Shaoxing People's Hospital, Shaoxing Hospital, Zhejiang University School of Medicine, Shaoxing, Zhejiang, 312000, China.
School of Basic Medical Sciences, Zhejiang University, Hangzhou, Zhejiang, 310058, China.
EMBO Rep. 2024 Apr;25(4):2015-2044. doi: 10.1038/s44319-024-00110-z. Epub 2024 Mar 13.
Naive human embryonic stem cells (hESCs) that resemble the pre-implantation epiblasts are fueled by a combination of aerobic glycolysis and oxidative phosphorylation, but their mitochondrial regulators are poorly understood. Here we report that, proline dehydrogenase (PRODH), a mitochondria-localized proline metabolism enzyme, is dramatically upregulated in naive hESCs compared to their primed counterparts. The upregulation of PRODH is induced by a reduction in c-Myc expression that is dependent on PD0325901, a MEK inhibitor routinely present in naive hESC culture media. PRODH knockdown in naive hESCs significantly promoted mitochondrial oxidative phosphorylation (mtOXPHOS) and reactive oxygen species (ROS) production that triggered autophagy, DNA damage, and apoptosis. Remarkably, MitoQ, a mitochondria-targeted antioxidant, effectively restored the pluripotency and proliferation of PRODH-knockdown naive hESCs, indicating that PRODH maintains naive pluripotency by preventing excessive ROS production. Concomitantly, PRODH knockdown significantly slowed down the proteolytic degradation of multiple key mitochondrial electron transport chain complex proteins. Thus, we revealed a crucial role of PRODH in limiting mtOXPHOS and ROS production, and thereby safeguarding naive pluripotency of hESCs.
幼稚态人胚胎干细胞(hESCs)类似于着床前的上胚层细胞,其能量来源于有氧糖酵解和氧化磷酸化的共同作用,但它们的线粒体调节因子还不太清楚。在这里,我们报告说,位于线粒体的脯氨酸代谢酶脯氨酸脱氢酶(PRODH)在幼稚态 hESCs 中的表达水平明显高于其初始态细胞。PRODH 的上调是由 c-Myc 表达减少引起的,而 c-Myc 表达减少依赖于 PD0325901,这是一种经常存在于幼稚态 hESC 培养物中的 MEK 抑制剂。在幼稚态 hESCs 中敲低 PRODH 可显著促进线粒体氧化磷酸化(mtOXPHOS)和活性氧(ROS)的产生,从而引发自噬、DNA 损伤和细胞凋亡。值得注意的是,线粒体靶向抗氧化剂 MitoQ 可有效恢复 PRODH 敲低的幼稚态 hESCs 的多能性和增殖能力,表明 PRODH 通过防止过量 ROS 的产生来维持幼稚态多能性。同时,PRODH 敲低还显著减缓了多种关键线粒体电子传递链复合物蛋白的蛋白水解降解。因此,我们揭示了 PRODH 在限制 mtOXPHOS 和 ROS 产生方面的关键作用,从而保障了 hESCs 的幼稚态多能性。