Quantitative imaging of loop extruders rebuilding interphase genome architecture after mitosis.

IF 7.4 1区 生物学 Q1 CELL BIOLOGY
Journal of Cell Biology Pub Date : 2025-03-03 Epub Date: 2025-01-09 DOI:10.1083/jcb.202405169
Andreas Brunner, Natalia Rosalía Morero, Wanlu Zhang, M Julius Hossain, Marko Lampe, Hannah Pflaumer, Aliaksandr Halavatyi, Jan-Michael Peters, Kai S Beckwith, Jan Ellenberg
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引用次数: 0

Abstract

How cells establish the interphase genome organization after mitosis is incompletely understood. Using quantitative and super-resolution microscopy, we show that the transition from a Condensin to a Cohesin-based genome organization occurs dynamically over 2 h. While a significant fraction of Condensins remains chromatin-bound until early G1, Cohesin-STAG1 and its boundary factor CTCF are rapidly imported into daughter nuclei in telophase, immediately bind chromosomes as individual complexes, and are sufficient to build the first interphase TAD structures. By contrast, the more abundant Cohesin-STAG2 accumulates on chromosomes only gradually later in G1, is responsible for compaction inside TAD structures, and forms paired complexes upon completed nuclear import. Our quantitative time-resolved mapping of mitotic and interphase loop extruders in single cells reveals that the nested loop architecture formed by the sequential action of two Condensins in mitosis is seamlessly replaced by a less compact but conceptually similar hierarchically nested loop architecture driven by the sequential action of two Cohesins.

有丝分裂后环状挤出机重建间期基因组结构的定量成像。
细胞在有丝分裂后如何建立间期基因组组织尚不完全清楚。使用定量和超分辨率显微镜,我们发现从凝缩蛋白到基于内聚蛋白的基因组组织的转变在2小时内动态发生。虽然很大一部分凝缩蛋白直到G1早期仍与染色质结合,但内聚蛋白stag1及其边界因子CTCF在末期迅速导入子核,立即结合染色体作为单个复合物,并足以构建第一个间期TAD结构。相比之下,更丰富的内聚素- stag2在G1后期才逐渐积累在染色体上,负责TAD结构内的压实,并在完成核输入后形成成对复合物。我们对单个细胞中有丝分裂和间期环挤出器的定量时间分辨率映射显示,有丝分裂中由两个凝聚蛋白的顺序作用形成的嵌套环结构被两个凝聚蛋白的顺序作用驱动的不太紧凑但概念上相似的分层嵌套环结构无缝地取代。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Cell Biology
Journal of Cell Biology 生物-细胞生物学
CiteScore
12.60
自引率
2.60%
发文量
213
审稿时长
1 months
期刊介绍: The Journal of Cell Biology (JCB) is a comprehensive journal dedicated to publishing original discoveries across all realms of cell biology. We invite papers presenting novel cellular or molecular advancements in various domains of basic cell biology, along with applied cell biology research in diverse systems such as immunology, neurobiology, metabolism, virology, developmental biology, and plant biology. We enthusiastically welcome submissions showcasing significant findings of interest to cell biologists, irrespective of the experimental approach.
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