Related Experiment Videos
Stomatal Morphology, Leaf Nutrients and Molecular Adaptations Are Associated With Scald Resistance in Barley
Usman Ijaz1, Muhammad Atif Azeem1, Sergey Shabala2,3
1Tasmanian Institute of Agriculture, University of Tasmania, Launceston, Tasmania, Australia.
Abstract:
Scald, caused by Rhynchosporium secalis, can reduce grain yield by up to 40% in susceptible cultivars. To investigate physiological and molecular responses associated with scald resistance in barley, we compared a susceptible cultivar, Atlantis, with a resistant cultivar, Yangsimai 3, under uninoculated control and R. secalis-inoculated conditions. Relative to the uninoculated control, Atlantis showed significant reductions in shoot and root length (20.6% and 22.9%), shoot and root dry weight (27.7% and 28.3%), SPAD value (30.9%) and chlorophyll fluorescence (10.8%), whereas Yangsimai 3 showed smaller changes. Under R. secalis inoculation, Yangsimai 3 showed lower stomatal conductance and smaller stomatal pore size, more stable K+ and Ca2+ contents, lower malondialdehyde (MDA) and hydrogen peroxide (H2O2) levels and higher superoxide dismutase (SOD, ~32%), peroxidase (POD, ~41%) and catalase (CAT, ~31%) activities, indicating stronger antioxidant capacity. qRT-PCR analysis further showed generally enhanced gene expression in inoculated Yangsimai 3 involving Ca2+ signalling (HvCAM1, HvCAM24 and HvCDPK3), K+ transport (HvHAK1 and HvGORK), antioxidant defence (HvCDS1, HvSOD2 and HvCAT1), phytohormone signalling (HvAOC, HvLOX2 and HvJIP60), stomatal regulation (HvOST1 and HvSLAC1) and MAPK-mediated immune signalling (HvMPK3 and HvMPK14), whereas reactive oxygen species (ROS) production was more strongly induced in Atlantis. These results suggest that scald resistance in Yangsimai 3 is associated with stomatal regulation, ion homeostasis, antioxidant defence and defence-related gene expression.