Plant growth‐promoting rhizobacteria enhance wheat salt and drought stress tolerance by altering endogenous phytohormone levels and <i>TaCTR1</i>/<i>TaDREB2</i> expression
Ризобактерии, стимулирующие рост растений, повышают устойчивость пшеницы к солевому и засушливому стрессам, изменяя уровни эндогенных фитогормонов и экспрессию генов TaCTR1/TaDREB2
2017-08-08
SCID: 54.1/nzk8rwwy
Discuss with AI
TaCTR1/TaDREB2 expressionphytohormone levelsplant growth-promoting rhizobacteriasalt and drought stresswheat stress tolerance
Figures from the paper
Abstract (AI)
Abiotic stresses such as salt and drought represent adverse environmental conditions that significantly damage plant growth and agricultural productivity. In this study, the mechanism of the plant growth-promoting rhizo-bacteria (PGPR)-stimulated tolerance against abiotic stresses has been explored. Results suggest that PGPR strains, Arthrobacter protophormiae (SA3) and Dietzia natronolimnaea (STR1), can facilitate salt stress tolerance in wheat crop, while Bacillus subtilis (LDR2) can provide tolerance against drought stress in wheat. These PGPR strains enhance photosynthetic efficiency under salt and drought stress conditions. Moreover, all three PGPR strains increase indole-3-acetic acid (IAA) content of wheat under salt and drought stress conditions. The SA3 and LDR2 inoculations counteracted the increase of abscisic acid (ABA) and 1-aminocyclopropane-1-carboxylate (ACC) under both salt and drought stress conditions, whereas STR1 had no significant impact on the ABA and ACC content. The impact of PGPR inoculations on these physiological parameters were further confirmed by gene expression analysis as we observed enhanced levels of the TaCTR1 gene in SA3-, STR1- and LDR2-treated wheat seedlings as compared to uninoculated drought and salt stressed plants. PGPR inoculations enhanced expression of TaDREB2 gene encoding for a transcription factor, which has been shown to be important for improving the tolerance of plants to abiotic stress conditions. Our study suggest that PGPR confer abiotic stress tolerance in wheat by enhancing IAA content, reducing ABA/ACC content, modulating expression of a regulatory component (CTR1) of ethylene signaling pathway and DREB2 transcription factor.
Key Findings
1
All three PGPR strains enhanced wheat photosynthetic efficiency and increased indole-3-acetic acid content under salt or drought stress.
2
Arthrobacter protophormiae SA3 and Dietzia natronolimnaea STR1 enhanced wheat tolerance to salt stress, while Bacillus subtilis LDR2 improved drought-stress tolerance.
3
PGPR inoculation increased TaCTR1 and TaDREB2 expression, linking improved stress tolerance to altered ethylene signaling and activation of an abiotic-stress transcription factor.
4
SA3 and LDR2 reduced stress-induced abscisic acid and 1-aminocyclopropane-1-carboxylate accumulation, whereas STR1 did not significantly affect these hormones.
5
The findings indicate that PGPR-mediated wheat stress tolerance involves increased IAA, reduced ABA/ACC, and coordinated regulation of TaCTR1 and TaDREB2.
Research Object
Wheat seedlings inoculated with plant growth-promoting rhizobacteria (Arthrobacter protophormiae SA3, Dietzia natronolimnaea STR1, and Bacillus subtilis LDR2) under salt and drought stress
Research Subject
PGPR-mediated abiotic stress tolerance involving photosynthetic efficiency, endogenous IAA/ABA/ACC levels, and TaCTR1/TaDREB2 expression
Publication Details
Publication Date
2017-08-08
Journal
Publisher
ISSN
Access Type
Author Information
Download PDF
Subscribe to digest