CATAD: exploring topologically associating domains from an insight of core-attachment structure

Author:

Peng Xiaoqing1ORCID,Li Yiming1,Zou Mengxi2,Kong Xiangyan3,Sheng Yu3

Affiliation:

1. Center for Medical Genetics & Hunan Key Laboratory of Medical Genetics, School of Life Sciences, Central South University , 410083, Hunan , China

2. Division of Biosciences, University College London , 410083, Hunan , China

3. Hunan Provincial Key Lab on Bioinformatics, School of Computer Science and Engineering, Central South University , 410083, Hunan , China

Abstract

Abstract Identifying topologically associating domains (TADs), which are considered as the basic units of chromosome structure and function, can facilitate the exploration of the 3D-structure of chromosomes. Methods have been proposed to identify TADs by detecting the boundaries of TADs or identifying the closely interacted regions as TADs, while the possible inner structure of TADs is seldom investigated. In this study, we assume that a TAD is composed of a core and its surrounding attachments, and propose a method, named CATAD, to identify TADs based on the core-attachment structure model. In CATAD, the cores of TADs are identified based on the local density and cosine similarity, and the surrounding attachments are determined based on boundary insulation. CATAD was applied to the Hi-C data of two human cell lines and two mouse cell lines, and the results show that the boundaries of TADs identified by CATAD are significantly enriched by structural proteins, histone modifications, transcription start sites and enzymes. Furthermore, CATAD outperforms other methods in many cases, in terms of the average peak, boundary tagged ratio and fold change. In addition, CATAD is robust and rarely affected by the different resolutions of Hi-C matrices. Conclusively, identifying TADs based on the core-attachment structure is useful, which may inspire researchers to explore TADs from the angles of possible spatial structures and formation process.

Funder

Science and Technology Major Project of Hunan Provincial Science and Technology Department

Natural Science Foundation of Hunan Province

Central South University Innovation-Driven Research Programme

Fundamental Research Funds for the Central Universities of Central South University

National Science Foundation of China

High Performance Computing Center of Central South University

Publisher

Oxford University Press (OUP)

Subject

Molecular Biology,Information Systems

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