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PROTEIN PHOSPHATASE 2A-B'γ controls Botrytis cinerea resistance and developmental leaf senescence

Erich Glawischnig; Graham Noctor; Eva-Mari Aro; Mikael Brosche; Meike Burow; Jarkko Salojärvi; Peter J Gollan; Guido Durian; Saijaliisa Kangasjärvi; Katariina Vuorinen; Kirk Overmyer; Moona Rahikainen; Shengchun Li; Jaakko Kangasjärvi; Zsófia Winter; Verena Jeschke

PROTEIN PHOSPHATASE 2A-B'γ controls Botrytis cinerea resistance and developmental leaf senescence

Erich Glawischnig
Graham Noctor
Eva-Mari Aro
Mikael Brosche
Meike Burow
Jarkko Salojärvi
Peter J Gollan
Guido Durian
Saijaliisa Kangasjärvi
Katariina Vuorinen
Kirk Overmyer
Moona Rahikainen
Shengchun Li
Jaakko Kangasjärvi
Zsófia Winter
Verena Jeschke
Katso/Avaa
Copyright American Society of Plant Biologists (1.935Mb)
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American Society of Plant Biologists
doi:10.1104/pp.19.00893
URI
http://www.plantphysiol.org/content/182/2/1161
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Julkaisun pysyvä osoite on:
https://urn.fi/URN:NBN:fi-fe2021042822904
Tiivistelmä

Plants optimize their growth and survival through highly integrated regulatory networks that coordinate defensive measures and developmental transitions in response to environmental cues. Protein phosphatase 2A (PP2A) is a key signaling component that controls stress reactions and growth at different stages of plant development, and the PP2A regulatory subunit PP2A-B'γ is required for negative regulation of pathogenesis responses and for maintenance of cell homeostasis in short day conditions. Here, we report molecular mechanisms by which PP2A-B'γ regulates Botrytis cinerea resistance and leaf senescence in Arabidopsis (Arabidopsis thaliana). We extend the molecular functionality of PP2A-B'γ to a protein kinase-phosphatase interaction with the defense-associated calcium-dependent protein kinase CPK1 and present indications this interaction may function to control CPK1 activity. In pre-senescent leaf tissues, PP2A-B'γ is also required to negatively control the expression of salicylic acid-related defense genes, which have recently proven vital in plant resistance to necrotrophic fungal pathogens. In addition, we find the premature leaf yellowing of pp2a-b'γ depends on salicylic acid biosynthesis via SALICYLIC ACID INDUCTION DEFICIENT2 and bears the hallmarks of developmental leaf senescence. We propose PP2A-B'γ age-dependently controls salicylic acid-related signaling in plant immunity and developmental leaf senescence.

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