Principles of 3D compartmentalization of the human genome
Summary: Chromatin is organized in the nucleus via CTCF loops and compartmental domains. Here, we compare different cell types to identify distinct paradigms of compartmental domain formation in human tissues. We identify and quantify compartmental forces correlated with histone modifications charac...
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doaj-625f441eb1c844c8814e1b0f798250b72021-07-01T04:33:13ZengElsevierCell Reports2211-12472021-06-013513109330Principles of 3D compartmentalization of the human genomeMichael H. Nichols0Victor G. Corces1Department of Human Genetics, Emory University School of Medicine, 615 Michael St., Atlanta, GA 30322, USADepartment of Human Genetics, Emory University School of Medicine, 615 Michael St., Atlanta, GA 30322, USA; Corresponding authorSummary: Chromatin is organized in the nucleus via CTCF loops and compartmental domains. Here, we compare different cell types to identify distinct paradigms of compartmental domain formation in human tissues. We identify and quantify compartmental forces correlated with histone modifications characteristic of transcriptional activity and previously underappreciated roles for distinct compartmental domains correlated with the presence of H3K27me3 and H3K9me3, respectively. We present a computer simulation model capable of predicting compartmental organization based on the biochemical characteristics of independent chromatin features. Using this model, we show that the underlying forces responsible for compartmental domain formation in human cells are conserved and that the diverse compartmentalization patterns seen across cell types are due to differences in chromatin features. We extend these findings to Drosophila to suggest that the same principles are at work beyond humans. These results offer mechanistic insights into the fundamental forces driving the 3D organization of the genome.http://www.sciencedirect.com/science/article/pii/S22111247210070633D organizationchromatintranscriptionenhancernucleusCTCF |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Michael H. Nichols Victor G. Corces |
spellingShingle |
Michael H. Nichols Victor G. Corces Principles of 3D compartmentalization of the human genome Cell Reports 3D organization chromatin transcription enhancer nucleus CTCF |
author_facet |
Michael H. Nichols Victor G. Corces |
author_sort |
Michael H. Nichols |
title |
Principles of 3D compartmentalization of the human genome |
title_short |
Principles of 3D compartmentalization of the human genome |
title_full |
Principles of 3D compartmentalization of the human genome |
title_fullStr |
Principles of 3D compartmentalization of the human genome |
title_full_unstemmed |
Principles of 3D compartmentalization of the human genome |
title_sort |
principles of 3d compartmentalization of the human genome |
publisher |
Elsevier |
series |
Cell Reports |
issn |
2211-1247 |
publishDate |
2021-06-01 |
description |
Summary: Chromatin is organized in the nucleus via CTCF loops and compartmental domains. Here, we compare different cell types to identify distinct paradigms of compartmental domain formation in human tissues. We identify and quantify compartmental forces correlated with histone modifications characteristic of transcriptional activity and previously underappreciated roles for distinct compartmental domains correlated with the presence of H3K27me3 and H3K9me3, respectively. We present a computer simulation model capable of predicting compartmental organization based on the biochemical characteristics of independent chromatin features. Using this model, we show that the underlying forces responsible for compartmental domain formation in human cells are conserved and that the diverse compartmentalization patterns seen across cell types are due to differences in chromatin features. We extend these findings to Drosophila to suggest that the same principles are at work beyond humans. These results offer mechanistic insights into the fundamental forces driving the 3D organization of the genome. |
topic |
3D organization chromatin transcription enhancer nucleus CTCF |
url |
http://www.sciencedirect.com/science/article/pii/S2211124721007063 |
work_keys_str_mv |
AT michaelhnichols principlesof3dcompartmentalizationofthehumangenome AT victorgcorces principlesof3dcompartmentalizationofthehumangenome |
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1721347400066400256 |