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What molecule could enhance the cold tolerance in plant? 


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The molecule that could enhance cold tolerance in plants is S-methylmethionine salicylate (MMS) . MMS is a derivative of S-methylmethionine (SMM) and salicylic acid (SA), which have been shown to have beneficial effects in counteracting the harmful effects of environmental stresses such as chilling . MMS combines the effects of SMM and SA, stabilizing the unstable SMM and providing extended stress tolerance . It has been found to activate the expression of immunity and cold-related genes, leading to better physiological conditions and enhanced plant defense mechanisms against stressors . The role of MMS in enhancing cold tolerance is dependent on the salicylic acid signaling pathway . Therefore, MMS can be used as an alternative, environmentally friendly way to enhance cold tolerance in plants, with the potential for easier and more cost-effective usage in agriculture .

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The molecule that could enhance cold tolerance in plants is a nonspecific lipid transfer protein (DgnsLTP), which interacts with DgTIL1 and promotes peroxidase gene expression and activity to reduce the accumulation of reactive oxygen species (ROS) under cold stress.
The molecule that enhances cold tolerance in plants is GmTCF1a, a RCC1-like gene identified in soybean.
The molecule that could enhance cold tolerance in plants is S-methylmethionine salicylate (MMS).
The molecule that could enhance cold tolerance in plants is flagellin 22 (flg22), a pathogen-associated molecular pattern (PAMP).
The paper does not specifically mention a molecule that enhances cold tolerance in plants.

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