Manipulation of glyoxalase pathway confers tolerance to multiple stresses in rice

Plant Cell Environ. 2018 May;41(5):1186-1200. doi: 10.1111/pce.12968. Epub 2017 Jun 2.

Abstract

Crop plants face a multitude of diverse abiotic and biotic stresses in the farmers' fields. Although there now exists a considerable knowledge of the underlying mechanisms of response to individual stresses, the crosstalk between response pathways to various abiotic and biotic stresses remains enigmatic. Here, we investigated if the cytotoxic metabolite methylglyoxal (MG), excess of which is generated as a common consequence of many abiotic and biotic stresses, may serve as a key molecule linking responses to diverse stresses. For this, we generated transgenic rice plants overexpressing the entire two-step glyoxalase pathway for MG detoxification. Through assessment of various morphological, physiological and agronomic parameters, we found that glyoxalase-overexpression imparts tolerance towards abiotic stresses like salinity, drought and heat and also provides resistance towards damage caused by the sheath blight fungus (Rhizoctonia solani) toxin phenylacetic acid. We show that the mechanism of observed tolerance of the glyoxalase-overexpressing plants towards these diverse abiotic and biotic stresses involves improved MG detoxification and reduced oxidative damage leading to better protection of chloroplast and mitochondrial ultrastructure and maintained photosynthetic efficiency under stress conditions. Together, our findings indicate that MG may serve as a key link between abiotic and biotic stress response in plants.

Keywords: Oryza sativa; abiotic and biotic stress; methylglyoxal; yield.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Antioxidants / metabolism
  • Brassica / enzymology
  • Brassica / genetics
  • Cell Death
  • Chloroplasts / ultrastructure
  • Droughts
  • Gene Expression
  • Hot Temperature
  • Lactoylglutathione Lyase / genetics
  • Lactoylglutathione Lyase / metabolism*
  • Mitochondria / ultrastructure
  • Oryza / enzymology
  • Oryza / genetics
  • Oryza / physiology*
  • Oryza / ultrastructure
  • Phenylacetates / toxicity
  • Photosynthesis
  • Plant Proteins / genetics
  • Plant Proteins / metabolism
  • Plants, Genetically Modified
  • Pyruvaldehyde / analysis
  • Pyruvaldehyde / metabolism*
  • Salinity
  • Stress, Physiological
  • Thiolester Hydrolases / genetics
  • Thiolester Hydrolases / metabolism*

Substances

  • Antioxidants
  • Phenylacetates
  • Plant Proteins
  • Pyruvaldehyde
  • Thiolester Hydrolases
  • hydroxyacylglutathione hydrolase
  • Lactoylglutathione Lyase
  • phenylacetic acid