Multi-omic dissection of the drought resistance traits of soybean landrace LX

Plant Cell Environ. 2021 May;44(5):1379-1398. doi: 10.1111/pce.14025. Epub 2021 Feb 18.

Abstract

With diverse genetic backgrounds, soybean landraces are valuable resource for breeding programs. Herein, we apply multi-omic approaches to extensively characterize the molecular basis of drought tolerance in the soybean landrace LX. Initial screens established that LX performed better with PEG6000 treatment than control cultivars. LX germinated better than William 82 under drought conditions and accumulated more anthocyanin and flavonoids. Untargeted mass spectrometry in combination with transcriptomic analyses revealed the chemical diversity and genetic basis underlying the overall performance of LX landrace. Under control and drought conditions, significant differences in the expression of a suite of secondary metabolism genes, particularly those involved in the general phenylpropanoid pathway and flavonoid but not lignin biosynthesis, were seen in LX and William 82. The expression of these genes correlated with the corresponding metabolites in LX plants. Further correlation analysis between metabolites and transcripts identified pathway structural genes and transcription factors likely are responsible for the LX agronomic traits. The activities of some key biosynthetic genes or regulators were confirmed through heterologous expression in transgenic Arabidopsis and hairy root transformation in soybean. We propose a regulatory mechanism based on flavonoid secondary metabolism and adaptive traits of this landrace which could be of relevance to cultivated soybean.

Keywords: MYB transcription factor; drought stress; flavonoid; glycosyltransferase; multi-omics; phenylpropanoid; soybean landrace.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Anthocyanins / biosynthesis
  • Droughts*
  • Flavonoids / biosynthesis
  • Gene Expression Profiling
  • Gene Expression Regulation, Plant
  • Genomics*
  • Germination / physiology
  • Glycine max / genetics
  • Glycine max / physiology*
  • Metabolome / genetics
  • Metabolomics
  • Phenotype
  • Propanols / metabolism
  • Quantitative Trait, Heritable*
  • Reproducibility of Results
  • Secondary Metabolism / genetics
  • Stress, Physiological / genetics
  • Transcription Factors / metabolism
  • Transcriptome / genetics

Substances

  • Anthocyanins
  • Flavonoids
  • Propanols
  • Transcription Factors
  • 1-phenylpropanol