4.8 Article

The canonical RdDM pathway mediates the control of seed germination timing under salinity

期刊

PLANT JOURNAL
卷 105, 期 3, 页码 691-707

出版社

WILEY
DOI: 10.1111/tpj.15064

关键词

RdDM pathway; AGO4 protein; germination; Arabidopsis; RNA‐ directed DNA methylation; salinity

资金

  1. Programa de Apoyo a Proyectos de Investigacion e Innovacion Tecnologica de la Universidad Nacional Autonoma de Mexico (PAPIIT-UNAM) [IN211816]
  2. Consejo Nacional de Ciencia y Tecnologia (CONACyT)-Mexico
  3. Instituto de Biotecnologia
  4. CONACyT fellowship [239759]

向作者/读者索取更多资源

Plants adjust various processes through highly regulated mechanisms to respond to environmental cues and maintain survival. Developmental programs of plants are closely coordinated with their response, adjustment, and adaptation to the environment. In the presence of salinity stress, mutations in core elements of RNA-directed DNA methylation affect germination and post-germination growth in Arabidopsis seeds, indicating the involvement of this pathway in controlling germination timing and growth under stress.
Plants respond to adverse environmental cues by adjusting a wide variety of processes through highly regulated mechanisms to maintain plant homeostasis for survival. As a result of the sessile nature of plants, their response, adjustment and adaptation to the changing environment is intimately coordinated with their developmental programs through the crosstalk of regulatory networks. Germination is a critical process in the plant life cycle, and thus plants have evolved various strategies to control the timing of germination according to their local environment. The mechanisms involved in these adjustment responses are largely unknown, however. Here, we report that mutations in core elements of canonical RNA-directed DNA methylation (RdDM) affect the germination and post-germination growth of Arabidopsis seeds grown under salinity stress. Transcriptomic and whole-genome bisulfite sequencing (WGBS) analyses support the involvement of this pathway in the control of germination timing and post-germination growth under salinity stress by preventing the transcriptional activation of genes implicated in these processes. Subsequent transcriptional effects on genes that function in relation to these developmental events support this conclusion.

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