Histone modification‐dependent production of peptide hormones facilitates acquisition of pluripotency during leaf‐to‐callus transition in Arabidopsis

Author:

Hong Cheljong1ORCID,Lee Hong Gil12ORCID,Shim Sangrea3ORCID,Park Ok‐Sun2ORCID,Kim Jong Hee4ORCID,Lee Kyounghee2ORCID,Oh Eunkyoo5ORCID,Kim Jungmook67ORCID,Jung Yu Jin48ORCID,Seo Pil Joon129ORCID

Affiliation:

1. Department of Chemistry Seoul National University Seoul 08826 Korea

2. Research Institute of Basic Science Seoul National University Seoul 08826 Korea

3. Department of Forest Resources, College of Forest and Environmental Sciences Kangwon National University Chuncheon 24341 Korea

4. Division of Horticultural Biotechnology, School of Biotechnology Hankyong National University Anseong 17579 Korea

5. Department of Life Sciences Korea University Seoul 08826 Korea

6. Department of Bioenergy Science and Technology Chonnam National University Gwangju 61186 Korea

7. Department of Integrative Food, Bioscience and Biotechnology Chonnam National University Gwangju 61186 Korea

8. Institute of Genetic Engineering Hankyong National University Anseong 17579 Korea

9. Plant Genomics and Breeding Institute, Seoul National University Seoul 08826 Korea

Abstract

Summary Chromatin configuration is critical for establishing tissue identity and changes substantially during tissue identity transitions. The crucial scientific and agricultural technology of in vitro tissue culture exploits callus formation from diverse tissue explants and tissue regeneration via de novo organogenesis. We investigated the dynamic changes in H3ac and H3K4me3 histone modifications during leaf‐to‐callus transition in Arabidopsis thaliana. We analyzed changes in the global distribution of H3ac and H3K4me3 during the leaf‐to‐callus transition, focusing on transcriptionally active regions in calli relative to leaf explants, defined by increased accumulation of both H3ac and H3K4me3. Peptide signaling was particularly activated during callus formation; the peptide hormones RGF3, RGF8, PIP1 and PIPL3 were upregulated, promoting callus proliferation and conferring competence for de novo shoot organogenesis. The corresponding peptide receptors were also implicated in peptide‐regulated callus proliferation and regeneration capacity. The effect of peptide hormones in plant regeneration is likely at least partly conserved in crop plants. Our results indicate that chromatin‐dependent regulation of peptide hormone production not only stimulates callus proliferation but also establishes pluripotency, improving the overall efficiency of two‐step regeneration in plant systems.

Funder

National Research Foundation of Korea

Publisher

Wiley

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