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Mechanism of efficient double-strand break repair by a long non-coding RNA

Authors :
Shujuan Fang
Ruiqiong Ye
Aleš Hnízda
Roopa Thapar
Isaac Forrester
Chunru Lin
Linda Lee
Susan P. Lees-Miller
Heather Villarreal
Su S. Maw
Terence R. Strick
Miaw Sheue Tsai
Anthony J. Davis
Michal Hammel
Cheng-Cao Sun
Jing L. Wang
John A. Tainer
Shikang Liang
Tom L. Blundell
Ke Liang
Liang, Shikang [0000-0002-6930-7882]
Blundell, Tom [0000-0002-2708-8992]
Apollo - University of Cambridge Repository
Source :
Nucleic acids research, vol 49, iss 2, Nucleic acids research, vol 48, iss 19, Nucleic Acids Research
Publication Year :
2021
Publisher :
eScholarship, University of California, 2021.

Abstract

Mechanistic studies in DNA repair have focused on roles of multi-protein DNA complexes, so how long non-coding RNAs (lncRNAs) regulate DNA repair is less well understood. Yet, lncRNA LINP1 is over-expressed in multiple cancers and confers resistance to ionizing radiation and chemotherapeutic drugs. Here, we unveil structural and mechanistic insights into LINP1’s ability to facilitate non-homologous end joining (NHEJ). We characterized LINP1 structure and flexibility and analyzed interactions with the NHEJ factor Ku70/Ku80 (Ku) and Ku complexes that direct NHEJ. LINP1 self-assembles into phase-separated condensates via RNA–RNA interactions that reorganize to form filamentous Ku-containing aggregates. Structured motifs in LINP1 bind Ku, promoting Ku multimerization and stabilization of the initial synaptic event for NHEJ. Significantly, LINP1 acts as an effective proxy for PAXX. Collective results reveal how lncRNA effectively replaces a DNA repair protein for efficient NHEJ with implications for development of resistance to cancer therapy.

Details

Database :
OpenAIRE
Journal :
Nucleic acids research, vol 49, iss 2, Nucleic acids research, vol 48, iss 19, Nucleic Acids Research
Accession number :
edsair.doi.dedup.....b781589855c1cecba86e0d9403f5e987