Plant–rhizobacteria interactions alleviate abiotic stress conditions
Взаимодействия растений и ризобактерий смягчают действие абиотических стрессов
2009-08-11
SCID: 54.1/gvxxbnry
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abiotic stress tolerancebacterial cross-protectionbiofertilizersphytoremediationplant–rhizobacteria interactions
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Abstract (AI)
Root-colonizing non-pathogenic bacteria can increase plant resistance to biotic and abiotic stress factors. Bacterial inoculates have been applied as biofertilizers and can increase the effectiveness of phytoremediation. Inoculating plants with non-pathogenic bacteria can provide 'bioprotection' against biotic stresses, and some root-colonizing bacteria increase tolerance against abiotic stresses such as drought, salinity and metal toxicity. Systematic identification of bacterial strains providing cross-protection against multiple stressors would be highly valuable for agricultural production in changing environmental conditions. For bacterial cross-protection to be an effective tool, a better understanding of the underlying morphological, physiological and molecular mechanisms of bacterially mediated stress tolerance, and the phenomenon of cross-protection is critical. Beneficial bacteria-mediated plant gene expression studies under non-stress conditions or during pathogenic rhizobacteria-plant interactions are plentiful, but only few molecular studies on beneficial interactions under abiotic stress situations have been reported. Thus, here we attempt an overview of current knowledge on physiological impacts and modes of action of bacterial mitigation of abiotic stress symptoms in plants. Where available, molecular data will be provided to support physiological or morphological observations. We indicate further research avenues to enable better use of cross-protection capacities of root-colonizing non-pathogenic bacteria in agricultural production systems affected by a changing climate.
Key Findings
1
Bacterial inoculants function as biofertilizers and can improve the effectiveness of plant-based phytoremediation.
2
Molecular studies of beneficial plant–bacteria interactions under abiotic stress are relatively scarce, highlighting a major research priority.
3
Root-colonizing non-pathogenic bacteria can enhance plant resistance to both biotic and abiotic stresses, including drought, salinity, and metal toxicity.
4
Systematically identifying bacterial strains that provide cross-protection against multiple stressors could support agricultural production under changing environmental conditions.
5
The physiological, morphological, and molecular mechanisms underlying bacterially mediated stress tolerance and cross-protection remain insufficiently understood.
Research Object
plant–rhizobacteria interactions under abiotic stress conditions
Research Subject
physiological, morphological, and molecular mechanisms by which root-colonizing non-pathogenic bacteria mitigate plant abiotic-stress symptoms and confer cross-protection
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2009-08-11
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