers could be internal or external, and taking a patient-centered approach is key to addressing these challenges. Choosing the right iron chelator could help overcome some medication-related barriers. Finally, insurance coverage and access to specialized centers could affect initiation of iron chelation. Expert opinion A critical and routine assessment of adherence barriers is key to optimizing patients’ adherence to iron chelation. Adherence is often a multifactorial process, and it varies over time. Shared decision making with patients and/or caregivers is an important next step to improving adherence to iron chelation, and ultimately health outcomes.
Abstract Introduction Iron chelation therapy (ICT) is essential to prevent complications of iron overload in patients with transfusion-dependent thalassaemia. However, there is currently no standard for how to best measure adherence to ICT, nor what level of adherence necessitates concern for poor outcomes, especially in paediatric patients. The objectives of this review are to identify rates of adherence to ICT, predictors of adherence, methods of measurement, and adherence-related health outcomes in children and adolescents. Methods This review covers the literature published between 1980 and 2020 on ICT in thalassaemia that assessed adherence or compliance. Included studies reflect original research. The preferred reporting items of systematic reviews and meta-analyses (PRISMA) guidelines were followed for reporting results, and the findings were critically appraised with the Oxford Centre for Evidence-based Medicine criteria. Results Of the 543 articles, 37 met the inclusion criteria. The most common methods of assessing adherence included patient self-report (n = 15/36, 41.7%), and pill count (n = 15/36, 41.7%), followed by subcutaneous medication monitoring (5/36, 13.8%) and prescription refills (n = 4/36, 11.1%). Study sizes ranged from 7 to 1115 participants. Studies reported adherence either in “categories” with different levels of adherence (n = 29) or “quantitatively” as a percentage of medication taken out of those prescribed (n = 7). Quantitatively, the percentage of adherence varied from 57% to 98.4% with a median of 89.5%. Five studies focussed on interventions, four of which were designed to improve adherence. Studies varied in sample size and methods of assessment, which prohibited performing a meta-analysis. Conclusions Due to a lack of clinical consensus on how adherence is defined, it is difficult to compare adherence to ICT in different studies. Future studies should be aimed at creating guidelines for assessing adherence and identifying suboptimal adherence. These future efforts will be crucial in informing evidence-based interventions to improve adherence and health outcomes in thalassaemia patients. Key messages Predictive factors associated with ICT adherence in the paediatric population include age, social perception of ICT, social support, and side effects/discomfort. Increased adherence in the paediatric population is associated with decreased serum ferritin and improved cardiac, hepatic, and endocrine outcomes. Inadequate adherence to ICT is associated with increased lifetime health costs. There are few studies that focussed on interventions to increase adherence in the paediatric population, and the studies that do exist all focussed on different types of interventions; successful interventions focussed on consistent, long-term engagement with patients.
Abstract Iron chelation therapy (ICT) is essential to prevent complications of iron overload in patients with transfusion-dependent thalassemia. However, the role that adherence to ICT plays in health-related outcomes is less well known. Our objectives were to identify adherence rates of ICT, and to assess methods of measurement, predictors of adherence, and adherence-related health outcomes in the literature published between 1980 and 2020. Of 543 articles, 43 met the inclusion criteria. Studies measured ICT adherence, predictors, and/or outcomes associated with adherence. Most studies were across multiple countries in Europe and North America (n = 8/43, 18.6%), recruited in clinics (n = 39/43, 90.7%), and focused on β-thalassemia (β-thal) (n = 25/43, 58.1%). Common methods of assessing ICT adherence included patient self-report (n = 24/43, 55.8%), pill count (n = 9/43, 20.9%), prescription refill history (n = 3/43, 7.0%), provider scoring (n = 3/43, 7.0%), and combinations of methods (n = 4/43, 9.3%). Studies reported adherence either in ‘categories’ with different levels of adherence (n = 24) or ‘quantitatively’ as a percentage of doses of medication taken out of those prescribed (n = 17). Adherence levels varied (median 91.7%, range 42.0–99.97%). Studies varied in sample size and methods of adherence assessment and reporting, which prohibited meta-analysis. Due to a lack of consensus on how adherence is defined, it is difficult to compare ICT adherence reporting. Further research is needed to establish guidelines for assessing adherence and identifying suboptimal adherence. Behavioral digital interventions have the potential to optimize ICT adherence and health outcomes.
… -dependent patients with myelodysplastic syndromes… iron overload assessed by T2* magnetic resonance imaging and cardiac function in regularly transfused myelodysplastic syndrome …
Myelodysplasticsyndrome (MDS) and acute myeloid leukemia (AML) are clonal hematopoietic stem cell diseases leading to an insufficient formation of functional blood cells. Disease-immanent factors as insufficient erythropoiesis and treatment-related factors as recurrent treatment with red blood cell transfusions frequently lead to systemic iron overload in MDS and AML patients. In addition, alterations of function and expression of proteins associated with iron metabolism are increasingly recognized to be pathogenetic factors and potential vulnerabilities of these diseases. Iron is known to be involved in multiple intracellular and extracellular processes. It is essential for cell metabolism as well as for cell proliferation and closely linked to the formation of reactive oxygen species. Therefore, iron can influence the course of clonal myeloid disorders, the leukemic environment and the occurrence as well as the defense of infections. Imbalances of iron homeostasis may induce cell death of normal but also of malignant cells. New potential treatment strategies utilizing the importance of the iron homeostasis include iron chelation, modulation of proteins involved in iron metabolism, induction of leukemic cell death via ferroptosis and exploitation of iron proteins for the delivery of antileukemic drugs. Here, we provide an overview of some of the latest findings about the function, the prognostic impact and potential treatment strategies of iron in patients with MDS and AML.
Myelodysplastic syndromes (MDSs) are a group of heterogeneous clonal bone marrow disorders characterized by ineffective hematopoiesis, peripheral blood cytopenias, and potential for malignant transformation. Lower/intermediate-risk MDSs are associated with longer survival and high red blood cell (RBC) transfusion requirements resulting in secondary iron overload. Recent data suggest that markers of iron overload portend a relatively poor prognosis, and retrospective analysis demonstrates that iron chelation therapy is associated with prolonged survival in transfusion-dependent MDS patients. New data provide concrete evidence of iron’s adverse effects on erythroid precursors in vitro and in vivo. Renewed interest in the iron field was heralded by the discovery of hepcidin, the main serum peptide hormone negative regulator of body iron. Evidence from β-thalassemia suggests that regulation of hepcidin by erythropoiesis dominates regulation by iron. Because iron overload develops in some MDS patients who do not require RBC transfusions, the suppressive effect of ineffective erythropoiesis on hepcidin may also play a role in iron overload. We anticipate that additional novel tools for measuring iron overload and a molecular-mechanism–driven description of MDS subtypes will provide a deeper understanding of how iron metabolism and erythropoiesis intersect in MDSs and improve clinical management of this patient population.
… Consensus statement Chelation therapy should continue as long as the patient has a need for transfusion therapy and as long as iron overload remains clinically relevant. …
The clinical benefits of iron overload (IOL) management in hereditary anemias, including organ preservation and dramatically improved overall survival (OS), are widely accepted. Adult myelodysplastic syndrome (MDS) patients are older and may have comorbidities, treatments to extend OS are limited, and the clinical benefits of IOL management have been more challenging to demonstrate due to little prospective data in this population. However, current prognostic systems identify MDS patients with reasonable life expectancy who may benefit from IOL management. Half of MDS patients ultimately become dependent on red blood cell transfusion and develop transfusional IOL. Considerable preclinical and clinical data have accumulated indicating the adverse impact of IOL on multiple cellular and clinical end points and a clinical benefit to IOL management in MDS, which should be considered in some patients. Here we provide an overview of salient data in the usual (nonhematopoietic stem cell transplant) clinical MDS setting, summarize mechanisms of iron toxicity including increased radiologically detectable organ stores and redox-active iron-mediated tissue damage, furnish strategies for the identification of IOL, and suggest a framework for IOL severity and IOL reduction. We review which patients are appropriate for IOL management, recommend an appropriate time to intervene, discuss evidence supporting a clinical benefit to IOL management, and recommend how to off-load iron. We identify data gaps for future study and forecast future tools that may become available to minimize IOL toxicity in MDS.
… of blood transfused, the more rapidly iron overload occurs. A strategy to reduce the risk of iron overload is the judicious timing of transfusions. Less frequent transfusions deliver less iron …
Myelodysplastic syndromes (MDS) encompass a heterogeneous group of clonal hematopoietic stem cell disorders characterized by a broad clinical spectrum related to ineffective hematopoiesis leading to unilineage or multilineage cytopenias, with a high propensity for transformation to acute myeloid leukemia. Iron overload has been recently identified as one of the important conditions complicating the management of these diverse disorders. The accumulation of iron is mainly related to chronic transfusions; however, evidence suggests a possible role for ineffective erythropoiesis and increased intestinal absorption of iron, related to altered hepcidin and growth differentiation factor‐15 levels in the development of hemosiderosis in patients with MDS. In addition to its suggested role in the exacerbation of ineffective erythropoiesis, multiple reports have identified a prognostic implication for the development of iron overload in patients with MDS, with an improvement in overall survival after the initiation of iron chelation therapy. This review includes a detailed discussion of iron overload in patients with MDS whether they are undergoing supportive therapy or curative hematopoietic stem cell transplantation, with a focus on the mechanism, diagnosis, and effect on survival as well as the optimal management of this highly variable complication.
… Anaemia is prevalent in patients with myelodysplastic syndromes (MDS… transfusions, which can lead to iron overload. Some patients may already have iron overload before transfusions …
Chronic red blood cell transfusion support in patients with myelodysplastic syndromes (MDS) is often necessary but may cause hemosiderosis and its consequences. The pathophysiologic effects of iron overload relate to increased non-transferrin bound iron generating toxic oxygen free radicals. Studies in patients with MDS and thalassemia major have shown adverse clinical effects of chronic iron overload on cardiac function in patients who underwent polytransfusion. Iron chelation therapy in patients with thalassemia who were effectively chelated has prevented or partially reversed some of these consequences. A small group of patients with MDS who had undergone effective subcutaneous desferrioxamine (DFO) chelation for 1 to 4 years showed substantial hematologic improvements, including transfusion independence. However, because chronic lengthy subcutaneous infusions of DFO in elderly patients have logistic difficulties, this chelation therapy is generally instituted late in the clinical course. Two oral iron chelators, deferiprone (L1) and deferasirox (ICL670), provide potentially useful treatment for iron overload. This article reviews data indicating that both agents are relatively well tolerated, were at least as effective as DFO for decreasing iron burdens in comparative thalassemia trials, and (for deferiprone) were associated with improved cardiac outcomes. These outcomes could potentially alter the tissue siderosis-associated morbidity of patients with MDS, particularly those with pre-existing cardiac disease.
… , baseline transfusion dependence and iron overload were … need for transfusions, thus minimizing the risk of iron overload. Case … indicate that iron chelation therapy reduces iron load as …
Transfusion dependency seems to have a major prognostic impact in patients with myelodysplastic syndrome (MDS) (Malcovati L et al. J Clin Oncol2007;25:3503). Preliminary data also suggest that the development of iron overload could influence outcome (Malcovati L et al. J Clin Oncol2005;23:7594 and Garcia-Manero G et al. Leukemia2008;22:538), but small numbers have precluded a meaningful analysis of the prognostic value of this characteristic. The main aim of this study was to evaluate the independent prognostic value of transfusion dependency (as defined in WHO-based Prognostic Scoring System [WPSS]) and iron overload (defined as serum ferritin level &gt;1,000 ng/mL) in a large series of 2,994 patients (median age, 74 yr) with de novo MDS according to FAB criteria (2,107 MDS according to WHO criteria). Complete transfusional history was available in 2,241 patients (835 transfusion dependent [TD] at diagnosis, 526 TD during follow-up, and 880 non-TD) and serum ferritin levels in 1,634. Karyotyping was successfully performed in 2,074 patients, who could then be classified by the International Prognostic Scoring System (IPSS) as low (861 patients), intermediate-1 (748), intermediate-2 (311), and high-risk (154). The numbers of patients in the five risk categories defined by the WPSS (available for 1,228 patients) were 257 (21%) in very low, 385 (31%) in low, 217 (18%) in intermediate, 271 (22%) in high, and 98 (8%) in very high, closely similar to those reported in the original WPSS series. Actuarial curves of overall survival (OS) and risk of evolution to acute myeloblastic leukemia (AML) were built by Kaplan-Meier method and differences between curves compared with log-rank tests. Multivariate analyses of OS and risk of evolution to AML were performed by Cox proportional hazards regression method, with development of transfusion dependency and iron overload entered as time-dependent covariates. Other variables included in the prognostic factor analyses were age, gender, hemoglobin level, absolute WBC, PMN, and platelet counts, proportion of blasts in blood and marrow, percentage of dysplastic features in the three different hematopoietic cell lines, cytogenetics according to IPSS cytogenetic risk subgroups, FAB and WHO classifications, ferritin, beta-2 microglobulin, erythropoietin, and LDH levels at diagnosis, and IPSS and WPSS risk categories. All the previous variables showed a statistically significant relationship with OS and/or AML risk on univariante analyses. Median OS for TD patients at diagnosis, TD patients during evolution, and non-TD patients was 19, 60, and 96 months, respectively (P&lt;.0001). Multivariate analyses in a set of 902 cases with complete data confirmed that development of iron overload (1st variable selected to enter the model; hazard ratio [HR], 52.4; P&lt;.0001) and transfusion dependency (2nd to enter; HR, 8.8; P&lt;.0001) were strongly associated with OS and added significant independent prognostic information to that afforded by the IPSS and WPSS scores or by other characteristics with universally recognized prognostic value. Further, multivariate analyses of AML transformation risk showed that iron overload (1st to enter; HR, 6.6; P&lt;.0001) and transfusion dependency (2nd to enter; HR, 3.5; P=.003) had also independent impact on that endpoint. These results demonstrate for the first time the independent prognostic value of development of iron overload on OS and AML risk in MDS, confirm the impact of transfusion dependency on those outcomes, and support that the inclusion of both variables in a new prognostic scoring system would add clinically relevant information. They also suggest that avoiding or reducing iron overload by an appropriate chelation therapy could improve OS and reduce the risk of AML transformation in MDS patients.
The risk and clinical significance of cardiac iron overload due to chronic transfusion varies with the underlying disease. Cardiac iron overload shortens the life expectancy of patients with thalassemia, whereas its effect is unclear in those with myelodysplastic syndromes (MDS). In patients with sickle cell anemia (SCA), iron does not seem to deposit quickly in the heart. Our primary objective was to assess through a multicentric study the prevalence of cardiac iron overload, defined as a cardiovascular magnetic resonance T2*<20 ms, in patients with thalassemia, SCA, or MDS. Patient inclusion criteria were an accurate record of erythrocyte concentrates (ECs) received, a transfusion history >8 ECs in the past year, and age older than 6 years. We included from 9 centers 20 patients with thalassemia, 41 with SCA, and 25 with MDS in 2012-2014. Erythrocytapharesis did not consistently prevent iron overload in patients with SCA. Cardiac iron overload was found in 3 (15%) patients with thalassemia, none with SCA, and 4 (16%) with MDS. The liver iron content (LIC) ranged from 10.4 to 15.2 mg/g dry weight, with no significant differences across groups (P = 0.29). Abnormal T2* was not significantly associated with any of the measures of transfusion or chelation. Ferritin levels showed a strong association with LIC. Non-transferrin-bound iron was high in the thalassemia and MDS groups but low in the SCA group (P<0.001). Hepcidin was low in thalassemia, normal in SCA, and markedly elevated in MDS (P<0.001). Two mechanisms may explain that iron deposition largely spares the heart in SCA: the high level of erythropoiesis recycles the iron and the chronic inflammation retains iron within the macrophages. Thalassemia, in contrast, is characterized by inefficient erythropoiesis, unable to handle free iron. Iron accumulation varies widely in MDS syndromes due to the competing influences of abnormal erythropoiesis, excess iron supply, and inflammation.
… BACKGROUND: Patients with myelodysplastic syndrome (MDS) or severe anemia requiring … ) transfusions risk developing transfusional iron overload, which can reduce survival. Iron …
… Myelodysplastic syndromes (MDS) are a group of disorders characterized by ineffective hematopoiesis that leads to peripheral cytopenias. Iron overload results from high transfusion …
… Because of the closed nature of iron metabolism, the repeated input of packed red blood … transfusions inevitably leads to iron overload. Iron overload can cause iron-related toxicity as …
… While we hypothesize that neutrophil dysfunction from transfusional iron overload may contribute to … Recent evidence suggests that iron overload also influences T-cell and macrophage …
… the effects of transfusions on the risks of complications of iron overload in MDS patients. The … to transfusions and potential complications of iron overload in patients with transfusion-…
Cardiovascular T2-star (T2*) magnetic resonance for the early diagnosis of myocardial iron overload.
… magnetic resonance T2-star (T2*) technique for the measurement of tissue iron, with validation to chemical estimation of iron … correlated myocardial iron measured by this T2* technique …
… that cardiac R2* (1/T2*) rose linearly with cardiac iron in a … Although it was not possible to characterize the MRI–iron … * increases (T2 and T2* shortening) reflect cardiac iron deposition in …
Background— Measurement of myocardial iron is key to the clinical management of patients at risk of siderotic cardiomyopathy. The cardiovascular magnetic resonance relaxation parameter R2* (assessed clinically via its reciprocal, T2*) measured in the ventricular septum is used to assess cardiac iron, but iron calibration and distribution data in humans are limited. Methods and Results— Twelve human hearts were studied from transfusion-dependent patients after either death (heart failure, n=7; stroke, n=1) or transplantation for end-stage heart failure (n=4). After cardiovascular magnetic resonance R2* measurement, tissue iron concentration was measured in multiple samples of each heart with inductively coupled plasma atomic emission spectroscopy. Iron distribution throughout the heart showed no systematic variation between segments, but epicardial iron concentration was higher than in the endocardium. The mean±SD global myocardial iron causing severe heart failure in 10 patients was 5.98±2.42 mg/g dry weight (range, 3.19 to 9.50 mg/g), but in 1 outlier case of heart failure was 25.9 mg/g dry weight. Myocardial ln[R2*] was strongly linearly correlated with ln[Fe] (R2=0.910, P<0.001), leading to [Fe]=45.0×(T2*)−1.22 for the clinical calibration equation with [Fe] in milligrams per gram dry weight and T2* in milliseconds. Midventricular septal iron concentration and R2* were both highly representative of mean global myocardial iron. Conclusions— These data detail the iron distribution throughout the heart in iron overload and provide calibration in humans for cardiovascular magnetic resonance R2* against myocardial iron concentration. The iron values are of considerable interest in terms of the level of cardiac iron associated with iron-related death and indicate that the heart is more sensitive to iron loading than the liver. The results also validate the current clinical practice of monitoring cardiac iron in vivo by cardiovascular magnetic resonance of the midseptum.
… Myocardial T2* less than 10 milliseconds indicates severe cardiac iron overload and high risk of developing cardiac … Frequency of myocardial T2* assessment should be directed by the …
… of T2* imaging in the assessment of myocardial iron assessment. The results for the liver were also encouraging and, although there was a significant difference for the liver T2* …
… role in elucidating how cardiac iron overload affects hemosiderotic cardiomyopathy, and it would … thy on both global heart T2* value and myocardial segment number with iron overload. …
ABSTRACT Objectives: Recent advancements have promoted the use of T2* magnetic resonance imaging (MRI) in the non-invasive detection of iron overload in various organs for thalassemia major patients. This study aims to determine the iron load in the heart and liver of patients with thalassemia major using T2* MRI and to evaluate its correlation with serum ferritin level and iron chelation therapy. Methods: This cross-sectional study included 162 subjects diagnosed with thalassemia major, who were classified into acceptable, mild, moderate, or severe cardiac and hepatic iron overload following their T2* MRI results, respectively, and these were correlated to their serum ferritin levels and iron chelation therapy. Results: The study found that 85.2% of the subjects had normal cardiac iron stores. In contrast, 70.4% of the subjects had severe liver iron overload. A significant but weak correlation (r = −0.28) was found between cardiac T2* MRI and serum ferritin, and a slightly more significant correlation (r = 0.37) was found between liver iron concentration (LIC) and serum ferritin. Discussion: The findings of this study are consistent with several other studies, which show that patients generally manifest with liver iron overload prior to cardiac iron overload. Moreover, iron accumulation demonstrated by T2* MRI results also show a significant correlation to serum ferritin levels. Conclusion: This is the first study of its kind conducted in Indonesia, which supports the fact that T2* MRI is undoubtedly valuable in the early detection of cardiac and hepatic iron overload in thalassemia major patients.
In this issue of Circulation , researchers from the Royal Brompton Hospital and University College London have published a long-anticipated report on the ability of magnetic resonance imaging (MRI) to predict cardiac dysfunction in transfusional siderosis.1 Article see p 1961 Briefly, they report that a cardiac T2* value <10 ms had a sensitivity of 98% and a specificity of 86% for prediction of symptomatic heart failure in 1 year. Risk was graded with respect to T2*, with 47% of patients having T2* <6 ms developing cardiac failure in the same interval. Similar, but less striking, risk stratification was also observed for prospective arrhythmia risk. Metrics of total body iron stores, liver iron concentration, and serum ferritin performed little better than chance in predicting heart failure. To place these observations in context, it is important to review iron overload and its past and present management. Iron overload is a surprisingly common clinical problem, occurring through increased iron absorption (primary hemochromatosis) or through frequent blood transfusion therapy (secondary hemochromatosis).2 Primary hemochromatosis disorders, such as hfe mutations, are relatively common in white populations. However, variable hfe gene penetrance, increased genetic surveillance, and severity of noncardiac symptoms result in fewer hereditary hemochromatosis patients presenting with iron-mediated cardiac disease. By contrast, iron cardiomyopathy remains a major cause of death in secondary hemochromatosis disorders such as the thalassemia, Blackfan-Diamond anemia, and myelodysplastic syndromes because the iron-loading rates are many-fold greater than for primary hemochromatosis.3 The hemoglobinopathies are the most common genetic disorders in the world, particularly in regions where malaria is or was previously endemic, such as the Mediterranean, northern Africa, the Middle East, and Southeast Asia. Increasing economic and ethnic globalization has increased the importance of these disorders in the United States, and their impact is increasing. Iron overload is also becoming …
PURPOSE The purpose of this study was to assess the diagnostic capabilities of cardiac magnetic resonance (CMR) T2* mapping in detecting incidental hepatic and cardiac iron overload. MATERIALS AND METHODS Patients with various clinical indications for CMR examination were consecutively included at a single center from January 2019 to April 2023. All patients underwent T2* mapping at 1.5 T in a single mid-ventricular short-axis as part of a comprehensive routine CMR protocol. T2* measurements were performed of the heart (using a region-of-interest in the interventricular septum) and the liver, categorized according to the severity of iron overload. The degree of cardiac iron overload was categorized as mild (15 ms < T2* < 20 ms), moderate (10 ms < T2* < 15 ms) and severe (T2* < 10 ms). The degree of hepatic iron overload was categorized as mild (4 ms < T2* < 8 ms), moderate (2 ms < T2* < 4 ms), severe (T2* < 2 ms). Image quality and inter-reader agreement were assessed using intraclass correlation coefficient (ICC). RESULTS CMR examinations from 614 patients (374 men, 240 women) with a mean age of 50 ± 18 (standard deviation) years were fully evaluable. A total of 24/614 patients (3.9%) demonstrated incidental hepatic iron overload; of these, 22/614 patients (3.6%) had mild hepatic iron overload, and 2/614 patients (0.3%) had moderate hepatic iron overload. Seven out of 614 patients (1.1%) had incidental cardiac iron overload; of these, 5/614 patients (0.8%) had mild iron overload, 1/614 patients (0.2%) had moderate iron overload, and 1/614 patients (0.2%) had severe iron overload. Good to excellent inter-reader agreement was observed for the assessment of T2* values (ICC, 0.90 for heart [95% confidence interval: 0.88-0.91]; ICC, 0.91 for liver [95% confidence interval: 0.89-0.92]). CONCLUSION Analysis of standard CMR T2* maps detects incidental cardiac and hepatic iron overload in 1.1% and 3.9% of patients, respectively, which may have implications for further patient management. Therefore, despite an overall low number of incidental abnormal findings, T2* imaging may be included in a standardized comprehensive CMR protocol.
… of excess iron in the heart and other … MRI T2* and T2 methods of estimating cardiac iron overload do not appear to correlate with serum ferritin levels or liver iron concentration in iron …
… Practical implications of liver and heart iron load assessment by T2*-MRI in children and adults with transfusion-dependent anemias. Am J Hematol 2008;83:781–783. …
… star) times correlate well with myocardial iron levels. This timely review focuses on the … -T2 ∗ , for the preclinical detection of myocardial iron overload and monitoring of myocardial iron …
… also been used to evaluate myocardial iron overload in adult … In conclusion, MRI T2* rapidly assess iron content in the heart… the same time iron status of the liver and the heart and allows …
… The cardiac T2*-weighted images in this study were acquired using an older technique requiring one breath-hold for each TE. Despite image registration, there is likely to be residual …
… myocardial T1 and T2 mapping for determining cardiac iron overload, with both presenting a good correlation to T2*… Previous studies comparing the direct correlation between iron …
We compared cardiovascular magnetic resonance segmental native T1 against T2* values for the detection of myocardial iron overload (MIO) in thalassaemia major and we evaluated the clinical correlates of native T1 measurements. We considered 146 patients (87 females, 38.7 ± 11.1 years) consecutively enrolled in the Extension-Myocardial Iron Overload in Thalassaemia Network. T1 and T2* values were obtained in the 16 left ventricular (LV) segments. LV function parameters were quantified by cine images. Post-contrast late gadolinium enhancement (LGE) and T1 images were acquired. 64.1% of segments had normal T2* and T1 values while 10.1% had pathologic T2* and T1 values. In 526 (23.0%) segments, there was a pathologic T1 and a normal T2* value while 65 (2.8%) segments had a pathologic T2* value but a normal T1 and an extracellular volume (ECV) ≥ 25% was detected in 16 of 19 segments where ECV was quantified. Global native T1 was independent from gender or LV function but decreased with increasing age. Patients with replacement myocardial fibrosis had significantly lower native global T1. Patients with cardiac complications had significantly lower native global T1. The combined use of both segmental native T1 and T2* values could improve the sensitivity for detecting MIO. Native T1 is associated with cardiac complications in thalassaemia major.
… , heart and liver T2 relaxation time was not measurable in severe iron overloaded patients … Recently a new magnetic resonance T2* technique has been used for the measurement of …
… Cumulative survival of patients with a stable MDS and ongoing transfusion dependency who responded to iron chelation in comparison to patients with increasing ferritin levels (n = 31). …
… 127 transfusion-dependent patients with lower-risk MDS we demonstrate that iron chelation … 6 months or more, is associated with prolonged survival. Patients who received appropriate …
… iron chelation … Iron chelation therapy, particularly the second-generation oral agents, appears to be associated with improved overall and eventfree survival in transfusion-dependent …
… to impact the survival of MDS patients, … survival analyses were done in lower risk MDS from the time of MDS diagnosis and not from RBC transfusion dependence, when iron chelation is …
Elevated iron has been linked to increased morbidity and mortality in the general population (Mainous et al, 2004). In addition, iron overload can occur as an iatrogenic consequence of red blood cell (RBC) transfusions. Transfusional iron overload is not an uncommon consequence in patients who are chronically transfused to treat severe anaemia (de Ville de Goyet et al, 2013), as can occur in patients with myelodysplastic syndrome (MDS). Transfusion-dependent patients have increased mortality (de Ville de Goyet et al, 2013). Iron chelation therapy (ICT) is a strategy to address transfusional iron overload in MDS and utilizes drugs that remove iron as the drug is excreted.
Background: Iron chelation therapy (ICT) in patients with lower-risk myelodysplastic syndromes (MDS) has not been evaluated in randomized studies. Objective: To evaluate event-free survival (EFS) and safety of ICT in iron-overloaded patients with low- or intermediate-1-risk MDS. Design: Multicenter, randomized, double-blind, placebo-controlled trial (TELESTO). (ClinicalTrials.gov: NCT00940602). Setting: 60 centers in 16 countries. Participants: 225 patients with serum ferritin levels greater than 2247 pmol/L; prior receipt of 15 to 75 packed red blood cell units; and no severe cardiac, liver, or renal abnormalities. Intervention: Deferasirox dispersible tablets (10 to 40 mg/kg per day) (n = 149) or matching placebo (n = 76). Measurements: The primary end point was EFS, defined as time from date of randomization to first documented nonfatal event (related to cardiac or liver dysfunction and transformation to acute myeloid leukemia) or death, whichever occurred first. Results: Median time on treatment was 1.6 years (interquartile range [IQR], 0.5 to 3.1 years) in the deferasirox group and 1.0 year (IQR, 0.6 to 2.0 years) in the placebo group. Median EFS was prolonged by approximately 1 year with deferasirox versus placebo (3.9 years [95% CI, 3.2 to 4.3 years] vs. 3.0 years [CI, 2.2 to 3.7 years], respectively; hazard ratio, 0.64 [CI, 0.42 to 0.96]). Adverse events occurred in 97.3% of deferasirox recipients and 90.8% of placebo recipients. Exposure-adjusted incidence rates of adverse events (≥15 events per 100 patient treatment-years) in deferasirox versus placebo recipients, respectively, were 24.7 versus 23.9 for diarrhea, 21.8 versus 18.7 for pyrexia, 16.7 versus 22.7 for upper respiratory tract infection, and 15.9 versus 0.9 for increased serum creatinine concentration. Limitations: The protocol was amended from a phase 3 to a phase 2 study, with a reduced target sample size from 630 to 210 participants. There was differential follow-up between treatment groups. Conclusion: The findings support ICT in iron-overloaded patients with low- to intermediate-1-risk MDS, with longer EFS compared with placebo and a clinically manageable safety profile. Therefore, ICT may be considered in these patients. Primary Funding Source: Novartis Pharma AG.
… iron chelation therapy was associated with improved survival, … association between receiving chelation and survival in non-… only when non-transfusion dependent RARS patients were …
… , transfusion dependence in PMF, as in MDS [27] was associated with inferior survival (p ¼ … An effect of TD on survival is perhaps not surprising, as multiple prognostic scores for PMF …
… Transfusion dependency is also an independent prognostic factor for survival in MDS. Its … assessed the role of iron CT on survival in a cohort of regularly transfused lower risk MDS from …
… overload, reversing some of the complications of iron overload, and prolonging survival in patients who have thalassemia. Studies on the use of deferoxamine in patients who have SCD …
… It is well established that ICT extends the survival of transfusiondependent patients with thalassemia by mitigating iron toxicity23-27; however, there is comparatively little data on clinical …
Transfused MDS patients are at risk for iron overload (IOL). IOL may exacerbate congestive heart failure (CHF), coronary artery disease (CAD) and arrythmias (ARR). We retrospectively examined cardiac events (CE) in red blood cell (RBC) transfusion dependent (TD) lower IPSS risk MDS patients. Patients were censored at death or MDS progression. 151 MDS patients were lower IPSS risk and RBC TD. Median number of cardiac risk factors (RF) per patient was 1 (1-4). CE following RBC TD occurred in 48 (32%) and were: CHF, n = 20; CAD, n = 15; ARR, n = 11. In univariate analysis factors significant for time to (TT) CE were: age at 1st RBC transfusion; number of RBCU transfused while lower IPSS risk; received iron chelation therapy (ICT); MDS treatment received; and number of cardiac RF/patient (p ≤ 0.02). Receiving ICT remained significant for TTCE in multivariate analysis (p = 0.03). Median TTCE in patients not receiving and receiving ICT was 7.0 (0.1-65.0) and 20.0 (0.1-148.6) months, respectively (p = 0.02). For lower IPSS risk RBC transfusion dependent MDS patients, time to first cardiac event following RBC TD was significantly longer in patients receiving ICT. These results suggest ICT may delay cardiac events in transfused patients. The results should be confirmed in larger numbers in prospective analyses.
Iron chelation therapy is often used to treat iron overload in patients requiring transfusion of red blood cells (RBC). A 76-year-old man with MDS type refractory cytopenia with multilineage dysplasia, intermediate-1 IPSS risk, was referred when he became transfusion dependent. He declined infusional chelation but subsequently accepted oral therapy. Following the initiation of chelation, RBC transfusion requirement ceased and he remained transfusion independent over 40 months later. Over the same time course, ferritin levels decreased but did not normalize. There have been eighteen other MDS patients reported showing improvement in hemoglobin level with iron chelation; nine became transfusion independent, nine had decreased transfusion requirements, and some showed improved trilineage myelopoiesis. The clinical features of these patients are summarized and possible mechanisms for such an effect of iron chelation on cytopenias are discussed.
合并后形成七个相互并列的研究方向:首先阐释输血依赖及无效造血相关铁过载的机制和全身毒性;其次单独讨论非输血依赖型地中海贫血的铁负荷与螯合决策;随后总结血清指标、肝铁浓度及心脏和肝脏MRI的定量监测;在治疗层面系统归纳螯合药物、联合方案及心脏铁过载管理;另行突出MDS等非地中海贫血性输血依赖贫血的管理特点;并分析铁过载和输血依赖对生存及疾病结局的影响;最后补充指南、依从性、营养支持和医疗实施体系。整体形成“发生机制—器官负荷评估—治疗干预—特殊疾病场景—长期结局—实施优化”的完整研究链条。