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线虫第一次不对称胚胎分裂过程中纺锤体行为的演变。

Evolution of mitotic spindle behavior during the first asymmetric embryonic division of nematodes.

机构信息

Department of Pharmacology & Physiology (Colin Flaveny lab), Saint Louis University School of Medicine, Saint Louis, Missouri, United States of America.

UnivLyon, ENS de Lyon, Univ Claude Bernard, Laboratory of Biology and Modelling of the Cell, Lyon University, Lyon, France.

出版信息

PLoS Biol. 2018 Jan 22;16(1):e2005099. doi: 10.1371/journal.pbio.2005099. eCollection 2018 Jan.

Abstract

Asymmetric cell division is essential to generate cellular diversity. In many animal cells, the cleavage plane lies perpendicular to the mitotic spindle, and it is the spindle positioning that dictates the size of the daughter cells. Although some properties of spindle positioning are conserved between distantly related model species and different cell types, little is known of the evolutionary robustness of the mechanisms underlying this event. We recorded the first embryonic division of 42 species of nematodes closely related to Caenorhabditis elegans, which is an excellent model system to study the biophysical properties of asymmetric spindle positioning. Our recordings, corresponding to 128 strains from 27 Caenorhabditis and 15 non-Caenorhabditis species (accessible at http://www.ens-lyon.fr/LBMC/NematodeCell/videos/), constitute a powerful collection of subcellular phenotypes to study the evolution of various cellular processes across species. In the present work, we analyzed our collection to the study of asymmetric spindle positioning. Although all the strains underwent an asymmetric first cell division, they exhibited large intra- and inter-species variations in the degree of cell asymmetry and in several parameters controlling spindle movement, including spindle oscillation, elongation, and displacement. Notably, these parameters changed frequently during evolution with no apparent directionality in the species phylogeny, with the exception of spindle transverse oscillations, which were an evolutionary innovation at the base of the Caenorhabditis genus. These changes were also unrelated to evolutionary variations in embryo size. Importantly, spindle elongation, displacement, and oscillation each evolved independently. This finding contrasts starkly with expectations based on C. elegans studies and reveals previously unrecognized evolutionary changes in spindle mechanics. Collectively, these data demonstrate that, while the essential process of asymmetric cell division has been conserved over the course of nematode evolution, the underlying spindle movement parameters can combine in various ways. Like other developmental processes, asymmetric cell division is subject to system drift.

摘要

不对称细胞分裂对于产生细胞多样性至关重要。在许多动物细胞中,分裂面垂直于有丝分裂纺锤体,纺锤体的定位决定了子细胞的大小。尽管纺锤体定位的某些特性在亲缘关系较远的模式物种和不同的细胞类型之间是保守的,但对于支撑这一事件的机制的进化稳健性知之甚少。我们记录了 42 种与秀丽隐杆线虫密切相关的线虫的第一次胚胎分裂,秀丽隐杆线虫是研究不对称纺锤体定位的生物物理特性的优秀模型系统。我们的记录对应于 27 种秀丽隐杆线虫和 15 种非秀丽隐杆线虫物种的 128 个品系(可在 http://www.ens-lyon.fr/LBMC/NematodeCell/videos/ 上获得),构成了一个强大的亚细胞表型集合,用于研究跨物种的各种细胞过程的进化。在本工作中,我们分析了我们的集合以研究不对称纺锤体定位。尽管所有的品系都经历了不对称的第一次细胞分裂,但它们在细胞不对称的程度和控制纺锤体运动的几个参数(包括纺锤体振荡、伸长和位移)上表现出很大的种内和种间变异。值得注意的是,这些参数在进化过程中经常变化,在物种系统发育中没有明显的方向性,除了纺锤体横向振荡,这是在秀丽隐杆线虫属的基部的一个进化创新。这些变化也与胚胎大小的进化变化无关。重要的是,纺锤体的伸长、位移和振荡都独立进化。这一发现与基于秀丽隐杆线虫的研究的预期形成鲜明对比,揭示了以前未被认识到的纺锤体力学进化变化。总的来说,这些数据表明,虽然不对称细胞分裂的基本过程在线虫进化过程中得到了保守,但潜在的纺锤体运动参数可以以各种方式结合。与其他发育过程一样,不对称细胞分裂受到系统漂移的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44df/5794175/b099f5b27dad/pbio.2005099.g001.jpg

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