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Published on: January 1, 2016
Malleilactone Is a Burkholderia pseudomallei Virulence Factor Regulated by Antibiotics and Quorum Sensing
Jennifer R Klaus1, Jacqueline Deay1, Benjamin Neuenswander2
1Department of Molecular Biosciences, University of Kansas, Lawrence, Kansas, USA.
Abstract:
Burkholderia pseudomallei, the causative agent of melioidosis, encodes almost a dozen predicted polyketide (PK) biosynthetic gene clusters. Many of these are regulated by LuxR-I-type acyl-homoserine (AHL) quorum-sensing systems. One of the PK gene clusters, the mal gene cluster, is conserved in the close relative Burkholderia thailandensis The B. thailandensis mal genes code for the cytotoxin malleilactone and are regulated by a genetically linked LuxR-type transcription factor, MalR. Although AHLs typically interact with LuxR-type proteins to modulate gene transcription, the B. thailandensis MalR does not appear to be an AHL receptor. Here, we characterize the mal genes and MalR in B. pseudomallei We use chemical analyses to demonstrate that the B. pseudomallei mal genes code for malleilactone. Our results show that MalR and the mal genes contribute to the ability of B. pseudomallei to kill Caenorhabditis elegans In B. thailandensis, antibiotics like trimethoprim can activate MalR by driving transcription of the mal genes, and we demonstrate that some of the same antibiotics induce expression of B. pseudomallei malR We also demonstrate that B. pseudomallei MalR does not respond directly to AHLs. Our results suggest that MalR is indirectly repressed by AHLs, possibly through a repressor, ScmR. We further show that malleilactone is a B. pseudomallei virulence factor and provide the foundation for understanding how malleilactone contributes to the pathology of melioidosis infections.IMPORTANCE Many bacterially produced polyketides are cytotoxic to mammalian cells and are potentially important contributors to pathogenesis during infection. We are interested in the polyketide gene clusters present in Burkholderia pseudomallei, which causes the often-fatal human disease melioidosis. Using knowledge gained by studies in the close relative Burkholderia thailandensis, we show that one of the B. pseudomallei polyketide biosynthetic clusters produces a cytotoxic polyketide, malleilactone. Malleilactone contributes to B. pseudomallei virulence in a Caenorhabditis elegans infection model and is regulated by an orphan LuxR family quorum-sensing transcription factor, MalR. Our studies demonstrate that malleilactone biosynthesis or MalR could be new targets for developing therapeutics to treat melioidosis.
Insights
Burkholderia pseudomallei produces the cytotoxic polyketide malleilactone, regulated by MalR. This molecule is a virulence factor contributing to melioidosis, suggesting potential therapeutic targets.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Burkholderia pseudomallei causes melioidosis, a severe disease.
- The bacterium possesses numerous polyketide (PK) biosynthetic gene clusters, many regulated by quorum sensing.
- Malleilactone, a cytotoxin produced by B. thailandensis, is encoded by the conserved mal gene cluster.
Purpose of the Study:
- To characterize the mal genes and MalR in B. pseudomallei.
- To investigate the role of malleilactone and MalR in B. pseudomallei virulence.
- To understand the regulation of mal genes and malleilactone production.
Main Methods:
- Chemical analyses to identify malleilactone.
- Caenorhabditis elegans infection models to assess virulence.
- Antibiotic treatment to study gene expression.
- Quorum-sensing molecule assays to investigate MalR regulation.
Main Results:
- B. pseudomallei mal genes produce malleilactone.
- MalR and mal genes contribute to B. pseudomallei virulence in C. elegans.
- Antibiotics like trimethoprim induce B. pseudomallei malR expression.
- B. pseudomallei MalR is not directly activated by acyl-homoserine lactones (AHLs) but is indirectly repressed by them.
Conclusions:
- Malleilactone is a B. pseudomallei virulence factor.
- MalR regulation is complex and not directly mediated by AHLs.
- Malleilactone biosynthesis or MalR represents a potential therapeutic target for melioidosis.
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