相间
染色质
基因座(遗传学)
基因组
活细胞
基因组组织
染色体
粘弹性
生物
生物物理学
物理
纳米技术
细胞生物学
遗传学
材料科学
基因
热力学
作者
Veer I. P. Keizer,Simon Grosse‐Holz,Maxime Woringer,Laura Zambon,Koceila Aïzel,Maud Bongaerts,Fanny Delille,Lorena Kolar-Znika,Vittore F. Scolari,Sebastian Hoffmann,Edward J. Banigan,Leonid A. Mirny,Maxime Dahan,Daniele Fachinetti,Antoine Coulon
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2022-07-28
卷期号:377 (6605): 489-495
被引量:78
标识
DOI:10.1126/science.abi9810
摘要
Our understanding of the physical principles organizing the genome in the nucleus is limited by the lack of tools to directly exert and measure forces on interphase chromosomes in vivo and probe their material nature. Here, we introduce an approach to actively manipulate a genomic locus using controlled magnetic forces inside the nucleus of a living human cell. We observed viscoelastic displacements over micrometers within minutes in response to near-piconewton forces, which are consistent with a Rouse polymer model. Our results highlight the fluidity of chromatin, with a moderate contribution of the surrounding material, revealing minor roles for cross-links and topological effects and challenging the view that interphase chromatin is a gel-like material. Our technology opens avenues for future research in areas from chromosome mechanics to genome functions.
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