H3K4me1 recruits DNA repair proteins in plants

Author:

Quiroz Daniela12ORCID,Oya Satoyo13ORCID,Lopez-Mateos Diego45ORCID,Zhao Kehan16ORCID,Pierce Alice16ORCID,Ortega Lissandro1ORCID,Ali Alissza1ORCID,Carbonell-Bejerano Pablo7ORCID,Yarov-Yarovoy Vladimir45ORCID,Suzuki Sae8ORCID,Hayashi Gosuke8ORCID,Osakabe Akihisa39ORCID,Monroe Grey126ORCID

Affiliation:

1. Department of Plant Sciences, University of California Davis , Davis, CA 95616 , USA

2. Integrative Genetics and Genomics, University of California Davis , Davis, CA 95616 , USA

3. Laboratory of Genetics, Department of Biological Sciences, The University of Tokyo , Tokyo 113-0033 , Japan

4. Department of Physiology and Membrane Biology, University of California Davis , Davis, CA 95616 , USA

5. Biophysics Graduate Group, University of California Davis , Davis, CA 95616 , USA

6. Plant Biology Graduate Group, University of California Davis , Davis, CA 95616 , USA

7. Instituto de Ciencias de la Vid y del Vino (ICVV, CSIC-CAR-UR) , Logroño 26007, La Rioja , Spain

8. Department of Biomolecular Engineering, Graduate School of Engineering, Nagoya University , Nagoya 464-0814 , Japan

9. PRESTO, Japan Science and Technology Agency , Kawaguchi 332-0012 , Japan

Abstract

Abstract DNA repair proteins can be recruited by their histone reader domains to specific epigenomic features, with consequences on intragenomic mutation rate variation. Here, we investigated H3K4me1-associated hypomutation in plants. We first examined 2 proteins which, in plants, contain Tudor histone reader domains: PRECOCIOUS DISSOCIATION OF SISTERS 5 (PDS5C), involved in homology-directed repair, and MUTS HOMOLOG 6 (MSH6), a mismatch repair protein. The MSH6 Tudor domain of Arabidopsis (Arabidopsis thaliana) binds to H3K4me1 as previously demonstrated for PDS5C, which localizes to H3K4me1-rich gene bodies and essential genes. Mutations revealed by ultradeep sequencing of wild-type and msh6 knockout lines in Arabidopsis show that functional MSH6 is critical for the reduced rate of single-base substitution (SBS) mutations in gene bodies and H3K4me1-rich regions. We explored the breadth of these mechanisms among plants by examining a large rice (Oryza sativa) mutation data set. H3K4me1-associated hypomutation is conserved in rice as are the H3K4me1-binding residues of MSH6 and PDS5C Tudor domains. Recruitment of DNA repair proteins by H3K4me1 in plants reveals convergent, but distinct, epigenome-recruited DNA repair mechanisms from those well described in humans. The emergent model of H3K4me1-recruited repair in plants is consistent with evolutionary theory regarding mutation modifier systems and offers mechanistic insight into intragenomic mutation rate variation in plants.

Funder

FFAR

USDA-NIFA

UC Davis STAIR

NSF

Life Science and Drug Discovery

AMED

JST PRESTO

Publisher

Oxford University Press (OUP)

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