DNA fragility at topologically associated domain boundaries is promoted by alternative DNA secondary structure and topoisomerase II activity

Author:

Raimer Young Heather M1ORCID,Hou Pei-Chi1,Bartosik Anna R1,Atkin Naomi D1,Wang Lixin2,Wang Zhenjia3,Ratan Aakrosh1345,Zang Chongzhi1345ORCID,Wang Yuh-Hwa15ORCID

Affiliation:

1. Department of Biochemistry and Molecular Genetics, University of Virginia School of Medicine , Charlottesville , VA  22908-0733 , USA

2. Department of Biomedical Engineering, University of Virginia , Charlottesville , VA  22908 , USA

3. Center for Public Health Genomics, University of Virginia School of Medicine , Charlottesville , VA  22908-0717 , USA

4. Department of Public Health Sciences, University of Virginia School of Medicine , Charlottesville , VA  22908 , USA

5. University of Virginia Comprehensive Cancer Center, Charlottesville , VA 22908, USA

Abstract

Abstract CCCTC-binding factor (CTCF) binding sites are hotspots of genome instability. Although many factors have been associated with CTCF binding site fragility, no study has integrated all fragility-related factors to understand the mechanism(s) of how they work together. Using an unbiased, genome-wide approach, we found that DNA double-strand breaks (DSBs) are enriched at strong, but not weak, CTCF binding sites in five human cell types. Energetically favorable alternative DNA secondary structures underlie strong CTCF binding sites. These structures coincided with the location of topoisomerase II (TOP2) cleavage complex, suggesting that DNA secondary structure acts as a recognition sequence for TOP2 binding and cleavage at CTCF binding sites. Furthermore, CTCF knockdown significantly increased DSBs at strong CTCF binding sites and at CTCF sites that are located at topologically associated domain (TAD) boundaries. TAD boundary-associated CTCF sites that lost CTCF upon knockdown displayed increased DSBs when compared to the gained sites, and those lost sites are overrepresented with G-quadruplexes, suggesting that the structures act as boundary insulators in the absence of CTCF, and contribute to increased DSBs. These results model how alternative DNA secondary structures facilitate recruitment of TOP2 to CTCF binding sites, providing mechanistic insight into DNA fragility at CTCF binding sites.

Funder

National Cancer Institute

National Institute of General Medical Sciences

University of Virginia Farrow Fellowship

Virginia Commonwealth Health Research Board

Publisher

Oxford University Press (OUP)

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