Nucleoporins cooperate with Polycomb silencers to promote transcriptional repression and repair at DNA double strand breaks

Author:

Song* Hongseon1,Bae* Yubin1,Kim* Sangin2,Deascanis* Dante3,Lee Yujin1,Rona Gergely4ORCID,Lane Ethan5,Lee Seoyeong1,Kim Sujung1,Pagano Michele6ORCID,Myung Kyungjae7ORCID,Kee Younghoon8ORCID

Affiliation:

1. Department of New Biology, Daegu Gyeongbuk Institute of Science and Technology (DGIST), 333 Techno-Joongang-daero, Dalseong-gun, Daegu, Republic of Korea 42988

2. Center for Genomic Integrity, Institute for Basic Science, Ulsan 44919, Korea

3. Department of Molecular Biosciences, College of Arts and Sciences, University of South Florida, Tampa, Florida, USA 33647

4. Department of Biochemistry and Molecular Pharmacology; Howard Hughes Medical Institute, New York University School of Medicine, NY, USA 10016; Institute of Molecular Life Sciences, HUN-REN Research Centre for Natural Sciences, Budapest, Hungary 1117

5. Department of Biochemistry and Molecular Pharmacology

6. Department of Biochemistry and Molecular Pharmacology; Howard Hughes Medical Institute, New York University School of Medicine, NY, USA 10016

7. Center for Genomic Integrity, Institute for Basic Science, Ulsan 44919, Korea; Department of Biomedical Engineering, College of Information-Bio Convergence Engineering, Ulsan National Institute of Science and Technology, Ulsan 44919, Korea

8. Department of New Biology, Daegu Gyeongbuk Institute of Science and Technology (DGIST), 333 Techno-Joongang-daero, Dalseong-gun, Daegu, Republic of Korea 42988; Department of Molecular Biosciences, College of Arts and Sciences, University of South Florida, Tampa, Florida, USA 33647

Abstract

Abstract

DNA Double-strand breaks (DSBs) are harmful lesions and major sources of genomic instability. Studies have suggested that DSBs induce local transcriptional silencing that consequently promotes genomic stability. Several factors have been proposed to actively participate in this process, including ATM and Polycomb repressive complex 1 (PRC1). Here we found that disrupting PRC1 clustering disrupts DSB-induced gene silencing. Interactome analysis of PHC2, a PRC1 subunit that promotes the formation of the Polycomb body, found several nucleoporins that constitute the Nuclear Pore Complex (NPC). Similar to PHC2, depleting the nucleoporins also disrupted the DSB-induced gene silencing. We found that some of these nucleoporins, such as NUP107 and NUP43, which are members of the Y-complex of NPC, localize to DSB sites. These nucleoporin-enriched DSBs were distant from the nuclear periphery. The presence of nucleoporins and PHC2 at DSB regions were inter-dependent, suggesting that they act cooperatively in the DSB-induced gene silencing. We further found two structural components within NUP107 to be necessary for the transcriptional repression at DSBs: ATM/ATR-mediated phosphorylation at Serine37 residue within the N-terminal disordered tail, and the NUP133-binding surface at the C-terminus. These results provide a new functional interplay among nucleoporins, ATM and the Polycomb proteins in the DSB metabolism, and underscore their emerging roles in genome stability maintenance. *Hongseon Song, Yubin Bae, Sangin Kim, and Dante Deascanis contributed equally to this work.

Publisher

Springer Science and Business Media LLC

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