This study uses combined transcriptomic and proteomic analysis alongside physiological measurements to characterize alfalfa responses to freezing stress. It links pathway-level transcript and protein changes to cultivar-specific freezing tolerance.
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combined transcriptomic and proteomic analysis
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integrated transcriptomic and proteomic analyses
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Under freezing stress at -5b0C, Dongnong NO.1 had lower malondialdehyde and relative electrolyte leakage than Bara 218TR.
Additionally, the levels of malondialdehyde (MDA) and relative electrolyte leakage (REL) were found be lower in "Dongnong NO.1" than in "Bara 218TR".
Under freezing stress at -5b0C, the cold-tolerant alfalfa cultivar Dongnong NO.1 showed higher antioxidant enzyme and osmoregulatory substance levels than the cold-sensitive cultivar Bara 218TR.
The results indicated that the levels of antioxidant enzyme and osmoregulatory substances in "Dongnong NO.1" were significantly higher than in "Bara 218TR".
Integrated transcriptomic and proteomic analyses indicate that carbohydrate metabolism, biotic stress defense, cell wall modification, and phenylpropanoid biosynthesis pathways are key to alfalfa's response to frost damage.
Integrated transcriptomic and proteomic analyses indicate that pathways related to carbohydrate metabolism, biotic stress defense, cell wall modification, and phenylpropanoid biosynthesis are key to alfalfa's response to frost damage.
Differentially abundant proteins respond to frost damage by maintaining protein stability, antioxidant defense, and metabolic regulation.
Proteomics analysis indicates that differentially abundant proteins (DAPs) respond to frost damage by maintaining protein stability, antioxidant defense, and metabolic regulation.