The up-regulation of RIPK3 mediated by ac4C modification promotes oxidative stress-induced granulosa cell senescence by inhibiting the Nrf2/HO-1 pathway

IF 3.7 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
IUBMB Life Pub Date : 2025-01-25 DOI:10.1002/iub.2944
Wanjun Zhang, Jiahao Zhang, Yile Zhang, Jun Zhai, Bo Sun, Yihong Guo, Fang Wang
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引用次数: 0

Abstract

Abnormality of granulosa cells (GCs) is the critical cause of follicular atresia in premature ovarian failure (POF). RIPK3 is highly expressed in GCs derived from atretic follicles. We focus on uncovering how RIPK3 contributes to ovarian GC senescence. Primary GCs were treated with H₂O₂ to induce senescence. ROS was detected via DCFH-DA staining. Levels of senescence-related molecules and SA-β-Gal activity were examined. Cyclophosphamide was administered to mice to induce POF. The impact of RIPK3 on atretic follicles and sex hormones was evaluated through HE staining and ELISA, respectively. The acRIP-qPCR analysis of RIPK3 ac4C levels, RIP detection for interaction between RIPK3 and NAT10, and actinomycin D treatment to detect RIPK3 degradation were conducted. In H2O2-treated GCs and POF mouse ovaries, levels of RIPK3, ROS, senescence-related molecules, as well as SA-β-Gal activity, were all up-regulated, and this effect was suppressed by RIPK3 inhibition. RIPK3 interference reduced atretic follicles and FSH levels while increasing AMH and E2 levels. Nrf2 and HO-1 content were diminished in the models, whereas si-RIPK3 facilitated their expression. The effect of si-RIPK3 on decreased levels of ROS and senescence-related molecules was reversed by ML385. H2O2 decreased RIPK3 mRNA degradation and increased its ac4C modification. The ac4C modifying enzyme NAT10 was up-regulated in the models, and NAT10 enhanced RIPK3 mRNA stability through ac4C modification. NAT10 knockdown mitigated ovarian GC senescence by inhibiting RIPK3 expression. The promotion of RIPK3 mRNA stability through ac4C modification by NAT10, in turn, affects the Nrf2/HO-1 pathway and promotes ovarian GC senescence.

ac4C修饰介导的RIPK3上调通过抑制Nrf2/HO-1通路促进氧化应激诱导的颗粒细胞衰老。
颗粒细胞(GCs)异常是卵巢早衰(POF)中卵泡闭锁的重要原因。RIPK3在来自闭锁卵泡的GCs中高度表达。我们的重点是揭示RIPK3如何促进卵巢GC衰老。用h2o2处理原代GCs诱导衰老。DCFH-DA染色检测ROS。检测衰老相关分子水平和SA-β-Gal活性。用环磷酰胺诱导小鼠POF。通过HE染色和ELISA检测RIPK3对闭锁卵泡和性激素的影响。采用RIP- qpcr分析RIPK3 ac4C水平,RIP检测RIPK3与NAT10相互作用,放线菌素D处理检测RIPK3降解。在h2o2处理的GCs和POF小鼠卵巢中,RIPK3、ROS、衰老相关分子水平以及SA-β-Gal活性均上调,而这种作用被RIPK3抑制所抑制。RIPK3干扰降低了闭锁卵泡和FSH水平,同时增加了AMH和E2水平。Nrf2和HO-1含量在模型中降低,而si-RIPK3促进了它们的表达。si-RIPK3对ROS和衰老相关分子水平降低的影响被ML385逆转。H2O2降低RIPK3 mRNA的降解,增加其ac4C修饰。ac4C修饰酶NAT10在模型中上调,NAT10通过ac4C修饰增强了RIPK3 mRNA的稳定性。NAT10敲低可通过抑制RIPK3表达减轻卵巢GC衰老。NAT10通过ac4C修饰促进ripk3mrna的稳定性,进而影响Nrf2/HO-1通路,促进卵巢GC衰老。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IUBMB Life
IUBMB Life 生物-生化与分子生物学
CiteScore
10.60
自引率
0.00%
发文量
109
审稿时长
4-8 weeks
期刊介绍: IUBMB Life is the flagship journal of the International Union of Biochemistry and Molecular Biology and is devoted to the rapid publication of the most novel and significant original research articles, reviews, and hypotheses in the broadly defined fields of biochemistry, molecular biology, cell biology, and molecular medicine.
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