TXNIP公司
基因敲除
下调和上调
多囊卵巢
细胞生物学
内科学
生物
转录因子
癌症研究
转录组
小RNA
马拉特1
烟酰胺磷酸核糖转移酶
内分泌学
调节器
脱氢表雄酮
细胞凋亡
信使核糖核酸
基因表达调控
小发夹RNA
微泡
线粒体
信号转导
转录调控
二氢睾酮
作者
Mingxing Sui,Shuying Wu,Qingqing Song,Siyao Chen,Yingli Lu
标识
DOI:10.1096/fj.202502357r
摘要
Polycystic ovary syndrome (PCOS) is a prevalent endocrine disorder with complex pathophysiology and limited therapeutic options. To elucidate potential biomarkers and molecular mechanisms underlying PCOS, we analyzed gene expression profiles in ovarian tissues from dehydroepiandrosterone (DHEA)-induced PCOS mice and control mice by conducting mRNA sequencing. Transcription factor forkhead box O6 (FOXO6) drew our focus, as it exhibited higher expression in PCOS ovarian tissues (fold change ≈1.71, p < 0.05). Functional validation revealed that FOXO6 knockdown alleviated ovarian dysfunction accompanied by attenuated mitochondrial damage and reduced apoptosis in the ovarian tissues of PCOS mice. Meanwhile, high expression of FOXO6 was also observed in dihydrotestosterone (DHT)-treated granulosa cells. Post-FOXO6 downregulation, DHT-induced apoptosis and mitochondrial dysfunction were suppressed. Notably, the RNA level of FOXO6 was upregulated by the methyltransferase METTL3, which inhibited the decay of FOXO6 RNA by increasing the m6A modification of FOXO6 RNA. The inhibitory effects of METTL3 knockdown on apoptosis and mitochondrial dysfunction in granulosa cells were weakened by FOXO6 overexpression. Furthermore, transcriptomic profiling of DHT-treated granulosa cells with or without FOXO6 overexpression was conducted. This analysis yielded 386 upregulated genes and 582 downregulated genes, among which thioredoxin-interacting protein (TXNIP) was prominently upregulated in FOXO6-overexpressing cells (fold change ≈4.5, p < 0.05). FOXO6 transcriptionally activated TXNIP by binding to its promoter, and TXNIP knockdown reversed the effects of FOXO6 overexpression. Collectively, our findings highlight the METTL3/FOXO6/TXNIP axis as a vital regulator of ovarian dysfunction in PCOS, offering novel insights for therapeutic intervention.
科研通智能强力驱动
Strongly Powered by AbleSci AI