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Mutations in legume genes that influence symbiosis create a complex selective landscape for rhizobial symbionts

  • Sohini Guha
  • , Regina B. Bledsoe
  • , Jeremy Sutherland
  • , Brendan Epstein
  • , Gwendolyn M. Fry
  • , Vikram Venugopal
  • , Siva Sankari
  • , Alejandra Gil-Polo
  • , Garrett Levin
  • , Barney A. Geddes
  • , Nevin D. Young
  • , Peter Tiffin
  • , Liana T. Burghardt

Research output: Contribution to journalArticlepeer-review

Abstract

In the mutualism between leguminous plants and rhizobial bacteria, rhizobia live inside root nodules, creating potential for host genes to shape the rhizobial selective environment. Many host genes that affect symbiosis have been identified; however, the extent to which these genes affect selection acting on rhizobia is unknown. In this study, we inoculated 18 Medicago truncatula symbiotic mutants (including mutants that alter Nodule Cysteine-Rich (NCR) peptide production, plant defence, and nodule number regulation) with a mixture of 86 Sinorhizobium meliloti strains. Most mutations resulted in reduced host benefits, but the effects on rhizobial benefit (i.e. relative strain fitness) varied widely, revealing widespread host-by-strain fitness interactions. Genome-wide association analyses identified variants on rhizobial replicons pSymA and pSymB as important in mediating strain fitness responses to host mutations. Whereas most top variants affected rhizobial fitness with one host mutation (limited effect variants), nine affected fitness across six or more host mutations. These pervasive variants occurred primarily on pSymA, the symbiotic replicon, and include fixL and some metabolic genes. In contrast to the limited effect variants, variants with pervasive positive effects on strain fitness when host genes were mutated tended to adversely affect fitness in wild-type hosts. Competition assays across Medicago genotypes confirmed a pervasive role for one candidate (malonyl-CoA synthase), and AlphaFold multimer modelling suggests that many rhizobial top candidates could interact with host NCR peptides. Our results reveal how host genetic mutations alter strain fitness, setting the stage for improving rhizobial inoculants and breeding legume hosts better adapted to multi-strain environments.

Original languageEnglish (US)
Article numberwrag005
JournalISME Journal
Volume20
Issue number1
DOIs
StatePublished - Jan 1 2026

All Science Journal Classification (ASJC) codes

  • Microbiology
  • Ecology, Evolution, Behavior and Systematics

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