ArticlePlanta2012
Site-directed mutagenesis of the Arabidopsis heterotrimeric G protein β subunit suggests divergent mechanisms of effector activation between plant and animal G proteins.
Article in Planta, 2012. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed, 19 citations in OpenAlex.
- Interplay between ARABIDOPSIS Gβ and WRKY transcription factors differentiates environmental stress responses.Plant physiology · 2022Article
- Molecular Identification of the G-Protein Genes and Their Expression Profiles in Response to Nitrogen Deprivation inInternational journal of molecular sciences · 2022Article
- Heterotrimeric G Protein Signaling in Abiotic Stress.Plants (Basel, Switzerland) · 2022Review
- Fine mapping and candidate gene analysis of the up locus determining fruit orientation in pepper (Capsicum spp.).TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik · 2021Article
- Plant receptor-like kinase signaling through heterotrimeric G-proteins.Journal of experimental botany · 2020Review
- Type B Heterotrimeric G Protein γ-Subunit Regulates Auxin and ABA Signaling in Tomato.Plant physiology · 2016Article
- Plant G-Proteins Come of Age: Breaking the Bond with Animal Models.Frontiers in chemistry · 2016Article
- Article
- The RGS proteins add to the diversity of soybean heterotrimeric G-protein signaling.Plant signaling & behavior · 2012Article
- Dissecting Arabidopsis Gβ signal transduction on the protein surface.Plant physiology · 2012Article
Corrections and comments
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Authors and funding
3 authors at 2 institutions in 2 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Heterotrimeric G proteins are integral components of signal transduction in humans and other mammals and have been therefore extensively studied. However, while they are known to mediate many processes, much less is currently known about the effector pathways and molecular mechanisms used by these proteins to regulate effectors in plants. We designed a complementation strategy to study G protein signaling in Arabidopsis thaliana, particularly the mechanism of action of AGB1, the sole identified β subunit. We used biochemical and effector regulation data from human G protein studies to identify four potentially important residues for site-directed mutagenesis (T65, M111, D250 and W361 of AGB1). Each residue was individually mutated and the resulting mutated protein introduced in the agb1-2 mutant background under the control of the native AGB1 promoter. Interestingly, even though these mutations have been shown to have profound effects on effector signaling in humans, all the mutated subunits were able to restore thirteen of the fifteen Gβ-deficient phenotypes characterized in this study. Only one mutated protein, T65A was unable to complement the hypersensitivity to mannitol during germination observed in agb1 mutants; while only D250A failed to restore lateral root numbers in the agb1 mutant to wild-type levels. Our results suggest that the mechanisms used in mammalian G protein signaling are not well conserved in plant G protein signaling, and that either the effectors used by plant G proteins, or the mechanisms used to activate them, are at least partially divergent from the well-studied mammalian G proteins.
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