MSH2-MSH3 promotes DNA end resection during homologous recombination and blocks polymerase theta-mediated end-joining through interaction with SMARCAD1 and EXO1

Author:

Oh Jung-Min12ORCID,Kang Yujin3,Park Jumi3,Sung Yubin1,Kim Dayoung4,Seo Yuri1,Lee Eun A1,Ra Jae Sun1,Amarsanaa Enkhzul13,Park Young-Un1,Lee Seon Young1,Hwang Jung Me1,Kim Hongtae13,Schärer Orlando13,Cho Seung Woo14,Lee Changwook3ORCID,Takata Kei-ichi13ORCID,Lee Ja Yil13ORCID,Myung Kyungjae14ORCID

Affiliation:

1. Center for Genomic Integrity, Institute for Basic Science (IBS) , Ulsan 44919 , Republic of Korea

2. Department of Oral Biochemistry, Dental and Life Science Institute, School of Dentistry, Pusan National University , Yangsan 50612 , Republic of Korea

3. Department of Biological Sciences, Ulsan National Institute of Science and Technology , Ulsan 44919 , Republic of Korea

4. Department of Biomedical Engineering, Ulsan National Institute of Science and Technology , Ulsan 44919 , Republic of Korea

Abstract

Abstract DNA double-strand break (DSB) repair via homologous recombination is initiated by end resection. The extent of DNA end resection determines the choice of the DSB repair pathway. Nucleases for end resection have been extensively studied. However, it is still unclear how the potential DNA structures generated by the initial short resection by MRE11-RAD50-NBS1 are recognized and recruit proteins, such as EXO1, to DSB sites to facilitate long-range resection. We found that the MSH2-MSH3 mismatch repair complex is recruited to DSB sites through interaction with the chromatin remodeling protein SMARCAD1. MSH2-MSH3 facilitates the recruitment of EXO1 for long-range resection and enhances its enzymatic activity. MSH2-MSH3 also inhibits access of POLθ, which promotes polymerase theta-mediated end-joining (TMEJ). Collectively, we present a direct role of MSH2-MSH3 in the initial stages of DSB repair by promoting end resection and influencing the DSB repair pathway by favoring homologous recombination over TMEJ.

Funder

Samsung Science and Technology Foundation

National Research Foundation of Korea

Institute for Basic Science

Publisher

Oxford University Press (OUP)

Subject

Genetics

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