Lei Lanjie, Han Feng, Cui Qiuyan, Liao Weifang, Liu Hui, Guan Gaopeng, Yang Lei
Clinical Skills Center, Affiliated Hospital of Jiujiang University, Jiujiang University, Jiangxi 332000, China.
Key Laboratory of System Bio-medicine of Jiangxi Province, Jiujiang University, Jiangxi 332000, China.
J Reprod Dev. 2018 Oct 12;64(5):409-416. doi: 10.1262/jrd.2018-055. Epub 2018 Jul 12.
Insulin receptor substrate 2 (IRS2) is a component of the insulin/insulin-like growth factor 1 (IGF1) signaling cascade, which plays an important role in mouse hypothalamic and ovarian functions. The present study was conducted to investigate the role of IRS2 in steroidogenesis, apoptosis, cell cycle and proliferation in mouse granulosa cells (GCs). Flow cytometry and CCK8 assay showed that IRS2 knockdown inhibited cell proliferation, reduced cell viability, and increased apoptosis in GCs. The study also revealed that the expression of Cyclin A1, Cyclin B1 and Bcl2 was downregulated, while the expression of Bax, Cyclin D1 and Cyclin D2 was upregulated. ELISA analysis showed that IRS2 knockdown decreased the concentrations of estradiol (E) and progesterone (P), which was further validated by the decreased expression of Star, Cyp11a1, and Cyp19a1. Moreover, IRS2 knockdown altered the expression of Has2 and Ptgs2, which are essential for folliculogenesis. In addition, we found that IRS2-mediated cell viability and hormone secretion are dependent on the PI3K/AKT signaling pathway. Collectively, this study demonstrated that IRS2 plays an important role in the regulation of cell proliferation and steroidogenesis in mouse GCs via the PI3K/AKT signaling pathway.
胰岛素受体底物2(IRS2)是胰岛素/胰岛素样生长因子1(IGF1)信号级联反应的一个组成部分,在小鼠下丘脑和卵巢功能中发挥重要作用。本研究旨在探讨IRS2在小鼠颗粒细胞(GCs)的类固醇生成、细胞凋亡、细胞周期和增殖中的作用。流式细胞术和CCK8检测表明,IRS2基因敲低抑制了GCs的细胞增殖,降低了细胞活力,并增加了细胞凋亡。该研究还显示,细胞周期蛋白A1、细胞周期蛋白B1和Bcl2的表达下调,而Bax、细胞周期蛋白D1和细胞周期蛋白D2的表达上调。ELISA分析表明,IRS2基因敲低降低了雌二醇(E)和孕酮(P)的浓度,Star、Cyp11a1和Cyp19a1表达的降低进一步证实了这一点。此外,IRS2基因敲低改变了对卵泡生成至关重要的Has2和Ptgs2的表达。此外,我们发现IRS2介导的细胞活力和激素分泌依赖于PI3K/AKT信号通路。总的来说,本研究表明IRS2通过PI3K/AKT信号通路在调节小鼠GCs的细胞增殖和类固醇生成中发挥重要作用。