Deletion of maize RDM4 suggests a role in endosperm maturation as well as vegetative and stress-responsive growth

Author:

Jia Shangang123ORCID,Yobi Abou4,Naldrett Michael J5ORCID,Alvarez Sophie5ORCID,Angelovici Ruthie4ORCID,Zhang Chi6,Holding David R3ORCID

Affiliation:

1. College of Grassland Science and Technology, China Agricultural University, Beijing, China

2. Key Laboratory of Pratacultural Science, Beijing Municipality, Beijing, China

3. Department of Agronomy and Horticulture, Center for Plant Science Innovation, Beadle Center for Biotechnology, University of Nebraska, Lincoln, NE, USA

4. Bond Life Sciences Center, Division of Biological Sciences, Interdisciplinary Plant Group, University of Missouri, Columbia, MO, USA

5. Proteomics and Metabolomics Core facility, University of Nebraska-Lincoln, Lincoln, NE, USA

6. School of Biological Sciences, Center for Plant Science Innovation, Beadle Center for Biotechnology, University of Nebraska, Lincoln, NE, USA

Abstract

Abstract Opaque kernels in maize may result from mutations in many genes, such as OPAQUE-2. In this study, a maize null mutant of RNA-DIRECTED DNA METHYLATION 4 (RDM4) showed an opaque kernel phenotype, as well as plant developmental delay, male sterility, and altered response to cold stress. We found that in opaque kernels, all zein proteins were reduced and amino acid content was changed, including increased lysine. Transcriptomic and proteomic analysis confirmed the zein reduction and proteomic rebalancing of non-zein proteins, which was quantitatively and qualitatively different from opaque-2. Global transcriptional changes were found in endosperm and leaf, including many transcription factors and tissue-specific expressed genes. Furthermore, of the more than 8000 significantly differentially expressed genes in wild type in response to cold, a significant proportion (25.9% in moderate cold stress and 40.8% in near freezing stress) were not differentially expressed in response to cold in rdm4, suggesting RDM4 may participate in regulation of abiotic stress tolerance. This initial characterization of maize RDM4 provides a basis for further investigating its function in endosperm and leaf, and as a regulator of normal and stress-responsive development.

Funder

Agriculture and Food Research Initiative

National Institute of Food and Agriculture

Chinese Universities Scientific Fund

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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