PEP-ASSOCIATED PROTEIN 3 regulates rice tiller formation and grain yield by controlling chloroplast biogenesis

Author:

Seo Deok Hyun1ORCID,Jang Jinwoo1ORCID,Park Dongryeol1ORCID,Yoon Youngdae2ORCID,Choi Yang Do3ORCID,Jang Geupil1ORCID

Affiliation:

1. School of Biological Sciences and Technology, Chonnam National University , Gwangju 61186 , Republic of Korea

2. Department of Environmental Health Science, Konkuk University , Seoul 05029 , Republic of Korea

3. Department of Agricultural Biotechnology and Research Institute of Agriculture and Life Sciences, Seoul National University , Seoul 08826 , Republic of Korea

Abstract

Abstract Plastid-encoded RNA polymerase (PEP) plays a pivotal role in chloroplast development by governing the transcription of chloroplast genes, and PEP-associated proteins (PAPs) modulate PEP transcriptional activity. Therefore, PAPs provide an intriguing target for those efforts to improve yield, by enhancing chloroplast development. In this study, we identified the rice (Oryza sativa) OsPAP3 gene and characterized its function in chloroplast development. OsPAP3 expression was light-dependent and leaf-specific, similar to the PEP-dependent chloroplast gene RUBISCO LARGE SUBUNIT (OsRbcL), and OsPAP3 protein localized to chloroplast nucleoids where PEP functions. Analysis of loss-of-function and gain-of-function mutants showed that the expression of OsPAP3 is tightly linked to chloroplast gene expression and chloroplast biogenesis in rice. Homozygous knockout mutants of OsPAP3 had fewer chloroplasts than wild type, whereas plants overexpressing OsPAP3 had more chloroplasts. Also, OsPAP3 knockout suppressed the PEP-dependent expression of chloroplast genes, but OsPAP3 overexpression increased their expression. These findings indicate that OsPAP3 regulates chloroplast biogenesis in rice by controlling the PEP-dependent expression of chloroplast genes. More importantly, data from 3 seasons of field cultivation revealed that the overexpression of OsPAP3 improves rice grain yield by approximately 25%, largely due to increased tiller formation. Collectively, these observations suggest that OsPAP3 regulates rice growth and productivity by promoting chloroplast development.

Funder

New Breeding Technologies Development Program

Korea Institute of Planning and Evaluation for Technology in Food, Agriculture and Forestry

Ministry of Agriculture, Food and Rural Affairs

National Research Foundation of Korea

Korean Government

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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