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High levels of stress tolerance are the result of evolutionary adaptation.
In accordance with the hypothesis, ppi1 plants showed similar levels of stress tolerance to SP1 overexpressors, under both conditions.
These results indicate that differentially expressed patterns of miRNAs between these two genotypes may play important roles in dehydration stress tolerance in wheat and may be a key factor in determining the levels of stress tolerance in different wheat genotypes.
Plants respond at molecular, cellular and physiological levels for management of stress tolerance.
The regulation of stress tolerance may be achieved through control at levels of transcriptional activation, DNA binding, and dimerization and/or by other unknown mechanisms.
Thus, the pale-green mutant may be more susceptible since the ability of plants to withstand oxidative stress determines the level of overall stress tolerance [ 54].
The cluster analysis from morpho-physiological parameters clustered genotypes in three distinctive groups as per the level of drought stress tolerance.
These results indicated that the OsPYL3 and OsPYL9 overexpression lines have a faster rate of stomatal closure and were hypersensitive to drought treatment compared to the controls, thereby contributing to a high level of drought stress tolerance.
Here we demonstrate for the first time that natural allelic variation in for influences levels of heat stress tolerance.
Furthermore, how miRNAs confer different levels of dehydration stress tolerance in various wheat genotypes is unclear.
Moreover, the mechanisms by which miRNAs confer different levels of dehydration stress tolerance in different wheat genotypes are unclear.
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