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人类有丝分裂中的力产生与阻力

Force generation and resistance in human mitosis.

作者信息

Caldwell Colleen C, Clement Tinka V M, Wuite Gijs J L

机构信息

Department of Physics and Astronomy, and LaserLaB Amsterdam, Vrije Universiteit Amsterdam, De Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.

出版信息

Biophys Rev. 2024 Sep 28;16(5):551-562. doi: 10.1007/s12551-024-01235-0. eCollection 2024 Oct.

Abstract

Since the first observations of chromosome segregation over 150 years ago, efforts to observe the forces that drive mitosis have evolved alongside advances in microscopy. The mitotic spindle acts as the major generator of force through the highly regulated polymerization and depolymerization of microtubules as well as associated motor proteins. Centromeric chromatin, along with associated proteins including cohesin and condensin, is organized to resist these forces and ensure accurate chromosome segregation. Microtubules and centromeric chromatin join at the kinetochore, a complex protein superstructure. Ongoing research into the forces generated at the kinetochore-microtubule interface has resulted in a range of estimates for forces necessary to separate chromosomes, from tens to hundreds of piconewtons. Still, the exact magnitude and regulation of these forces remain areas of continuing investigation. Determining the precise forces involved in chromosome segregation is hindered by limitations of current measurement techniques, but advances such as optical tweezers combined with fluorescence microscopy are promising for future research.

摘要

自150多年前首次观察到染色体分离以来,随着显微镜技术的进步,观察驱动有丝分裂的力量的努力也在不断发展。有丝分裂纺锤体通过微管以及相关运动蛋白的高度调控的聚合和解聚作用,成为主要的力量产生者。着丝粒染色质与包括黏连蛋白和凝聚蛋白在内的相关蛋白一起,被组织起来以抵抗这些力量,并确保染色体的准确分离。微管和着丝粒染色质在动粒处结合,动粒是一种复杂的蛋白质超结构。对动粒-微管界面产生的力量的持续研究得出了一系列关于分离染色体所需力量的估计值,从几十到几百皮牛顿不等。尽管如此,这些力量的确切大小和调控仍然是持续研究的领域。当前测量技术的局限性阻碍了确定染色体分离中涉及的精确力量,但诸如光镊与荧光显微镜相结合等进展对未来研究很有前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9319/11604895/fbc6b823d1f5/12551_2024_1235_Fig1_HTML.jpg

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