Celastrol调节IRS1表达,缓解卵巢衰老,促进卵泡发育。

IF 5.9 2区 医学 Q2 CELL BIOLOGY
Yao Jiang, Yonghua Shi, Meng Lv, Tao Wang, Penghao Wang, Xiaolong Yuan, Fei Gao, Bin Ma
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引用次数: 0

摘要

卵巢老化是女性生殖系统功能下降的重要原因,对生育能力和内分泌平衡产生不利影响。为了解决生殖衰老带来的挑战,天然产物已显示出良好的预防和治疗效果。在这里,我们研究了天然化合物雷公藤红素对卵巢发育和衰老的有益作用及其潜在机制。我们发现,浓度为3mg /kg的雷公藤红素可促进幼鼠卵泡发育,促进猪卵母细胞成熟,同时调节颗粒细胞增殖和凋亡。在12个月大的小鼠(相当于中年人)中,雷公藤红素显示出类似的有益效果。转录组学分析显示,celastrol处理后的差异表达基因与类固醇生物合成、雌激素信号通路、2型糖尿病、胰岛素分泌、减数分裂和细胞凋亡有关。此外,胰岛素受体底物1 (insulin receptor substrate 1, IRS1),胰岛素信号转导中的一种适配蛋白,被证明可以提前幼鼠的青春期并促进卵母细胞成熟。卵母细胞中IRS1的过表达促进了卵泡发育和卵母细胞成熟,导致类固醇激素水平升高,而IRS1的下调抑制了这些过程。我们的研究结果表明,celastrol可能通过调节IRS1的表达及其相关通路来调节卵巢发育和衰老,提示celastrol是一种新的靶向IRS1的小分子化合物,为治疗生殖衰老和不孕症的潜在治疗策略提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Celastrol modulates IRS1 expression to alleviate ovarian aging and to enhance follicular development.

Ovarian aging significantly contributes to the decline of the female reproductive system, adversely affecting fertility and endocrine homeostasis. To address the challenges posed by reproductive aging, natural products have shown promising preventive and therapeutic effects. Here, we investigated the beneficial effects of natural compound celastrol on ovarian development and aging, together with its underlying mechanisms. We found that celastrol administration at a concentration of 3 mg/kg promoted follicle development in young mice and enhanced porcine oocyte maturation, while regulating granulosa cell proliferation and apoptosis. In 12-month-old mice (equivalent to middle-aged adults), celastrol exhibited similar beneficial effects. Transcriptomic analysis revealed that differentially expressed genes post-celastrol treatment were associated with steroid biosynthesis, estrogen signaling pathways, type 2 diabetes, insulin secretion, meiosis, and apoptosis. Additionally, insulin receptor substrate 1 (IRS1), an adapter protein in insulin signaling, was shown to advance puberty in young mice and to facilitate oocyte maturation. Overexpression of IRS1 in oocytes promoted follicular development and oocyte maturation, resulting in enhanced steroid hormone levels, whereas IRS1 knockdown inhibited these processes. Our findings indicate that celastrol may regulate ovarian development and aging by modulating IRS1 expression and its related pathways, suggesting celastrol as a novel small-molecule compound targeting IRS1, and offering new perspectives for potential therapeutic strategies against reproductive aging and infertility.

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来源期刊
Cell Biology and Toxicology
Cell Biology and Toxicology 生物-毒理学
CiteScore
9.90
自引率
4.90%
发文量
101
审稿时长
>12 weeks
期刊介绍: Cell Biology and Toxicology (CBT) is an international journal focused on clinical and translational research with an emphasis on molecular and cell biology, genetic and epigenetic heterogeneity, drug discovery and development, and molecular pharmacology and toxicology. CBT has a disease-specific scope prioritizing publications on gene and protein-based regulation, intracellular signaling pathway dysfunction, cell type-specific function, and systems in biomedicine in drug discovery and development. CBT publishes original articles with outstanding, innovative and significant findings, important reviews on recent research advances and issues of high current interest, opinion articles of leading edge science, and rapid communication or reports, on molecular mechanisms and therapies in diseases.
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