Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Plastidial fatty acid levels regulate resistance gene-dependent defense signaling in Arabidopsis

View through CrossRef
In Arabidopsis , resistance to Turnip Crinkle Virus (TCV) depends on the resistance ( R ) gene, HRT , and the recessive locus rrt . Resistance also depends on salicylic acid (SA), EDS1 , and PAD4 . Exogenous application of SA confers resistance in RRT -containing plants by increasing HRT transcript levels in a PAD4 -dependent manner. Here we report that reduction of oleic acid (18:1) can also induce HRT gene expression and confer resistance to TCV. However, the 18:1-regulated pathway is independent of SA, rrt , EDS1 , and PAD4 . Reducing the levels of 18:1, via a mutation in the SSI2 -encoded stearoyl-acyl carrier protein-desaturase, or by exogenous application of glycerol, increased transcript levels of HRT as well as several other R genes. Second-site mutations in the ACT1 -encoded glycerol-3-phosphate acyltransferase or GLY1 -encoded glycerol-3-phosphate dehydrogenase restored 18:1 levels in HRT ssi2 plants and reestablished a dependence on rrt . Resistance to TCV and HRT gene expression in HRT act1 plants was inducible by SA but not by glycerol, whereas that in HRT pad4 plants was inducible by glycerol but not by SA. The low 18:1-mediated induction of R gene expression was also dependent on ACT1 but independent of EDS1 , PAD4 , and RAR1 . Intriguingly, TCV inoculation did not activate this 18:1-regulated pathway in HRT plants, but instead resulted in the induction of several genes that encode 18:1-synthesizing isozymes. These results suggest that the 18:1-regulated pathway may be specifically targeted during pathogen infection and that altering 18:1 levels may serve as a unique strategy for promoting disease resistance.
Title: Plastidial fatty acid levels regulate resistance gene-dependent defense signaling in Arabidopsis
Description:
In Arabidopsis , resistance to Turnip Crinkle Virus (TCV) depends on the resistance ( R ) gene, HRT , and the recessive locus rrt .
Resistance also depends on salicylic acid (SA), EDS1 , and PAD4 .
Exogenous application of SA confers resistance in RRT -containing plants by increasing HRT transcript levels in a PAD4 -dependent manner.
Here we report that reduction of oleic acid (18:1) can also induce HRT gene expression and confer resistance to TCV.
However, the 18:1-regulated pathway is independent of SA, rrt , EDS1 , and PAD4 .
Reducing the levels of 18:1, via a mutation in the SSI2 -encoded stearoyl-acyl carrier protein-desaturase, or by exogenous application of glycerol, increased transcript levels of HRT as well as several other R genes.
Second-site mutations in the ACT1 -encoded glycerol-3-phosphate acyltransferase or GLY1 -encoded glycerol-3-phosphate dehydrogenase restored 18:1 levels in HRT ssi2 plants and reestablished a dependence on rrt .
Resistance to TCV and HRT gene expression in HRT act1 plants was inducible by SA but not by glycerol, whereas that in HRT pad4 plants was inducible by glycerol but not by SA.
The low 18:1-mediated induction of R gene expression was also dependent on ACT1 but independent of EDS1 , PAD4 , and RAR1 .
Intriguingly, TCV inoculation did not activate this 18:1-regulated pathway in HRT plants, but instead resulted in the induction of several genes that encode 18:1-synthesizing isozymes.
These results suggest that the 18:1-regulated pathway may be specifically targeted during pathogen infection and that altering 18:1 levels may serve as a unique strategy for promoting disease resistance.

Related Results

Phenotypic and Molecular Characterization of the blaTEM Gene in Extended-Spectrum Beta-Lactamase-Producing Klebsiella pneumoniae
Phenotypic and Molecular Characterization of the blaTEM Gene in Extended-Spectrum Beta-Lactamase-Producing Klebsiella pneumoniae
Abstract Introduction There has been a notable rise in antibiotic resistance among enterobacteria. This issue is primarily attributed to the emergence of extended-spectrum beta-lac...
Low Temperature Affects Fatty Acids Profiling and Key Synthesis Genes Expression Patterns in Zanthoxylum bungeanum Maxim
Low Temperature Affects Fatty Acids Profiling and Key Synthesis Genes Expression Patterns in Zanthoxylum bungeanum Maxim
Zanthoxylum bungeanum is one of the most important medicinal and edible homologous plants because of its potential health benefits and unique flavors. The chemical components in co...
Microrna Regulation of Nodule Zone-Specific Gene Expression In Soybean
Microrna Regulation of Nodule Zone-Specific Gene Expression In Soybean
Nitrogen is a paramount important essential element for all living organisms. It has been found to bea crucial structural component of proteins, nucleic acids, enzymes and other ce...
Fatty Acid Incorporation into Human Adipose Tissue in Hypertrigiyceridaemia*
Fatty Acid Incorporation into Human Adipose Tissue in Hypertrigiyceridaemia*
AbstractThe fatty acid and glucose incorporation into glycerides and glycerol release from adipose tissue were determined in a middle‐aged population of 109 men and 41 women. 43 me...
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Evolution of Antimicrobial Resistance in Community vs. Hospital-Acquired Infections
Abstract Introduction Hospitals are high-risk environments for infections. Despite the global recognition of these pathogens, few studies compare microorganisms from community-acqu...
Functional analysis of the Theobroma cacao NPR1 gene in arabidopsis
Functional analysis of the Theobroma cacao NPR1 gene in arabidopsis
Abstract Background The Arabidopsis thaliana NPR1 gene encodes a transcription coactivator (NPR1) that plays a major role in the mechanisms regul...
7 th International Symposium on Enabling Technologies for Life Sciences (ETP)
7 th International Symposium on Enabling Technologies for Life Sciences (ETP)
The seventh in the series of ETP Symposia (see Rapid Communications in Mass Spectrometry 2012, 26 , ...

Back to Top