QTLs for stomatal and photosynthetic traits related to salinity tolerance in barley

BMC Genomics. 2017 Jan 3;18(1):9. doi: 10.1186/s12864-016-3380-0.

Abstract

Background: Stomata regulate photosynthesis and transpiration, and these processes are critical for plant responses to abiotic stresses such as salinity. A barley double haploid population with 108 lines derived from a cross between CM72 (salt-tolerant) and Gairdner (salt-sensitive) was used to detect quantitative trait loci (QTLs) associated with stomatal and photosynthetic traits related to salinity tolerance.

Results: A total of 11 significant QTLs (LOD > 3.0) and 11 tentative QTLs (2.5 < LOD < 3.0) were identified. These QTLs are distributed on all the seven chromosomes, except 5H and explain 9.5-17.3% of the phenotypic variation. QTLs for biomass, intercellular CO2 concentration, transpiration rate and stomatal conductance under control conditions co-localised together. A QTL for biomass also co-located with one for transpiration rate under salinity stress. A linkage was found between stomatal pore area and gas exchange. A QTL for salinity tolerance also co-localised with QTLs for grain yield and biomass on chromosome 3H. Based on the draft barley genome, the candidate genes for salinity tolerance at this locus are proposed.

Conclusions: The lack of major QTLs for gas exchange and stomatal traits under control and saline conditions indicates a complex relationship between salinity and leaf gas exchange due to the fact that these complex quantitative traits are under the control of multiple genes.

Keywords: Gas exchange; Guard cell; Hordeum vulgare L; QTL mapping; Stomatal regulation.

MeSH terms

  • Biomass
  • Chromosome Mapping
  • Chromosomes, Plant
  • Edible Grain
  • Genetic Association Studies
  • Genome, Plant
  • Genomics / methods
  • Hordeum / genetics*
  • Hordeum / metabolism*
  • Photosynthesis / genetics*
  • Plant Stomata / genetics*
  • Quantitative Trait Loci*
  • Quantitative Trait, Heritable*
  • Salinity
  • Salt Tolerance / genetics*
  • Stress, Physiological / genetics