RAB3IL1: A Key Regulator in the Autophagy-Ferroptosis Axis of Male Infertility.

IF 3.1 2区 生物学 Q2 REPRODUCTIVE BIOLOGY
Binyu Ma, Zhidan Hong, Ying Gao, Yingjing Wan, Xuanyi He, Mei Wang, Yuanzhen Zhang
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Abstract

Ferroptosis, an iron-dependent form of regulated cell death characterized by phospholipid peroxidation, plays a pivotal role in various diseases. However, its involvement in male infertility, particularly in idiopathic non-obstructive azoospermia (iNOA), remains largely unexplored. iNOA accounts for 10-15% of male infertility cases, presenting a significant clinical challenge due to its unknown origins. This study investigated the potential link between ferroptosis and iNOA, revealing excessive activation of both ferroptosis and autophagy in the testes of iNOA patients, along with severe disruption of the blood-testis barrier (BTB). The BTB, formed by tight junctions between Sertoli cells, is essential for maintaining the spermatogenesis microenvironment. Using the ferroptosis inducer erastin, an antagonist of the cystine antiporter SLC7A11, we established a ferroptosis model in mouse Sertoli cells, demonstrating that ferroptosis activation led to cytoskeletal disarray and BTB disruption, accompanied by excessive autophagy activation. Notably, inhibition of autophagy using 3-methyladenine significantly rescued erastin-induced ferroptosis and restored BTB integrity, highlighting a crucial cross-talk between ferroptosis and autophagy in maintaining the spermatogenic microenvironment. Furthermore, through combined transcriptome analysis of iNOA testes and Sertoli cells, we identified RAB3IL1 as a novel regulator of ferroptosis. Mechanistically, Rab3il1 knockdown induced ferroptosis via translocation of SLC7A11, resulting in cytoskeletal defects and BTB damage. Our findings underscore the critical role of the ferroptosis-autophagy axis, regulated by RAB3IL1, in preserving the spermatogenic microenvironment, offering a potential therapeutic target for restoring spermatogenesis in iNOA patients.

RAB3IL1:男性不育症自噬-铁下垂轴的关键调节因子
铁凋亡是一种以磷脂过氧化为特征的铁依赖性细胞死亡形式,在多种疾病中起着关键作用。然而,它与男性不育,特别是特发性非阻塞性无精子症(iNOA)的关系,在很大程度上仍未被探索。iNOA占男性不育症病例的10-15%,由于其来源不明,提出了重大的临床挑战。本研究探讨了铁下垂与iNOA之间的潜在联系,揭示了iNOA患者睾丸中铁下垂和自噬的过度激活,以及血睾丸屏障(BTB)的严重破坏。BTB由支持细胞之间的紧密连接形成,对维持精子发生微环境至关重要。我们利用半胱氨酸反转运蛋白SLC7A11的拮抗剂铁沉诱导剂erastin,在小鼠Sertoli细胞中建立了铁沉模型,表明铁沉激活导致细胞骨架紊乱和BTB破坏,并伴有过度的自噬激活。值得注意的是,使用3-甲基腺嘌呤抑制自噬显著地挽救了erastin诱导的铁凋亡并恢复了BTB的完整性,这突出了铁凋亡和自噬在维持生精微环境中的重要交叉作用。此外,通过iNOA睾丸和Sertoli细胞的联合转录组分析,我们发现RAB3IL1是铁凋亡的一种新的调节因子。在机制上,Rab3il1敲低通过SLC7A11易位诱导铁凋亡,导致细胞骨架缺陷和BTB损伤。我们的研究结果强调了由RAB3IL1调控的嗜铁-自噬轴在保存生精微环境中的关键作用,为恢复iNOA患者的生精提供了一个潜在的治疗靶点。
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
Biology of Reproduction
Biology of Reproduction 生物-生殖生物学
CiteScore
6.30
自引率
5.60%
发文量
214
审稿时长
1 months
期刊介绍: Biology of Reproduction (BOR) is the official journal of the Society for the Study of Reproduction and publishes original research on a broad range of topics in the field of reproductive biology, as well as reviews on topics of current importance or controversy. BOR is consistently one of the most highly cited journals publishing original research in the field of reproductive biology.
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