自噬及时支配phgdh介导的丝氨酸代谢,支持卵母细胞发育。

IF 14.3
Hainan He, Qianqian Zhang, Zhengang Fan, Hongfei Duan, Yu Wang, Bingbing Luo, Qiao Li, Junjie Liu, Delong Li, Shengya Fang, Xia Zhang, Junling Wang, Yi-Liang Miao, Jilong Zhou
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引用次数: 0

摘要

卵母细胞与周围颗粒细胞的代谢相互依赖对卵母细胞的发育能力至关重要。既往研究表明,丝氨酸-甘氨酸及其关键下游代谢物显著参与卵母细胞成熟过程。然而,丝氨酸代谢的机制及其对卵母细胞成熟的影响尚不清楚。在这项研究中,我们证明了丝氨酸代谢酶PHGDH在颗粒细胞中高度激活,介导丝氨酸的从头合成,并在维持其代谢和转录稳态中起着至关重要的作用。通过我们之前报道的颗粒-卵母细胞共培养系统,我们发现巨噬/自噬通过调节phgdh介导的丝氨酸代谢,以阶段特异性的方式调节卵母细胞成熟,这种调节是由CALCOCO2/ ndp52依赖性选择性自噬介导的。进一步的实验表明,s -腺苷蛋氨酸(SAM)是丝氨酸代谢的潜在下游产物,恢复SAM可以显著地恢复颗粒细胞的稳态和卵母细胞的质量。在分子水平上,我们证明了SAM通过改变其启动子区域的H3K4me3修饰水平来调节Igf1的表达,在卵母细胞成熟过程中突出了丝氨酸-SAM-H3K4me3-Igf1调节轴。最后,我们证明了卵母细胞的发育能力取决于生发囊泡破裂(GVBD)阶段颗粒细胞中重新合成丝氨酸,而不是外源性摄取丝氨酸,丝氨酸合成的破坏显著影响卵母细胞的发育能力。总的来说,我们的研究结果揭示了丝氨酸代谢如何将颗粒细胞和卵母细胞联系起来,为预测卵母细胞质量提供了新的靶点,并可能有助于早期诊断或改善生殖结果的治疗干预策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Autophagy dictates PHGDH-mediated serine metabolism in a timely manner to support oocyte development.

The metabolic co-dependence of the oocyte and surrounding granulosa cells is crucial for oocyte developmental competence. Previous research has shown that serine-glycine and its key downstream metabolites are significantly involved in the process of oocyte maturation. However, the mechanism of serine metabolism and its influence on oocyte maturation remain unclear. In this study, we demonstrate that the serine metabolism enzyme PHGDH, which mediates de novo serine synthesis, is highly activated in granulosa cells and plays a crucial role in maintaining their metabolic and transcriptional homeostasis. By using our previously reported granulosa cell-oocyte co-culture system, we found that macroautophagy/autophagy regulates oocyte maturation by modulating PHGDH-mediated serine metabolism in a stage-specific manner, and this regulation is mediated by CALCOCO2/NDP52-dependent selective autophagy. Additional experiments indicated that S-adenosylmethionine (SAM) is a potential downstream product of serine metabolism, and that restoring SAM significantly rescues both granulosa cell homeostasis and oocyte quality. At the molecular level, we demonstrated that SAM regulates Igf1 expression by altering the H3K4me3 modification level in its promoter region, highlighting a serine-SAM-H3K4me3-Igf1 regulatory axis during oocyte maturation. Finally, we demonstrated that oocyte developmental capacity depends on de novo serine synthesis in granulosa cells during germinal vesicle breakdown (GVBD) stage rather than on the exogenous uptake of serine, and that disruption of serine synthesis significantly affects oocyte developmental capacity. Overall, our findings reveal how serine metabolism links granulosa cells and oocytes, provides new targets for predicting oocyte quality, and may help with strategies for early diagnosis or therapeutic intervention in improving reproductive outcomes.Abbreviations aa: amino acid; CALCOCO2/NDP52: calcium binding and coiled-coil domain 2; COCs: cumulus-oocyte complexes; CQ: chloroquine; DEG: differentially expressed gene; GV: germinal vesicle; GVBD: germinal vesicle breakdown; IGF1: insulin-like growth factor 1; MII: metaphase II stage of meiosis; OPTN: optineurin; Pb1: first polar body: PHGDH: 3-phosphoglycerate dehydrogenase; ROS: reactive oxygen species; SAM: s-adenosylmethionine; SQSTM1/p62: sequestosome 1; Ub: ubiquitin; WT: wild-type.

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