4.7 Article

vvi-miPEP172b and vvi-miPEP3635b increase cold tolerance of grapevine by regulating the corresponding MIRNA genes

Journal

PLANT SCIENCE
Volume 325, Issue -, Pages -

Publisher

ELSEVIER IRELAND LTD
DOI: 10.1016/j.plantsci.2022.111450

Keywords

MiRNA; Low temperature stress; Pri-miRNA encoded peptide; Cold tolerance; Grapevine

Funding

  1. National Natural Science Foundationof China
  2. Shanghai municipal key task projects Prospering Agriculture by Science and Technology Plan
  3. [31972383]
  4. [2020-02-08-00-08-F01458]

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This study investigates the role of miPEPs in plant cold stress resistance and finds that vvi-miPEP172b and vvi-miPEP3635b can enhance the cold tolerance of grape plantlets. This provides a theoretical basis for the future application of miPEPs in agricultural production.
As a kind of small molecular weight proteins, many peptides have been discovered, including peptides encoded by pri-miRNA (miPEPs). Similar as traditional phytohormone or signaling molecular, these peptides participate in numerous plant growth processes. MicroRNAs (miRNAs) play an important regulatory role in plant stress response. While the roles of miPEPs in response to abiotic stress has not been studied now. In this study, to explore whether miPEPs could contribute to low temperature (4 degrees C) tolerance of plants, the expression pattern of 23 different vvi-MIRs were analyzed by qRT-PCR in 'Thompson Seedless' (Vitis vinifera) plantlets under cold stress (4 degrees C) firstly, and vvi-MIR172b and vvi-MIR3635b which showed an elevated expression levels were selected to identify miPEPs. Through transient expression, one small open reading frame (sORF) in each of the two pri-miRNAs could increase the expression of corresponding vvi-MIR, and the amino acid sequences of sORFs were named vvi-miPEP172b and vvi-miPEP3635b, respectively. The synthetic vvi-miPEP172b and vvi-miPEP3635b were applied to the grape plantlets, and the tissue culture plantlets exhibited a higher cold tolerance compared with the control groups. These results revealed the effective roles of miPEPs in plant cold stress resistance for the first time, providing a theoretical basis for the future application of miPEPs to agricultural production.

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