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Imaging InlC Secretion to Investigate Cellular Infection by the Bacterial Pathogen Listeria monocytogenes
Published on: September 19, 2013
Intracellular gene expression profile of Listeria monocytogenes
Som Subhra Chatterjee1, Hamid Hossain, Sonja Otten
1Institute for Medical Microbiology, Justus-Liebig-University, Frankfurter Strasse 107, D-35392 Giessen, Germany.
Abstract:
Listeria monocytogenes is a gram-positive, food-borne microorganism responsible for invasive infections with a high overall mortality. L. monocytogenes is among the very few microorganisms that can induce uptake into the host cell and subsequently enter the host cell cytosol by breaching the vacuolar membrane. We infected the murine macrophage cell line P388D1 with L. monocytogenes strain EGD-e and examined the gene expression profile of L. monocytogenes inside the vacuolar and cytosolic environments of the host cell by using whole-genome microarray and mutant analyses. We found that approximately 17% of the total genome was mobilized to enable adaptation for intracellular growth. Intracellularly expressed genes showed responses typical of glucose limitation within bacteria, with a decrease in the amount of mRNA encoding enzymes in the central metabolism and a temporal induction of genes involved in alternative-carbon-source utilization pathways and their regulation. Adaptive intracellular gene expression involved genes that are associated with virulence, the general stress response, cell division, and changes in cell wall structure and included many genes with unknown functions. A total of 41 genes were species specific, being absent from the genome of the nonpathogenic Listeria innocua CLIP 11262 strain. We also detected 25 genes that were strain specific, i.e., absent from the genome of the previously sequenced L. monocytogenes F2365 serotype 4b strain, suggesting heterogeneity in the gene pool required for intracellular survival of L. monocytogenes in host cells. Overall, our study provides crucial insights into the strategy of intracellular survival and measures taken by L. monocytogenes to escape the host cell responses.
Insights
Listeria monocytogenes adapts to host cells by altering gene expression, mobilizing 17% of its genome for intracellular growth. This involves changes in metabolism, virulence, and stress response, highlighting its survival strategies.
Area of Science:
- Microbiology
- Molecular Biology
- Infectious Diseases
Background:
- Listeria monocytogenes is a dangerous foodborne pathogen causing invasive infections.
- It possesses the unique ability to invade host cells and reach the cytoplasm.
Purpose of the Study:
- To investigate the gene expression profile of L. monocytogenes during intracellular growth.
- To understand the adaptive mechanisms employed by L. monocytogenes within host cells.
Main Methods:
- Infection of murine macrophage cell line P388D1 with L. monocytogenes strain EGD-e.
- Whole-genome microarray and mutant analyses to examine gene expression.
- Comparison of gene expression in vacuolar and cytosolic environments.
Main Results:
- Approximately 17% of the L. monocytogenes genome is activated for intracellular growth.
- Gene expression indicates adaptation to glucose limitation, with shifts in central metabolism and alternative carbon source utilization.
- Upregulated genes are linked to virulence, stress response, cell division, cell wall changes, and unknown functions.
- Identified 41 species-specific and 25 strain-specific genes, suggesting genomic heterogeneity for intracellular survival.
Conclusions:
- L. monocytogenes employs significant genomic adaptation for intracellular survival.
- The pathogen modifies its metabolism and activates virulence and stress response pathways within host cells.
- Genomic variations contribute to the diverse intracellular survival capabilities of L. monocytogenes strains.
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