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哺乳动物雌性减数分裂中的中心体微管组装及其对人类生殖的影响。

Acentriolar spindle assembly in mammalian female meiosis and the consequences of its perturbations on human reproduction†.

机构信息

Department of Genetics, Human Genetics Institute of New Jersey, Rutgers University, Piscataway, NJ, USA.

出版信息

Biol Reprod. 2022 Feb 22;106(2):253-263. doi: 10.1093/biolre/ioab210.

Abstract

The purpose of meiosis is to generate developmentally competent, haploid gametes with the correct number of chromosomes. For reasons not completely understood, female meiosis is more prone to chromosome segregation errors than meiosis in males, leading to an abnormal number of chromosomes, or aneuploidy, in gametes. Meiotic spindles are the cellular machinery essential for the proper segregation of chromosomes. One unique feature of spindle structures in female meiosis is spindles poles that lack centrioles. The process of building a meiotic spindle without centrioles is complex and requires precise coordination of different structural components, assembly factors, motor proteins, and signaling molecules at specific times and locations to regulate each step. In this review, we discuss the basics of spindle formation during oocyte meiotic maturation focusing on mouse and human studies. Finally, we review different factors that could alter the process of spindle formation and its stability. We conclude with a discussion of how different assisted reproductive technologies could affect spindles and the consequences these perturbations may have for subsequent embryo development.

摘要

减数分裂的目的是产生具有正确染色体数目的有发育能力的单倍体配子。由于某些尚未完全阐明的原因,雌性减数分裂比雄性减数分裂更容易发生染色体分离错误,导致配子中染色体数量异常,即非整倍体。减数分裂纺锤体是染色体正确分离所必需的细胞机制。雌性减数分裂纺锤体的一个独特特征是纺锤体两极缺乏中心粒。没有中心粒构建减数分裂纺锤体的过程非常复杂,需要在特定时间和位置精确协调不同的结构成分、组装因子、马达蛋白和信号分子,以调节每个步骤。在这篇综述中,我们讨论了卵母细胞减数分裂成熟过程中纺锤体形成的基础,重点是小鼠和人类的研究。最后,我们综述了可能改变纺锤体形成及其稳定性的不同因素。我们最后讨论了不同的辅助生殖技术如何影响纺锤体,以及这些干扰可能对随后的胚胎发育产生的后果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2e3/8862719/70537239f512/ioab210ga.jpg

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