» Articles » PMID: 21980142

Arabidopsis Heterotrimeric G-protein Regulates Cell Wall Defense and Resistance to Necrotrophic Fungi

Abstract

The Arabidopsis heterotrimeric G-protein controls defense responses to necrotrophic and vascular fungi. The agb1 mutant impaired in the Gβ subunit displays enhanced susceptibility to these pathogens. Gβ/AGB1 forms an obligate dimer with either one of the Arabidopsis Gγ subunits (γ1/AGG1 and γ2/AGG2). Accordingly, we now demonstrate that the agg1 agg2 double mutant is as susceptible as agb1 plants to the necrotrophic fungus Plectosphaerella cucumerina. To elucidate the molecular basis of heterotrimeric G-protein-mediated resistance, we performed a comparative transcriptomic analysis of agb1-1 mutant and wild-type plants upon inoculation with P. cucumerina. This analysis, together with metabolomic studies, demonstrated that G-protein-mediated resistance was independent of defensive pathways required for resistance to necrotrophic fungi, such as the salicylic acid, jasmonic acid, ethylene, abscisic acid, and tryptophan-derived metabolites signaling, as these pathways were not impaired in agb1 and agg1 agg2 mutants. Notably, many mis-regulated genes in agb1 plants were related with cell wall functions, which was also the case in agg1 agg2 mutant. Biochemical analyses and Fourier Transform InfraRed (FTIR) spectroscopy of cell walls from G-protein mutants revealed that the xylose content was lower in agb1 and agg1 agg2 mutants than in wild-type plants, and that mutant walls had similar FTIR spectratypes, which differed from that of wild-type plants. The data presented here suggest a canonical functionality of the Gβ and Gγ1/γ2 subunits in the control of Arabidopsis immune responses and the regulation of cell wall composition.

Citing Articles

Genome-wide identification of heterotrimeric G protein genes in castor (Ricinus communis L.) and expression patterns under salt stress.

Fan M, Li J, Zhang T, Huo H, Lu S, He Z BMC Genomics. 2024; 25(1):1115.

PMID: 39567878 PMC: 11577925. DOI: 10.1186/s12864-024-11027-1.


MENTOR: Multiplex Embedding of Networks for Team-Based Omics Research.

Sullivan K, Miller J, Townsend A, Morgan M, Lane M, Pavicic M bioRxiv. 2024; .

PMID: 39091782 PMC: 11291001. DOI: 10.1101/2024.07.17.603821.


Host cell wall composition and localized microenvironment implicated in resistance to basal stem degradation by lettuce drop (Sclerotinia minor).

Simko I, Mamo B, Foster C, Adhikari N, Subbarao K BMC Plant Biol. 2024; 24(1):717.

PMID: 39069632 PMC: 11285140. DOI: 10.1186/s12870-024-05399-5.


The DEP1 Mutation Improves Stem Lodging Resistance and Biomass Saccharification by Affecting Cell Wall Biosynthesis in Rice.

Wang Y, Wang M, Yan X, Chen K, Tian F, Yang X Rice (N Y). 2024; 17(1):35.

PMID: 38748282 PMC: 11096150. DOI: 10.1186/s12284-024-00712-0.


The Resistance of Maize to Infection Is Correlated with the Degree of Methyl Esterification of Pectin in the Cell Wall.

Huang Y, Li Y, Zou K, Wang Y, Ma Y, Meng D Int J Mol Sci. 2023; 24(19).

PMID: 37834187 PMC: 10573042. DOI: 10.3390/ijms241914737.