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一种系统方法确定了终末红细胞生成关键步骤中FOXO3的重要功能。

A Systems Approach Identifies Essential FOXO3 Functions at Key Steps of Terminal Erythropoiesis.

作者信息

Liang Raymond, Campreciós Genís, Kou Yan, McGrath Kathleen, Nowak Roberta, Catherman Seana, Bigarella Carolina L, Rimmelé Pauline, Zhang Xin, Gnanapragasam Merlin Nithya, Bieker James J, Papatsenko Dmitri, Ma'ayan Avi, Bresnick Emery, Fowler Velia, Palis James, Ghaffari Saghi

机构信息

Department of Developmental & Regenerative Biology, Icahn School of Medicine at Mount Sinai, New York, New York, United States of America; Developmental and Stem Cell Biology Multidisciplinary Training Area, Icahn School of Medicine at Mount Sinai, New York, New York, United States of America.

Department of Developmental & Regenerative Biology, Icahn School of Medicine at Mount Sinai, New York, New York, United States of America.

出版信息

PLoS Genet. 2015 Oct 9;11(10):e1005526. doi: 10.1371/journal.pgen.1005526. eCollection 2015 Oct.

Abstract

Circulating red blood cells (RBCs) are essential for tissue oxygenation and homeostasis. Defective terminal erythropoiesis contributes to decreased generation of RBCs in many disorders. Specifically, ineffective nuclear expulsion (enucleation) during terminal maturation is an obstacle to therapeutic RBC production in vitro. To obtain mechanistic insights into terminal erythropoiesis we focused on FOXO3, a transcription factor implicated in erythroid disorders. Using an integrated computational and experimental systems biology approach, we show that FOXO3 is essential for the correct temporal gene expression during terminal erythropoiesis. We demonstrate that the FOXO3-dependent genetic network has critical physiological functions at key steps of terminal erythropoiesis including enucleation and mitochondrial clearance processes. FOXO3 loss deregulated transcription of genes implicated in cell polarity, nucleosome assembly and DNA packaging-related processes and compromised erythroid enucleation. Using high-resolution confocal microscopy and imaging flow cytometry we show that cell polarization is impaired leading to multilobulated Foxo3-/- erythroblasts defective in nuclear expulsion. Ectopic FOXO3 expression rescued Foxo3-/- erythroblast enucleation-related gene transcription, enucleation defects and terminal maturation. Remarkably, FOXO3 ectopic expression increased wild type erythroblast maturation and enucleation suggesting that enhancing FOXO3 activity may improve RBCs production. Altogether these studies uncover FOXO3 as a novel regulator of erythroblast enucleation and terminal maturation suggesting FOXO3 modulation might be therapeutic in disorders with defective erythroid maturation.

摘要

循环红细胞(RBCs)对于组织氧合和体内平衡至关重要。在许多疾病中,有缺陷的终末红细胞生成会导致红细胞生成减少。具体而言,终末成熟过程中无效的核排出(去核)是体外治疗性红细胞生成的障碍。为了深入了解终末红细胞生成的机制,我们聚焦于FOXO3,一种与红细胞疾病相关的转录因子。通过综合计算和实验系统生物学方法,我们表明FOXO3对于终末红细胞生成过程中正确的时间基因表达至关重要。我们证明,依赖FOXO3的基因网络在终末红细胞生成的关键步骤,包括去核和线粒体清除过程中具有关键的生理功能。FOXO3缺失会使与细胞极性、核小体组装和DNA包装相关过程的基因转录失调,并损害红细胞去核。使用高分辨率共聚焦显微镜和成像流式细胞术,我们表明细胞极化受损,导致在核排出方面存在缺陷的多叶状Foxo3-/-成红细胞。异位表达FOXO3可挽救Foxo3-/-成红细胞去核相关基因转录、去核缺陷和终末成熟。值得注意的是,FOXO3异位表达增加了野生型成红细胞的成熟和去核,这表明增强FOXO3活性可能会改善红细胞生成。总之,这些研究揭示了FOXO3是成红细胞去核和终末成熟的新型调节因子,表明FOXO3调节可能对红细胞成熟缺陷的疾病具有治疗作用。

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