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KLF1 mutation E325K induces cell cycle arrest in erythroid cells differentiated from congenital dyserythropoietic anemia patient-specific induced pluripotent stem cells

机译:KLF1突变E325K诱导从先天性脱核贫血患者特异性诱导多能干多能干细胞分化的红细胞细胞中的细胞周期停滞

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摘要

Kruppel-like factor 1 (KLF1), a transcription factor controlling definitive erythropoiesis, is involved in sequential control of terminal cell division and enucleation via fine regulation of key cell cycle regulator gene expression in erythroid lineage cells. Type IV congenital dyserythropoietic anemia (CDA) is caused by a monoallelic mutation at the second zinc finger of KLF1 (c.973G>A, p.E325K). We recently diagnosed a female patient with type IV CDA with the identical missense mutation. To understand the mechanism underlying the dyserythropoiesis caused by the mutation, we generated induced pluripotent stem cells (iPSCs) from the CDA patient (CDA-iPSCs). The erythroid cells that differentiated from CDA-iPSCs (CDA-erythroid cells) displayed multinucleated morphology, absence of CD44, and dysregulation of the KLF1 target gene expression. In addition, uptake of bromodeoxyuridine by CDA-erythroid cells was significantly decreased at the CD235a(+)/CD71(+) stage, and microarray analysis revealed that cell cycle regulator genes were dysregulated, with increased expression of negative regulators such as CDKN2C and CDKN2A. Furthermore, inducible expression of the KLF1 E325K, but not the wild-type KLF1, caused a cell cycle arrest at the G1 phase in CDA-erythroid cells. Microarray analysis of CDA-erythroid cells and real-time polymerase chain reaction analysis of the KLF1 E325K inducible expression system also revealed altered expression of several KLF1 target genes including erythrocyte membrane protein band 4.1 (EPB41), EPB42, glutathione disulfide reductase (GSR), glucose phosphate isomerase (GPI), and ATPase phospholipid transporting 8A1 (ATP8A1). Our data indicate that the E325K mutation in KLF1 is associated with disruption of transcriptional control of cell cycle regulators in association with erythroid membrane or enzyme abnormalities, leading to dyserythropoiesis. (C) 2019 Published by Elsevier Inc. on behalf of ISEH - Society for Hematology and Stem Cells.
机译:Kruppel样因子1(KLF1),控制定义红细胞的转录因子,通过在红细胞谱系细胞中的微细胞循环调节器基因表达的微细调节中涉及末端细胞分裂和enucleation的顺序控制。 IV型先天性脱疑性贫血(CDA)是由KLF1(C.973G> A,P.E325K)的第二锌手指的单相突变引起的。我们最近诊断出具有IV型CDA的女性患者,具有相同的畸形突变。为了了解由突变引起的脱核遗传症的机制,我们从CDA患者(CDA-IPSCs)产生了诱导的多能干细胞(IPSC)。从CDA-IPSC(CDA-IPSCS)(CDA-赤藓胺细胞)分化的红细胞细胞显示多核形态,不存在CD44,以及KLF1靶基因表达的失衡。此外,CDA-eryThroid细胞的吸收在CDA-赤羟胞嘧啶细胞上显着降低,并且微阵列分析表明,抑制细胞周期调节剂基因,随着CDKN2C和CDKN2A等负调节剂的表达增加而增加。此外,KLF1 E325K但不是野生型KLF1的诱导型表达导致CDA-赤肠细胞中的G1相的细胞周期停滞。 CDA-赤肠细胞的微阵列分析和KLF1 E325K诱导型表达系统的实时聚合酶链反应分析还揭示了几种KLF1靶基因的改变的表达,包括红细胞膜蛋白带4.1(EPB41),EPB42,谷胱甘肽二硫化物还原酶(GSR),葡萄糖磷酸异构酶(GPI)和ATP酶磷脂输送8A1(ATP8A1)。我们的数据表明,KLF1中的E325K突变与细胞周期调节剂与红细胞膜或酶异常相关的转录控制的破坏有关,导致脱蛋白酶。 (c)2019年由elsevier Inc.发布代表Iseh - 血液学和干细胞社会。

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