Metadata
Name from Authors Collection
Affiliations
Thalassemia Research Center, Institute of Molecular Biosciences, Mahidol University, Nakhon Pathom, 73170, Thailand; Doctoral Program in Biomedical Sciences, Faculty of Medicine, Universitas Indonesia, Jakarta Pusat, 10430, Indonesia; Department of Genetics, Faculty of Medicine, Universitas Swadaya Gunung Jati, West-Java, Cirebon, 45132, Indonesia; Department of Biochemistry, Faculty of Medicine, Bangkokthonburi University, Bangkok, 10170, Thailand; Department of Clinical Microscopy, Faculty of Medical Technology, Mahidol University, Nakhon Pathom, 73170, Thailand; National Biobank of Thailand (NBT), National Center for Genetic Engineering and Biotechnology (BIOTEC), Pathum Thani, 12120, Thailand; Department of Pathobiology, Faculty of Science, Mahidol University, Bangkok, 10400, Thailand; Department of Biochemistry, Faculty of Science, Mahidol University, Bangkok, 10400, Thailand
Type
Article
Source Title
Experimental and Molecular Pathology
ISSN
144800
Year
2025
Volume
143
Open Access
All Open Access; Gold Open Access; Green Open Access
Publisher
Academic Press Inc.
DOI
10.1016/j.yexmp.2025.104980
Abstract
Ineffective erythropoiesis, the main cause of anemia in β-thalassemia disease, is characterized by dramatic expansion of erythroblasts and increased erythroblast cell death. The absence or reduction of β-globin chains causes an accumulation of excess α-globin chains and generates cytotoxic reactive oxidant species, resulting in erythroblast cell death. Metabolism provides energy, building blocks for macromolecule synthesis, and cofactors for antioxidative defense systems. We hypothesized that β-thalassemia erythroblasts might alter their metabolism to cope with increased proliferation and cellular stress. Herein, transcriptomic analysis of basophilic and polychromatic erythroblasts isolated from bone marrow obtained from β-thalassemia/HbE patients showed the global up-regulation of metabolic genes in glycolysis, TCA cycle, pentose phosphate pathway, ATP, and fatty acid synthesis pathway. The expression of metabolic genes during terminal erythropoiesis was further determined by PCR array and RT-qPCR in erythroblast culture obtained from β-thalassemia/HbE patients with mild and severe symptoms. The increased expression of enolase1, isocitrate dehydrogenase 1, and bisphosphoglycerate mutase was observed in mild cases compared to severe patients, suggesting that mild patients might modulate metabolic flux for cellular stress defense mechanisms, reducing disease severity. Moreover, the role of BPGM in regulating erythroid differentiation was demonstrated in K562 cells. Inhibition of BPGM promotes cell differentiation in K562 cells. Understanding metabolic reprogramming in thalassemia erythropoiesis opens new therapeutic approaches for β-thalassemia/HbE treatment. Further research is needed to explore how metabolism affects ineffective erythropoiesis and supports thalassemic erythroblasts' high proliferation and oxidative stress defense. © 2024
Keyword
Ineffective erythropoiesis | Metabolic genes | Metabolic reprogramming | Metabolism | Β-Thalassemia/HbE disease
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License
CC BY-NC-ND
Rights
Authors
Publication Source
Scopus
Publication Source
Scopus