Modeling and analysis of Hi-C data by HiSIF identifies characteristic promoter-distal loops

Author:

Zhou Yufan,Cheng Xiaolong,Yang Yini,Li Tian,Li Jingwei,Huang Tim H.-M.,Wang Junbai,Lin Shili,Jin Victor X.ORCID

Abstract

AbstractCurrent computational methods on Hi-C analysis focused on identifying Mb-size domains often failed to unveil the underlying functional and mechanistic relationship of chromatin structure and gene regulation. We developed a novel computational method HiSIF to identify genome-wide interacting loci. We illustrated HiSIF outperformed other tools for identifying chromatin loops. We applied it to Hi-C data in breast cancer cells and identified 21 genes with gained loops showing worse relapse-free survival in endocrine-treated patients, suggesting the genes with enhanced loops can be used for prognostic signatures for measuring the outcome of the endocrine treatment. HiSIF is available at https://github.com/yufanzhouonline/HiSIF.

Funder

National Institute of General Medical Sciences

Publisher

Springer Science and Business Media LLC

Subject

Genetics(clinical),Genetics,Molecular Biology,Molecular Medicine

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