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Systematic inference and comparison of multi-scale chromatin sub-compartments connects spatial organization to cell phenotypes.


ABSTRACT: Chromatin compartmentalization reflects biological activity. However, inference of chromatin sub-compartments and compartment domains from chromosome conformation capture (Hi-C) experiments is limited by data resolution. As a result, these have been characterized only in a few cell types and systematic comparisons across multiple tissues and conditions are missing. Here, we present Calder, an algorithmic approach that enables the identification of multi-scale sub-compartments at variable data resolution. Calder allows to infer and compare chromatin sub-compartments and compartment domains in >100 cell lines. Our results reveal sub-compartments enriched for poised chromatin states and undergoing spatial repositioning during lineage differentiation and oncogenic transformation.

SUBMITTER: Liu Y 

PROVIDER: S-EPMC8110550 | biostudies-literature | 2021 May

REPOSITORIES: biostudies-literature

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Systematic inference and comparison of multi-scale chromatin sub-compartments connects spatial organization to cell phenotypes.

Liu Yuanlong Y   Nanni Luca L   Sungalee Stephanie S   Zufferey Marie M   Tavernari Daniele D   Mina Marco M   Ceri Stefano S   Oricchio Elisa E   Ciriello Giovanni G  

Nature communications 20210510 1


Chromatin compartmentalization reflects biological activity. However, inference of chromatin sub-compartments and compartment domains from chromosome conformation capture (Hi-C) experiments is limited by data resolution. As a result, these have been characterized only in a few cell types and systematic comparisons across multiple tissues and conditions are missing. Here, we present Calder, an algorithmic approach that enables the identification of multi-scale sub-compartments at variable data re  ...[more]

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