红细胞生成异常病理生理的分子洞察:铁稳态的关键作用。

IF 2.7 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Tohru Fujiwara, Hideo Harigae
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引用次数: 0

摘要

红细胞生成,即红细胞(RBC)的生成过程,高度依赖铁,体内60-70%的铁被纳入血红蛋白。铁的体内平衡受到严格的调节,因为铁超载和铁缺乏都会损害红细胞的发育和功能。铁负荷性贫血,如铁母细胞性贫血和地中海贫血,与无效的红细胞生成和全身铁超载有关。最近的研究也强调了铁下垂的作用,即铁依赖性细胞死亡,在铁过载条件下红细胞衰竭。受细胞内血红素调控的转录抑制因子BTB和CNC同源1 (BACH1)是铁死亡的潜在关键介质。在缺铁的情况下,有限的铁供应会损害血红素和珠蛋白的生物合成、线粒体功能和促红细胞生成素的反应,同时还会通过DNA甲基化诱导基因表达的广泛变化,所有这些都会导致红细胞生成失调。在缺铁条件下,BACH1通过抑制珠蛋白基因表达,在维持血红素与珠蛋白的平衡中发挥关键作用,从而阻止毒性非血红素珠蛋白的聚集。这篇综述总结了目前对铁失衡导致红细胞生成衰竭的机制的理解,并强调了BACH1在铁超载和铁缺乏状态下贫血病理生理中的潜在综合调节作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular Insights into the Pathophysiology of Dysregulated Erythropoiesis: The Crucial Role of Iron Homeostasis.

Erythropoiesis, i.e., process of red blood cell (RBC) production, is highly dependent on iron, with 60-70% of the total body iron incorporated into hemoglobin. Iron homeostasis is tightly regulated, given that both iron overload and deficiency can impair RBC development and function. Iron-loading anemias, such as sideroblastic anemia and thalassemia, are associated with ineffective erythropoiesis and systemic iron overload. Recent studies also highlight the role of ferroptosis, i.e., iron-dependent cell death, in erythroid failure under conditions of iron overload. Transcriptional repressor BTB and CNC homology 1 (BACH1), which is regulated by intracellular heme, is a potential key mediator of ferroptosis. In iron deficiency, limited iron availability impairs heme and globin biosynthesis, mitochondrial function, and erythropoietin responsiveness, while also inducing widespread changes in gene expression through DNA methylation, all of which contribute to dysregulated erythropoiesis. Under iron deficiency, BACH1 plays a critical role in maintaining the balance between heme and globin by suppressing globin gene expression, thereby preventing the aggregation of toxic non-heme globin. This review summarizes the current understanding of the mechanisms by which iron imbalance contributes to erythropoietic failure and highlights BACH1 as a potential integrative regulator in the pathophysiology of anemia in both iron-overload and iron-deficient states.

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来源期刊
Molecular and Cellular Biology
Molecular and Cellular Biology 生物-生化与分子生物学
CiteScore
9.80
自引率
1.90%
发文量
120
审稿时长
1 months
期刊介绍: Molecular and Cellular Biology (MCB) showcases significant discoveries in cellular morphology and function, genome organization, regulation of genetic expression, morphogenesis, and somatic cell genetics. The journal also examines viral systems, publishing papers that emphasize their impact on the cell.
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