A unique miR775-GALT9 module regulates leaf senescence in Arabidopsis during post-submergence recovery by modulating ethylene and the abscisic acid pathway

Development. 2022 Feb 15;149(4):dev199974. doi: 10.1242/dev.199974. Epub 2022 Feb 15.

Abstract

The submergence-induced hypoxic condition negatively affects the plant growth and development, and causes early onset of senescence. Hypoxia alters the expression of a number of microRNAs (miRNAs). However, the molecular function of submergence stress-induced miRNAs in physiological or developmental changes and recovery remains poorly understood. Here, we show that miR775 is an Arabidopsis thaliana-specific young and unique miRNA that possibly evolved non-canonically. miR775 post-transcriptionally regulates GALACTOSYLTRANSFERASE 9 (GALT9) and their expression is inversely affected at 24 h of complete submergence stress. The overexpression of miR775 (miR775-Oe) confers enhanced recovery from submergence stress and reduced accumulation of RBOHD and ROS, in contrast to wild-type and MIM775 Arabidopsis shoot. A similar recovery phenotype in the galt9 mutant indicates the role of the miR775-GALT9 module in post-submergence recovery. We predicted that Golgi-localized GALT9 is potentially involved in protein glycosylation. The altered expression of senescence-associated genes (SAG12, SAG29 and ORE1), ethylene signalling (EIN2 and EIN3) and abscisic acid (ABA) biosynthesis (NCED3) pathway genes occurs in miR775-Oe, galt9 and MIM775 plants. Thus, our results indicate the role for the miR775-GALT9 module in post-submergence recovery through a crosstalk between the ethylene signalling and ABA biosynthesis pathways.

Keywords: Arabidopsis; GALT9; Hypoxia; SAG genes; Senescence; Submergence stress; miR775; miRNA.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Abscisic Acid / metabolism
  • Arabidopsis / genetics
  • Arabidopsis / growth & development
  • Arabidopsis / metabolism*
  • Arabidopsis Proteins / chemistry
  • Arabidopsis Proteins / genetics
  • Arabidopsis Proteins / metabolism*
  • Binding Sites
  • Cysteine Endopeptidases / genetics
  • Cysteine Endopeptidases / metabolism
  • Dioxygenases / genetics
  • Dioxygenases / metabolism
  • Ethylenes / pharmacology*
  • Galactosyltransferases / genetics
  • Galactosyltransferases / metabolism*
  • Golgi Apparatus / metabolism
  • MicroRNAs / chemistry
  • MicroRNAs / genetics
  • MicroRNAs / metabolism*
  • NADPH Oxidases / genetics
  • NADPH Oxidases / metabolism
  • Plant Leaves / genetics
  • Plant Leaves / metabolism
  • Plant Proteins / genetics
  • Plant Proteins / metabolism
  • Plant Senescence / drug effects*
  • Plants, Genetically Modified / genetics
  • Plants, Genetically Modified / growth & development
  • Plants, Genetically Modified / metabolism
  • Reactive Oxygen Species / metabolism
  • Receptors, Cell Surface / genetics
  • Receptors, Cell Surface / metabolism
  • Signal Transduction / genetics
  • Stress, Physiological

Substances

  • Arabidopsis Proteins
  • EIN2 protein, Arabidopsis
  • Ethylenes
  • MicroRNAs
  • Plant Proteins
  • Reactive Oxygen Species
  • Receptors, Cell Surface
  • Abscisic Acid
  • ethylene
  • Dioxygenases
  • 9-cis-epoxy-carotenoid dioxygenase
  • respiratory burst oxidase homolog D, Arabidopsis
  • NADPH Oxidases
  • Galactosyltransferases
  • SAG12 protein, Arabidopsis
  • Cysteine Endopeptidases