Related Experiment Video
Updated: Sep 11, 2025

Detection of Residual Donor Erythroid Progenitor Cells after Hematopoietic Stem Cell Transplantation for Patients with Hemoglobinopathies
Published on: September 6, 2017
Beyond transfusions and transplants: genomic innovations rewriting the narrative of thalassemia
Liangbin Shi1,2, Xili Yan1,2, Yanwei Xia1,2
1School of Graduate Medicine, Wannan Medical College, Wuhu, 241002, Anhui, China.
Thalassemia is a globally prevalent inherited blood disorder that usually leads to severe complications and even premature death due to impaired hemoglobin synthesis. The conventional treatment approach encompasses a range of interventions, including red blood cell transfusions, iron chelation therapy, splenectomy, and allogeneic hematopoietic stem cell transplantation. However, transfusion-induced iron overload and the limitation of graft matching have emerged as significant clinical impediments. In recent years, with the advent of precision medicine and translational research, the treatment of thalassemia has undergone a paradigm shift toward stem cell gene therapy, gene editing combined with nanodelivery, and pharmacogenomics-guided, personalized treatment regimens. In preclinical and early-phase clinical trials, these approaches have demonstrated efficacy in modulating hemoglobin gene expression and reversing ineffective hematopoiesis. Consequently, this review explores the constraints imposed by conventional therapeutic approaches and the advancements in the field of gene therapy for thalassaemia. It elucidates the mechanisms of gene editing and the potential of stem cell therapies. Furthermore, the discourse encompasses the advancement of primary prevention strategies, including genetic testing and prenatal screening, in the context of reducing morbidity. It is our hope that this review will provide the latest clues and insights in gene therapy for the effective management of thalassemia.
Thalassemia is a globally prevalent inherited blood disorder that usually leads to severe complications and even premature death due to impaired hemoglobin synthesis. The conventional treatment approach encompasses a range of interventions, including red blood cell transfusions, iron chelation therapy, splenectomy, and allogeneic hematopoietic stem cell transplantation. However, transfusion-induced iron overload and the limitation of graft matching have emerged as significant clinical impediments. In recent years, with the advent of precision medicine and translational research, the treatment of thalassemia has undergone a paradigm shift toward stem cell gene therapy, gene editing combined with nanodelivery, and pharmacogenomics-guided, personalized treatment regimens. In preclinical and early-phase clinical trials, these approaches have demonstrated efficacy in modulating hemoglobin gene expression and reversing ineffective hematopoiesis. Consequently, this review explores the constraints imposed by conventional therapeutic approaches and the advancements in the field of gene therapy for thalassaemia. It elucidates the mechanisms of gene editing and the potential of stem cell therapies. Furthermore, the discourse encompasses the advancement of primary prevention strategies, including genetic testing and prenatal screening, in the context of reducing morbidity. It is our hope that this review will provide the latest clues and insights in gene therapy for the effective management of thalassemia.
More Related Videos
Related Concept Videos
Bone Marrow Sampling and Transplants
The transplant begins with high doses of chemotherapy and radiation treatment, which aim to destroy...
Gene Therapy
Blood Transfusion
Blood Transfusion Overview
A blood transfusion is a medical procedure used to replace blood lost due to injury, surgery, or to treat conditions such as anemia or cancer. During a transfusion, donor blood is...
Blood Transfusion and Agglutination
History
The history of blood transfusion dates back to the 17th century, when early attempts were made in animals. In 1818 James Blundell, a British doctor, performed the first successful human blood transfusion. Later in 1900, Karl...
iPS Cell Differentiation
Tissue Transplantation
The Biology of Tissue Transplantation
The biology of tissue transplantation hinges on the Major Histocompatibility Complex (MHC) molecules. These molecules...

