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胚胎干细胞中磷酸肌醇3激酶调节亚基p85α基因破坏后信号传导和细胞周期调控的改变

Altered signaling and cell cycle regulation in embryonal stem cells with a disruption of the gene for phosphoinositide 3-kinase regulatory subunit p85alpha.

作者信息

Hallmann Daniel, Trümper Katja, Trusheim Heidi, Ueki Kohjiro, Kahn C Ronald, Cantley Lewis C, Fruman David A, Hörsch Dieter

机构信息

Department of Internal Medicine, Division of Gastroenterology and Metabolism, Philipps-University, D-35033 Marburg, Germany.

出版信息

J Biol Chem. 2003 Feb 14;278(7):5099-108. doi: 10.1074/jbc.M208451200. Epub 2002 Nov 14.

Abstract

The p85alpha regulatory subunit of class I(A) phosphoinositide 3-kinases (PI3K) is derived from the Pik3r1 gene, which also yields alternatively spliced variants p50alpha and p55alpha. It has been proposed that excess monomeric p85 competes with functional PI3K p85-p110 heterodimers. We examined embryonic stem (ES) cells with heterozygous and homozygous disruptions in the Pik3r gene and found that wild type ES cells express virtually no monomeric p85alpha. Although, IGF-1-stimulated PI3K activity associated with insulin receptor substrates was unaltered in all cell lines, p85alpha-null ES cells showed diminished protein kinase B activation despite increased PI3K activity associated with the p85beta subunit. Furthermore, p85alpha-null cells demonstrated growth retardation, increased frequency of apoptosis, and altered cell cycle regulation with a G(0)/G(1) cell cycle arrest and up-regulation of p27(KIP), whereas signaling through CREB and MAPK was enhanced. These phenotypes were reversed by re-expression of p85alpha via adenoviral gene transfer. Surprisingly, all ES cell lines could be differentiated into adipocytes. In these differentiated ES cells, however, compensatory p85beta signaling was lost in p85alpha-null cells while increased signaling by CREB and MAPK was still observed. Thus, loss of p85alpha in ES cells induced alterations in IGF-1 signaling and regulation of apoptosis and cell cycle but no defects in differentiation. However, differentiated ES cells partially lost their ability for compensatory signaling at the level of PI3K, which may explain some of the defects observed in mice with homozygous deletion of the Pik3r1 gene.

摘要

I(A)类磷酸肌醇3激酶(PI3K)的p85α调节亚基源自Pik3r1基因,该基因还产生可变剪接变体p50α和p55α。有人提出,过量的单体p85会与功能性PI3K p85 - p110异二聚体竞争。我们检查了Pik3r基因杂合和纯合缺失的胚胎干细胞(ES细胞),发现野生型ES细胞几乎不表达单体p85α。尽管在所有细胞系中,与胰岛素受体底物相关的IGF - 1刺激的PI3K活性未改变,但p85α缺失的ES细胞尽管与p85β亚基相关的PI3K活性增加,但蛋白激酶B的激活却减弱。此外,p85α缺失的细胞表现出生长迟缓、凋亡频率增加以及细胞周期调节改变,出现G(0)/G(1)细胞周期阻滞和p27(KIP)上调,而通过CREB和MAPK的信号传导增强。通过腺病毒基因转移重新表达p85α可逆转这些表型。令人惊讶的是,所有ES细胞系都可分化为脂肪细胞。然而,在这些分化的ES细胞中,p85α缺失的细胞中补偿性p85β信号传导丧失,而仍观察到CREB和MAPK的信号传导增加。因此,ES细胞中p85α的缺失诱导了IGF - 1信号传导以及凋亡和细胞周期调节的改变,但在分化方面没有缺陷。然而,分化的ES细胞在PI3K水平上部分丧失了补偿性信号传导能力,这可能解释了在Pik3r1基因纯合缺失的小鼠中观察到的一些缺陷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25c1/3205087/501ebe6d58de/nihms314442f1.jpg

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