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Function of Protein Kinases in Leaf Senescence of Plants

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Journal Front Plant Sci
Date 2022 May 13
PMID 35548290
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Abstract

Leaf senescence is an evolutionarily acquired process and it is critical for plant fitness. During senescence, macromolecules and nutrients are disassembled and relocated to actively growing organs. Plant leaf senescence process can be triggered by developmental cues and environmental factors, proper regulation of this process is essential to improve crop yield. Protein kinases are enzymes that modify their substrates activities by changing the conformation, stability, and localization of those proteins, to play a crucial role in the leaf senescence process. Impressive progress has been made in understanding the role of different protein kinases in leaf senescence recently. This review focuses on the recent progresses in plant leaf senescence-related kinases. We summarize the current understanding of the function of kinases on senescence signal perception and transduction, to help us better understand how the orderly senescence degeneration process is regulated by kinases, and how the kinase functions in the intricate integration of environmental signals and leaf age information.

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References
1.
Schippers J, Schmidt R, Wagstaff C, Jing H . Living to Die and Dying to Live: The Survival Strategy behind Leaf Senescence. Plant Physiol. 2015; 169(2):914-30. PMC: 4587445. DOI: 10.1104/pp.15.00498. View

2.
Poudyal R, Rodionova M, Kim H, Lee S, Do E, Allakhverdiev S . Combinatory actions of CP29 phosphorylation by STN7 and stability regulate leaf age-dependent disassembly of photosynthetic complexes. Sci Rep. 2020; 10(1):10267. PMC: 7314821. DOI: 10.1038/s41598-020-67213-0. View

3.
Gao Q, Yang Z, Zhou Y, Yin Z, Qiu J, Liang G . Characterization of an Abc1 kinase family gene OsABC1-2 conferring enhanced tolerance to dark-induced stress in rice. Gene. 2012; 498(2):155-63. DOI: 10.1016/j.gene.2012.02.017. View

4.
Kobayashi M, Ohura I, Kawakita K, Yokota N, Fujiwara M, Shimamoto K . Calcium-dependent protein kinases regulate the production of reactive oxygen species by potato NADPH oxidase. Plant Cell. 2007; 19(3):1065-80. PMC: 1867354. DOI: 10.1105/tpc.106.048884. View

5.
Zhou J, Wang P, Claus L, Savatin D, Xu G, Wu S . Proteolytic Processing of SERK3/BAK1 Regulates Plant Immunity, Development, and Cell Death. Plant Physiol. 2019; 180(1):543-558. PMC: 6501102. DOI: 10.1104/pp.18.01503. View