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α-SNAP is expressed in mouse ovarian granulosa cells and plays a key role in folliculogenesis and female fertility

机译:α-SNAP在小鼠卵巢颗粒细胞中表达在卵泡形成和女性生育中起关键作用

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摘要

The balance between ovarian folliculogenesis and follicular atresia is critical for female fertility and is strictly regulated by a complex network of neuroendocrine and intra-ovarian signals. Despite the numerous functions executed by granulosa cells (GCs) in ovarian physiology, the role of multifunctional proteins able to simultaneously coordinate/modulate several cellular pathways is unclear. Soluble N-ethylmaleimide-sensitive factor (NSF) attachment protein (α-SNAP) is a multifunctional protein that participates in SNARE-mediated membrane fusion events. In addition, it regulates cell-to-cell adhesion, AMPK signaling, autophagy and apoptosis in different cell types. In this study we examined the expression pattern of α-SNAP in ovarian tissue and the consequences of α-SNAP (M105I) mutation (hyh mutation) in folliculogenesis and female fertility. Our results showed that α-SNAP protein is highly expressed in GCs and its expression is modulated by gonadotropin stimuli. On the other hand, α-SNAP-mutant mice show a reduction in α-SNAP protein levels. Moreover, increased apoptosis of GCs and follicular atresia, reduced ovulation rate, and a dramatic decline in fertility is observed in α-SNAP-mutant females. In conclusion, α-SNAP plays a critical role in the balance between follicular development and atresia. Consequently, a reduction in its expression/function (M105I mutation) causes early depletion of ovarian follicles and female subfertility.
机译:卵巢卵泡生成与卵泡闭锁之间的平衡对于女性生育至关重要,并由神经内分泌和卵巢内信号的复杂网络严格调节。尽管颗粒细胞(GCs)在卵巢生理中执行了许多功能,但尚不清楚能够同时协调/调节多种细胞途径的多功能蛋白质的作用。可溶性N-乙基马来酰亚胺敏感因子(NSF)附着蛋白(α-SNAP)是一种多功能蛋白,参与SNARE介导的膜融合事件。此外,它还调节不同细胞类型中的细胞间粘附,AMPK信号传导,自噬和凋亡。在这项研究中,我们研究了α-SNAP在卵巢组织中的表达模式以及α-SNAP(M105I)突变(hyh突变)在卵泡形成和女性受精中的后果。我们的结果表明,α-SNAP蛋白在GC中高度表达,其表达受到促性腺激素刺激的调节。另一方面,α-SNAP突变小鼠显示α-SNAP蛋白水平降低。此外,在α-SNAP突变女性中观察到GC凋亡增加和滤泡闭锁,排卵率降低以及生育力显着下降。总之,α-SNAP在卵泡发育与闭锁之间的平衡中起关键作用。因此,其表达/功能的下降(M105I突变)会导致卵巢卵泡的早期耗竭和女性不育。

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