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FlhA influences Bacillus thuringiensis PlcR-regulated gene transcription, protein production, and virulence
Laurent Bouillaut1, Nalini Ramarao, Christophe Buisson
1Unité Génétique Microbienne et Environnement, INRA, La Minière, 78285 Guyancourt Cedex, France.
Abstract:
Bacillus thuringiensis and Bacillus cereus are closely related. B. thuringiensis is well known for its entomopathogenic properties, principally due to the synthesis of plasmid-encoded crystal toxins. B. cereus appears to be an emerging opportunistic human pathogen. B. thuringiensis and B. cereus produce many putative virulence factors which are positively controlled by the pleiotropic transcriptional regulator PlcR. The inactivation of plcR decreases but does not abolish virulence, indicating that additional factors like flagella may contribute to pathogenicity. Therefore, we further analyzed a mutant (B. thuringiensis 407 Cry(-) DeltaflhA) previously described as being defective in flagellar apparatus assembly and in motility as well as in the production of hemolysin BL and phospholipases. A large picture of secreted proteins was obtained by two-dimensional electrophoresis analysis, which revealed that flagellar proteins are not secreted and that production of several virulence-associated factors is reduced in the flhA mutant. Moreover, we quantified the effect of FlhA on plcA and hblC gene transcription. The results show that the flhA mutation results in a significant reduction of plcA and hblC transcription. These results indicate that the transcription of several PlcR-regulated virulence factors is coordinated with the flagellar apparatus. Consistently, the flhA mutant also shows a strong decrease in cytotoxicity towards HeLa cells and in virulence against Galleria mellonella larvae following oral and intrahemocoelic inoculation. The decrease in virulence may be due to both a lack of flagella and a lower production of secreted factors. Hence, FlhA appears to be an essential virulence factor with a pleiotropic role.
Insights
The flagellar protein FlhA in Bacillus thuringiensis is crucial for virulence. Its absence reduces toxin production and pathogenicity in both insect and cell models, highlighting its pleiotropic role.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Bacillus thuringiensis and Bacillus cereus are closely related species.
- B. thuringiensis is known for insecticidal crystal toxins, while B. cereus is an opportunistic human pathogen.
- Both species utilize virulence factors regulated by PlcR, but additional factors like flagella contribute to pathogenicity.
Purpose of the Study:
- To investigate the role of the flagellar protein FlhA in the virulence of Bacillus thuringiensis.
- To determine the effect of FlhA on the production of secreted virulence factors and gene transcription.
- To assess the impact of FlhA on cytotoxicity and pathogenicity in relevant models.
Main Methods:
- Analysis of a B. thuringiensis mutant defective in flagellar assembly (DeltaflhA).
- Two-dimensional electrophoresis to profile secreted proteins.
- Quantification of plcA and hblC gene transcription.
- Assessment of cytotoxicity against HeLa cells and virulence in Galleria mellonella larvae.
Main Results:
- The flhA mutation led to reduced secretion of virulence factors and decreased transcription of plcA and hblC genes.
- Flagellar proteins were not found to be secreted.
- The flhA mutant exhibited significantly reduced cytotoxicity and virulence in insect models.
- FlhA appears to coordinate the transcription of PlcR-regulated virulence factors.
Conclusions:
- FlhA is an essential virulence factor in Bacillus thuringiensis with a pleiotropic role.
- The flagellar apparatus, via FlhA, influences the expression of other secreted virulence factors.
- FlhA contributes significantly to bacterial pathogenicity through multiple mechanisms.
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