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在低SMN表达的脊髓性肌萎缩症小鼠模型中雄性生殖器官发育的严重受损

Severe impairment of male reproductive organ development in a low SMN expressing mouse model of spinal muscular atrophy.

作者信息

Ottesen Eric W, Howell Matthew D, Singh Natalia N, Seo Joonbae, Whitley Elizabeth M, Singh Ravindra N

机构信息

Department of Biomedical Sciences, Iowa State University, Ames, Iowa 50011, USA.

Department of Veterinary Pathology, Iowa State University, Ames, Iowa 50011, USA.

出版信息

Sci Rep. 2016 Feb 2;6:20193. doi: 10.1038/srep20193.

Abstract

Spinal muscular atrophy (SMA) is caused by low levels of survival motor neuron (SMN), a multifunctional protein essential for higher eukaryotes. While SMN is one of the most scrutinized proteins associated with neurodegeneration, its gender-specific role in vertebrates remains unknown. We utilized a mild SMA model (C/C model) to examine the impact of low SMN on growth and development of mammalian sex organs. We show impaired testis development, degenerated seminiferous tubules, reduced sperm count and low fertility in C/C males, but no overt sex organ phenotype in C/C females. Underscoring an increased requirement for SMN expression, wild type testis showed extremely high levels of SMN protein compared to other tissues. Our results revealed severe perturbations in pathways critical to C/C male reproductive organ development and function, including steroid biosynthesis, apoptosis, and spermatogenesis. Consistent with enhanced apoptosis in seminiferous tubules of C/C testes, we recorded a drastic increase in cells with DNA fragmentation. SMN was expressed at high levels in adult C/C testis due to an adult-specific splicing switch, but could not compensate for low levels during early testicular development. Our findings uncover novel hallmarks of SMA disease progression and link SMN to general male infertility.

摘要

脊髓性肌萎缩症(SMA)是由生存运动神经元(SMN)水平低下引起的,SMN是高等真核生物所必需的多功能蛋白质。虽然SMN是与神经退行性变相关的研究最为深入的蛋白质之一,但其在脊椎动物中的性别特异性作用仍不清楚。我们利用一种轻度SMA模型(C/C模型)来研究低水平SMN对哺乳动物性器官生长和发育的影响。我们发现C/C雄性小鼠睾丸发育受损、生精小管退化、精子数量减少和生育力低下,但C/C雌性小鼠没有明显的性器官表型。与对SMN表达需求增加一致,野生型睾丸与其他组织相比显示出极高水平的SMN蛋白。我们的结果揭示了对C/C雄性生殖器官发育和功能至关重要的途径中的严重紊乱,包括类固醇生物合成、细胞凋亡和精子发生。与C/C睾丸生精小管中细胞凋亡增加一致,我们记录到DNA片段化细胞急剧增加。由于成年特异性剪接转换,SMN在成年C/C睾丸中高水平表达,但在睾丸早期发育过程中无法补偿低水平。我们的发现揭示了SMA疾病进展的新特征,并将SMN与男性普遍不育联系起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4ac/4735745/5b554842d6cd/srep20193-f1.jpg

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