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Red Cells Iron and Erythropoiesis: Iron control of erythroid development by a novel aconitase-associated regulatory pathway

机译:红细胞铁和促红细胞生成:铁通过新的乌头酸酶相关调节途径控制红系发育

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摘要

Human red cell differentiation requires the action of erythropoietin on committed progenitor cells. In iron deficiency, committed erythroid progenitors lose responsiveness to erythropoietin, resulting in hypoplastic anemia. To address the basis for iron regulation of erythropoiesis, we established primary hematopoietic cultures with transferrin saturation levels that restricted erythropoiesis but permitted granulopoiesis and megakaryopoiesis. Experiments in this system identified as a critical regulatory element the aconitases, multifunctional iron-sulfur cluster proteins that metabolize citrate to isocitrate. Iron restriction suppressed mitochondrial and cytosolic aconitase activity in erythroid but not granulocytic or megakaryocytic progenitors. An active site aconitase inhibitor, fluorocitrate, blocked erythroid differentiation in a manner similar to iron deprivation. Exogenous isocitrate abrogated the erythroid iron restriction response in vitro and reversed anemia progression in iron-deprived mice. The mechanism for aconitase regulation of erythropoiesis most probably involves both production of metabolic intermediates and modulation of erythropoietin signaling. One relevant signaling pathway appeared to involve protein kinase Cα/β, or possibly protein kinase Cδ, whose activities were regulated by iron, isocitrate, and erythropoietin.
机译:人红细胞的分化需要促红细胞生成素对定型祖细胞的作用。在铁缺乏症中,定型的类红细胞祖细胞失去对促红细胞生成素的反应性,导致发育不良性贫血。为了解决铁调节红细胞生成的基础,我们建立了具有转铁蛋白饱和水平的原代造血培养物,该水平限制了红细胞生成,但允许粒细胞生成和巨核细胞生成。该系统中的实验将乌头酸酶,多功能铁硫簇蛋白(柠檬酸代谢为异柠檬酸)确定为关键的调控元件。铁限制抑制了红系中的线粒体和胞质乌头酸酶活性,但不抑制粒细胞或巨核细胞祖细胞。活性部位乌头酸抑制剂氟柠檬酸盐以类似于铁剥夺的方式阻止红系分化。外源异柠檬酸在体外消除了类红素铁的限制性反应,并逆转了缺铁小鼠的贫血进展。乌头酸调节红细胞生成的机制最可能涉及代谢中间体的产生和促红细胞生成素信号传导的调节。一种相关的信号传导途径似乎涉及蛋白激酶Cα/β,或者可能是蛋白激酶Cδ,其活性受铁,异柠檬酸和促红细胞生成素的调节。

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