AI Article Synopsis

  • Marchantia polymorpha, a primitive land plant, has a unique expansion of plant U-box (PUB) proteins compared to animals, with a focus on the MpPUB9 protein's role in salt stress tolerance.
  • The expression of MpPUB9 increases quickly when exposed to high salinity and dehydration, and it interacts with the exocyst protein MpEXO70.1, affecting its stability and turnover rate under high-salt conditions.
  • Phenotypic studies indicate that manipulating MpPUB9 levels can create different growth responses in the plant, highlighting its importance in enhancing salt stress resistance through gene regulation and protein interactions.

Article Abstract

Marchantia polymorpha, occupying a basal position in the monophyletic assemblage of land plants, displays a notable expansion of plant U-box (PUB) proteins compared with those in animals. We elucidated the roles of MpPUB9 in regulating salt stress tolerance in M. polymorpha. MpPUB9 expression was rapidly induced by high salinity and dehydration. MpPUB9 possessed an intact U-box domain in the N-terminus. MpPUB9-Citrine localized to punctate structures and was peripherally associated with microsomal membranes. Phenotypic analyses demonstrate that the hyponastic and epinastic thallus growth phenotypes, which were induced by the overexpression and suppression of MpPUB9, may provoke salt stress-resistant and -susceptible phenotypes, respectively. MpPUB9 was also found to directly interact with the exocyst protein MpEXO70.1, leading to its ubiquitination. Under high-salinity conditions, though the stability of MpPUB9 was dramatically increased, MpEXO70.1 showed slightly faster turnover rates. Transcriptome analyses showed that salt treatment and the overexpression of MpPUB9 co-upregulated the genes related to the modulation of HO and cell wall organization. Overall, our results suggest that MpPUB9 plays a crucial role in the positive regulation of salt stress tolerance, resulting from its interaction with MpEXO70.1 and modulating turnover of the protein under high-salt conditions via the coordination of UPS with autophagy.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11579444PMC
http://dx.doi.org/10.1111/nph.20169DOI Listing

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