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Imaging InlC Secretion to Investigate Cellular Infection by the Bacterial Pathogen Listeria monocytogenes
Published on: September 19, 2013
Functional impact of mutational activation on the Listeria monocytogenes central virulence regulator PrfA
Maurine D Miner1,2, Gary C Port3,1, Nancy E Freitag1,3,4,2
1Seattle Biomedical Research Institute, Seattle, WA, USA.
Abstract:
The transcriptional activator PrfA is required for the expression of virulence factors necessary for Listeria monocytogenes pathogenesis. PrfA is believed to become activated following L. monocytogenes entry into the cytosol of infected host cells, resulting in the induction of target genes whose products are required for bacterial intracellular growth and cell-to-cell spread. Several mutations have been identified that appear to lock PrfA into its highly activated cytosolic form (known as prfA* mutations). In this study PrfA and five PrfA* mutant proteins exhibiting differing degrees of activity were purified and analysed to define the influences of the mutations on distinct aspects of PrfA activity. Based on limited proteolytic digestion, conformational changes were detected for the PrfA* mutant proteins in comparison to wild-type PrfA. For all but one mutant (PrfA Y63C), the DNA binding affinity as measured by electophoretic mobility shift assay appeared to directly correlate with levels of PrfA mutational activation, such that the high-activity mutants exhibited the largest increases in DNA binding affinity and moderately activated mutants exhibited more moderate increases. Surprisingly, the ability of PrfA and PrfA* mutants to form dimers in solution appeared to inversely correlate with levels of PrfA-dependent gene expression. Based on comparisons of protein activity and structural similarities with PrfA family members Crp and CooA, the prfA* mutations modify distinct aspects of PrfA activity that include DNA binding and protein-protein interactions.
Insights
Mutations in Listeria monocytogenes transcriptional activator PrfA (prfA*) alter its DNA binding and dimerization. These changes influence virulence factor expression, impacting bacterial pathogenesis and intracellular growth.
Area of Science:
- Microbiology
- Molecular Biology
- Structural Biology
Background:
- PrfA is a transcriptional activator crucial for Listeria monocytogenes virulence.
- PrfA activation in the host cytosol induces genes for intracellular growth and spread.
- PrfA* mutations stabilize PrfA in an activated state.
Purpose of the Study:
- To analyze PrfA and five PrfA* mutant proteins.
- To determine how prfA* mutations influence PrfA activity.
- To understand the structural and functional effects of prfA* mutations.
Main Methods:
- Protein purification of wild-type PrfA and PrfA* mutants.
- Limited proteolytic digestion to assess conformational changes.
- Electrophoretic mobility shift assay (EMSA) to measure DNA binding affinity.
- Analysis of protein dimerization in solution.
Main Results:
- PrfA* mutants showed conformational changes compared to wild-type PrfA.
- DNA binding affinity generally correlated with the degree of PrfA activation.
- Protein dimerization inversely correlated with PrfA-dependent gene expression.
- Mutations affected DNA binding and protein-protein interactions.
Conclusions:
- PrfA* mutations modulate distinct aspects of PrfA activity, including DNA binding and dimerization.
- These modifications impact the regulation of Listeria monocytogenes virulence genes.
- Understanding these mechanisms provides insights into bacterial pathogenesis.
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