Translocating RNA polymerase generates R-loops at DNA double-strand breaks without any additional factors

Author:

Lim Gunhyoung1ORCID,Hwang Seungha2,Yu Kilwon2,Kang Jin Young2,Kang Changwon3ORCID,Hohng Sungchul1ORCID

Affiliation:

1. Department of Physics and Astronomy, and Institute of Applied Physics, Seoul National University , Seoul  08826 , Republic of Korea

2. Department of Chemistry, Korea Advanced Institute of Science and Technology , Daejeon  34141 , Republic of Korea

3. Department of Biological Sciences, and KAIST Stem Cell Center, Korea Advanced Institute of Science and Technology , Daejeon  34141 , Republic of Korea

Abstract

Abstract The R-loops forming around DNA double-strand breaks (DSBs) within actively transcribed genes play a critical role in the DSB repair process. However, the mechanisms underlying R-loop formation at DSBs remain poorly understood, with diverse proposed models involving protein factors associated with RNA polymerase (RNAP) loading, pausing/backtracking or preexisting transcript RNA invasion. In this single-molecule study using Escherichia coli RNAP, we discovered that transcribing RNAP alone acts as a highly effective DSB sensor, responsible for generation of R-loops upon encountering downstream DSBs, without requiring any additional factors. The R-loop formation efficiency is greatly influenced by DNA end structures, ranging here from 2.8% to 73%, and notably higher on sticky ends with 3′ or 5′ single-stranded overhangs compared to blunt ends without any overhangs. The R-loops extend unidirectionally upstream from the DSB sites and can reach the transcription start site, interfering with ongoing-round transcription. Furthermore, the extended R-loops can persist and maintain their structures, effectively preventing the efficient initiation of subsequent transcription rounds. Our results are consistent with the bubble extension model rather than the 5′-end invasion model or the middle insertion model. These discoveries provide valuable insights into the initiation of DSB repair on transcription templates across bacteria, archaea and eukaryotes.

Funder

National Research Foundation of Korea

KAIST Stem Cell Center

Publisher

Oxford University Press (OUP)

Subject

Genetics

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