The Energetics and Physiological Impact of Cohesin Extrusion

内聚素挤出的能量学和生理影响

阅读:2
作者:Laura Vian,Aleksandra Pękowska,Suhas S P Rao,Kyong-Rim Kieffer-Kwon,Seolkyoung Jung,Laura Baranello,Su-Chen Huang,Laila El Khattabi,Marei Dose,Nathanael Pruett,Adrian L Sanborn,Andres Canela,Yaakov Maman,Anna Oksanen,Wolfgang Resch,Xingwang Li,Byoungkoo Lee,Alexander L Kovalchuk,Zhonghui Tang,Steevenson Nelson,Michele Di Pierro,Ryan R Cheng,Ido Machol,Brian Glenn St Hilaire,Neva C Durand,Muhammad S Shamim,Elena K Stamenova,José N Onuchic,Yijun Ruan,Andre Nussenzweig,David Levens,Erez Lieberman Aiden,Rafael Casellas

Abstract

Cohesin extrusion is thought to play a central role in establishing the architecture of mammalian genomes. However, extrusion has not been visualized in vivo, and thus, its functional impact and energetics are unknown. Using ultra-deep Hi-C, we show that loop domains form by a process that requires cohesin ATPases. Once formed, however, loops and compartments are maintained for hours without energy input. Strikingly, without ATP, we observe the emergence of hundreds of CTCF-independent loops that link regulatory DNA. We also identify architectural "stripes," where a loop anchor interacts with entire domains at high frequency. Stripes often tether super-enhancers to cognate promoters, and in B cells, they facilitate Igh transcription and recombination. Stripe anchors represent major hotspots for topoisomerase-mediated lesions, which promote chromosomal translocations and cancer. In plasmacytomas, stripes can deregulate Igh-translocated oncogenes. We propose that higher organisms have coopted cohesin extrusion to enhance transcription and recombination, with implications for tumor development.

特别声明

1、本页面内容包含部分的内容是基于公开信息的合理引用;引用内容仅为补充信息,不代表本站立场。

2、若认为本页面引用内容涉及侵权,请及时与本站联系,我们将第一时间处理。

3、其他媒体/个人如需使用本页面原创内容,需注明“来源:[生知库]”并获得授权;使用引用内容的,需自行联系原作者获得许可。

4、投稿及合作请联系:info@biocloudy.com。