Stratifying TAD boundaries pinpoints focal genomic regions of regulation, damage, and repair

Author:

Chen Bijia1,Ren Chao1,Ouyang Zhangyi1,Xu Jingxuan23,Xu Kang45,Li Yaru1,Guo Hejiang1,Bai Xuemei1,Tian Mengge6,Xu Xiang1,Wang Yuyang78,Li Hao1ORCID,Bo Xiaochen1ORCID,Chen Hebing1ORCID

Affiliation:

1. Academy of Military Medical Sciences , Beijing 100850 , China

2. Key Laboratory of Carcinogenesis and Translational Research (Ministry of Education/Beijing) , Department of Gastrointestinal Surgery, , Beijing 100142 , China

3. Peking University Cancer Hospital & Institute , Department of Gastrointestinal Surgery, , Beijing 100142 , China

4. School of Software , , Jinan 250101 , China

5. Shandong University , , Jinan 250101 , China

6. The First Affiliated Hospital of Harbin Medical University , Harbin 150001 , China

7. College of Computer and Data Science , , Fuzhou 350108 , China

8. Fuzhou University , , Fuzhou 350108 , China

Abstract

Abstract Advances in chromatin mapping have exposed the complex chromatin hierarchical organization in mammals, including topologically associating domains (TADs) and their substructures, yet the functional implications of this hierarchy in gene regulation and disease progression are not fully elucidated. Our study delves into the phenomenon of shared TAD boundaries, which are pivotal in maintaining the hierarchical chromatin structure and regulating gene activity. By integrating high-resolution Hi-C data, chromatin accessibility, and DNA double-strand breaks (DSBs) data from various cell lines, we systematically explore the complex regulatory landscape at high-level TAD boundaries. Our findings indicate that these boundaries are not only key architectural elements but also vibrant hubs, enriched with functionally crucial genes and complex transcription factor binding site–clustered regions. Moreover, they exhibit a pronounced enrichment of DSBs, suggesting a nuanced interplay between transcriptional regulation and genomic stability. Our research provides novel insights into the intricate relationship between the 3D genome structure, gene regulation, and DNA repair mechanisms, highlighting the role of shared TAD boundaries in maintaining genomic integrity and resilience against perturbations. The implications of our findings extend to understanding the complexities of genomic diseases and open new avenues for therapeutic interventions targeting the structural and functional integrity of TAD boundaries.

Funder

National Natural Science Foundation of China

Beijing Nova Program of Science and Technology

Publisher

Oxford University Press (OUP)

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