男性不育
生物
不育
表型
精子
内分泌学
内科学
遗传学
基因
男科
突变
生育率
减数分裂
相扑蛋白
睾酮(贴片)
糖尿病
基因剔除小鼠
细胞生物学
无精子症
繁殖
人类遗传学
突变体
发病机制
精子活力
精液分析
男性生育能力
作者
Yunchuan Tian,Guicheng Zhao,Xiang Wang,Xinyao Tang,Gan Shen,Tiechao Ruan,Chuan Jiang,Shikun Zhao,Jincheng Zhang,Xinyue Cui,Liangchai Zhuo,Jun Ma,Yihong Yang,Tingting Lin,Ying Shen
摘要
Although hundreds of genes have been shown to impair fertility in animal models, the identification of corresponding genetic causes in humans remains largely unknown. Here, we identified biallelic pathogenic variants in WFS1 in three unrelated infertile men presenting with oligoasthenoteratozoospermia and fertilization failure. Remarkably, using the establishment of a Wfs1 knockout (KO) mouse model, we found that WFS1 deficiency leads to disorganized sperm mitochondrial sheath assembly, structural abnormalities in the sperm head-neck junction, and defects in the sperm acrosome, which are consistent with the infertile phenotypes observed in affected individuals. Furthermore, meiotic defects were observed in spermatocytes from KO mice, particularly manifested as impaired sex chromosome synapsis. Mechanistically, WFS1 interacts with PIAS4 to promote the SUMOylation of key spermatogenesis-associated proteins, including SUN5, HSF5, CFAP74, and IZUMO4, which in turn competitively inhibits their K48-linked ubiquitin-mediated degradation during spermatogenesis. Collectively, our study was the first to establish a critical role for WFS1 in human reproduction and to uncover the molecular mechanisms underlying WFS1-mediated regulation of spermatogenesis. These findings provided both fundamental insights and important clinical implications for reproductive medicine.
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