Zhang Zhenghong, Pang Xunsheng, Tang Zonghao, Yin Dingzhong, Wang Zhengchao
Provincial Key Laboratory for Developmental Biology and Neurobiology, College of Life Science, Fujian Normal University, Fuzhou, Fujian 350007, P.R. China.
Mol Med Rep. 2015 Sep;12(3):3809-3814. doi: 10.3892/mmr.2015.3788. Epub 2015 May 14.
Vascular endothelial growth factor (VEGF)-dependent angiogenesis has a crucial role in the corpus luteum formation and their functional maintenances in mammalian ovaries. A previous study by our group reported that activation of hypoxia‑inducible factor (HIF)‑1α signaling contributes to the regulation of VEGF expression in the luteal cells (LCs) in response to hypoxia and human chorionic gonadotropin. The present study was designed to test the hypothesis that HIF prolyl‑hydroxylases (PHDs) are expressed in LCs and overexpression of PHD2 attenuates the expression of VEGF induced by hypoxia in LCs. PHD2-overexpressing plasmid was transfected into LC2 cells, and successful plasmid transfection and expression was confirmed by reverse transcription quantitative polymerase chain reaction and western blot analysis. In addition, the present study investigated changes of HIF‑1α and VEGF expression after incubation under hypoxic conditions and PHD2 transfection. PHD2 expression was significantly higher expressed than the other two PHD isoforms, indicating its major role in LCs. Moreover, a significant increase of VEGF mRNA expression was identified after incubation under hypoxic conditions, which was, however, attenuated by PHD2 overexpression in LCs. Further analysis also indicated that this hypoxia‑induced increase in the mRNA expression of VEGF was consistent with increases in the protein levels of HIF‑1α, which is regulated by PHD-mediated degradation. In conclusion, the results of the present study indicated that PHD2 is the main PHD expressed in LCs and hypoxia‑induced VEGF expression can be attenuated by PHD2 overexpression through HIF‑1α‑mediated mechanisms in LCs. This PHD2-mediated transcriptional activation may be one of the mechanisms regulating VEGF expression in LCs during mammalian corpus luteum development.
血管内皮生长因子(VEGF)依赖性血管生成在哺乳动物卵巢黄体形成及其功能维持中起关键作用。我们团队之前的一项研究报告称,缺氧诱导因子(HIF)-1α信号的激活有助于调节黄体细胞(LCs)中VEGF的表达,以响应缺氧和人绒毛膜促性腺激素。本研究旨在验证以下假设:HIF脯氨酰羟化酶(PHDs)在LCs中表达,并且PHD2的过表达会减弱缺氧诱导的LCs中VEGF的表达。将过表达PHD2的质粒转染到LC2细胞中,并通过逆转录定量聚合酶链反应和蛋白质印迹分析确认质粒的成功转染和表达。此外,本研究还调查了在缺氧条件下孵育和PHD2转染后HIF-1α和VEGF表达的变化。PHD2的表达明显高于其他两种PHD同工型,表明其在LCs中的主要作用。此外,在缺氧条件下孵育后,VEGF mRNA表达显著增加,然而,LCs中PHD2的过表达减弱了这种增加。进一步分析还表明,这种缺氧诱导的VEGF mRNA表达增加与HIF-1α蛋白水平的增加一致,而HIF-1α蛋白水平受PHD介导的降解调节。总之,本研究结果表明,PHD2是LCs中表达的主要PHD,并且缺氧诱导的VEGF表达可通过PHD2在LCs中通过HIF-1α介导的机制过表达而减弱。这种PHD2介导的转录激活可能是哺乳动物黄体发育过程中调节LCs中VEGF表达的机制之一。