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We are analyzing https://link.springer.com/article/10.1186/s12915-022-01454-5.

Title:
Bromodomain-containing factor GTE4 regulates Arabidopsis immune response | BMC Biology
Description:
Background Plants are continuously challenged with biotic stress from environmental pathogens, and precise regulation of defense responses is critical for plant survival. Defense systems require considerable amounts of energy and resources, impairing plant growth, and plant hormones controlling transcriptional regulation play essential roles in establishing the appropriate balance between defense response to pathogens and growth. Chromatin regulators modulating gene transcription are broadly involved in regulating stress-responsive genes. However, which chromatin factors are involved in coordinating hormone signaling and immune responses in plants, and their functional mechanisms, remains unclear. Here, we identified a role of bromodomain-containing protein GTE4 in negatively regulating defense responses in Arabidopsis thaliana. Results GTE4 mainly functions as activator of gene expression upon infection with Pseudomonas syringe. Genome-wide profiling of GTE4 occupancy shows that GTE4 tends to bind to active genes, including ribosome biogenesis related genes and maintains their high expression levels during pathogen infection. However, GTE4 is also able to repress gene expression. GTE4 binds to and represses jasmonate biosynthesis gene OPR3. Disruption of GTE4 results in overaccumulation of jasmonic acid (JA) and enhanced JA-responsive gene expression. Unexpectedly, over-accumulated JA content in gte4 mutant is coupled with downregulation of JA-mediated immune defense genes and upregulation of salicylic acid (SA)-mediated immune defense genes, and enhanced resistance to Pseudomonas, likely through a noncanonical pathway. Conclusions Overall, we identified a new role of the chromatin factor GTE4 as negative regulator of plant immune response through inhibition of JA biosynthesis, which in turn noncanonically activates the defense system against Pseudomonas. These findings provide new knowledge of chromatic regulation of plant hormone signaling during defense responses.
Website Age:
28 years and 1 months (reg. 1997-05-29).

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  • Science
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Custom-built

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🌠 Phenomenal Traffic: 5M - 10M visitors per month


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Keywords {🔍}

gte, genes, pubmed, fig, article, plant, expression, google, scholar, cas, data, gene, plants, pathogen, arabidopsis, response, additional, immune, file, growth, cell, histone, central, protein, mutant, pst, opr, defense, signaling, biological, control, acid, conditions, transcription, resistance, proteins, analysis, biosynthesis, brd, downregulated, gteha, presented, content, involved, gtebound, chromatin, functions, active, ribosome, replicates,

Topics {✒️}

pc1300-tb-bha vector modified full size image ja-responsive genes areover-activated t-dna insertion line article download pdf specific bt2-mediated sugar jasmonate-dependent wound response sa-mediated immune response ja-mediated immune response chip-seq reads density gte4t-dna insertion mutant c-terminal hemagglutinin tag ribosome biogenesis-related genes published chip-seq dataused large-scale structural analysis gte4 t-dna insertionmutant sa-responsive gene expression cfx96™real-time system ja-responsive gene expression standard phenol–chloroform method including pattern-triggered immunity rt-qpcr verifying theexpression full access arabidopsis male-sterile mutant regulating stress-responsive genes theoretic ja/h2ja ratio ja-responsive genes lox3 gte4-ha rescue plants dual-target inhibitors based plant-defence gene validation gte-ha rescue plants mapped chip-seq reads gte4-ha rescue lines rt-qpcr showing expression regulating growth/defense balance ja-responsive genes expression gte4-ha chip-seq gte4 t-dnainsertion mutant published chip-seq data growth related hormones gte4-regulated ja biosynthesis promote effector-triggered immunity tested ja-responsive genes single-myb-histone proteins gte4-resulted ja signaling recruiting acetylation-binding proteins swr1 chromatin-remodeling complex gte4-regulated ja content previous chip-seq analysis plant growth-defense tradeoffs

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WebPage:
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         headline:Bromodomain-containing factor GTE4 regulates Arabidopsis immune response
         description:Plants are continuously challenged with biotic stress from environmental pathogens, and precise regulation of defense responses is critical for plant survival. Defense systems require considerable amounts of energy and resources, impairing plant growth, and plant hormones controlling transcriptional regulation play essential roles in establishing the appropriate balance between defense response to pathogens and growth. Chromatin regulators modulating gene transcription are broadly involved in regulating stress-responsive genes. However, which chromatin factors are involved in coordinating hormone signaling and immune responses in plants, and their functional mechanisms, remains unclear. Here, we identified a role of bromodomain-containing protein GTE4 in negatively regulating defense responses in Arabidopsis thaliana. GTE4 mainly functions as activator of gene expression upon infection with Pseudomonas syringe. Genome-wide profiling of GTE4 occupancy shows that GTE4 tends to bind to active genes, including ribosome biogenesis related genes and maintains their high expression levels during pathogen infection. However, GTE4 is also able to repress gene expression. GTE4 binds to and represses jasmonate biosynthesis gene OPR3. Disruption of GTE4 results in overaccumulation of jasmonic acid (JA) and enhanced JA-responsive gene expression. Unexpectedly, over-accumulated JA content in gte4 mutant is coupled with downregulation of JA-mediated immune defense genes and upregulation of salicylic acid (SA)-mediated immune defense genes, and enhanced resistance to Pseudomonas, likely through a noncanonical pathway. Overall, we identified a new role of the chromatin factor GTE4 as negative regulator of plant immune response through inhibition of JA biosynthesis, which in turn noncanonically activates the defense system against Pseudomonas. These findings provide new knowledge of chromatic regulation of plant hormone signaling during defense responses.
         datePublished:2022-11-13T00:00:00Z
         dateModified:2022-11-13T00:00:00Z
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            Immune response
            Jasmonic acid
            Bromodomain
            Arabidopsis
            Life Sciences
            general
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      headline:Bromodomain-containing factor GTE4 regulates Arabidopsis immune response
      description:Plants are continuously challenged with biotic stress from environmental pathogens, and precise regulation of defense responses is critical for plant survival. Defense systems require considerable amounts of energy and resources, impairing plant growth, and plant hormones controlling transcriptional regulation play essential roles in establishing the appropriate balance between defense response to pathogens and growth. Chromatin regulators modulating gene transcription are broadly involved in regulating stress-responsive genes. However, which chromatin factors are involved in coordinating hormone signaling and immune responses in plants, and their functional mechanisms, remains unclear. Here, we identified a role of bromodomain-containing protein GTE4 in negatively regulating defense responses in Arabidopsis thaliana. GTE4 mainly functions as activator of gene expression upon infection with Pseudomonas syringe. Genome-wide profiling of GTE4 occupancy shows that GTE4 tends to bind to active genes, including ribosome biogenesis related genes and maintains their high expression levels during pathogen infection. However, GTE4 is also able to repress gene expression. GTE4 binds to and represses jasmonate biosynthesis gene OPR3. Disruption of GTE4 results in overaccumulation of jasmonic acid (JA) and enhanced JA-responsive gene expression. Unexpectedly, over-accumulated JA content in gte4 mutant is coupled with downregulation of JA-mediated immune defense genes and upregulation of salicylic acid (SA)-mediated immune defense genes, and enhanced resistance to Pseudomonas, likely through a noncanonical pathway. Overall, we identified a new role of the chromatin factor GTE4 as negative regulator of plant immune response through inhibition of JA biosynthesis, which in turn noncanonically activates the defense system against Pseudomonas. These findings provide new knowledge of chromatic regulation of plant hormone signaling during defense responses.
      datePublished:2022-11-13T00:00:00Z
      dateModified:2022-11-13T00:00:00Z
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         Jasmonic acid
         Bromodomain
         Arabidopsis
         Life Sciences
         general
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               type:PostalAddress
            type:Organization
            name:Wuhan University
            address:
               name:Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, China
               type:PostalAddress
            type:Organization
      name:Zhaohui Chu
      affiliation:
            name:Wuhan University
            address:
               name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
               type:PostalAddress
            type:Organization
            name:Hubei Hongshan Laboratory
            address:
               name:Hubei Hongshan Laboratory, Wuhan, China
               type:PostalAddress
            type:Organization
      name:Xiangsong Chen
      url:http://orcid.org/0000-0003-4311-8001
      affiliation:
            name:Wuhan University
            address:
               name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
               type:PostalAddress
            type:Organization
            name:Hubei Hongshan Laboratory
            address:
               name:Hubei Hongshan Laboratory, Wuhan, China
               type:PostalAddress
            type:Organization
      email:[email protected]
PostalAddress:
      name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China
      name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China
      name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China
      name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China
      name:Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China
      name:Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences, Wuhan University, Wuhan, China
      name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China
      name:State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Wuhan, China
      name:Hubei Hongshan Laboratory, Wuhan, China

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