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Total Protein Extraction and 2-D Gel Electrophoresis Methods for Burkholderia Species
Published on: October 15, 2013
Novel Burkholderia mallei virulence factors linked to specific host-pathogen protein interactions
Vesna Memisević1, Nela Zavaljevski, Rembert Pieper
1Department of Defense Biotechnology High Performance Computing Software Applications Institute, Telemedicine and Advanced Technology Research Center, U.S. Army Medical Research and Materiel Command, Fort Detrick, Maryland 21702;
Abstract:
Burkholderia mallei is an infectious intracellular pathogen whose virulence and resistance to antibiotics makes it a potential bioterrorism agent. Given its genetic origin as a commensal soil organism, it is equipped with an extensive and varied set of adapted mechanisms to cope with and modulate host-cell environments. One essential virulence mechanism constitutes the specialized secretion systems that are designed to penetrate host-cell membranes and insert pathogen proteins directly into the host cell's cytosol. However, the secretion systems' proteins and, in particular, their host targets are largely uncharacterized. Here, we used a combined in silico, in vitro, and in vivo approach to identify B. mallei proteins required for pathogenicity. We used bioinformatics tools, including orthology detection and ab initio predictions of secretion system proteins, as well as published experimental Burkholderia data to initially select a small number of proteins as putative virulence factors. We then used yeast two-hybrid assays against normalized whole human and whole murine proteome libraries to detect and identify interactions among each of these bacterial proteins and host proteins. Analysis of such interactions provided both verification of known virulence factors and identification of three new putative virulence proteins. We successfully created insertion mutants for each of these three proteins using the virulent B. mallei ATCC 23344 strain. We exposed BALB/c mice to mutant strains and the wild-type strain in an aerosol challenge model using lethal B. mallei doses. In each set of experiments, mice exposed to mutant strains survived for the 21-day duration of the experiment, whereas mice exposed to the wild-type strain rapidly died. Given their in vivo role in pathogenicity, and based on the yeast two-hybrid interaction data, these results point to the importance of these pathogen proteins in modulating host ubiquitination pathways, phagosomal escape, and actin-cytoskeleton rearrangement processes.
Insights
Burkholderia mallei virulence factors were identified using bioinformatics and yeast two-hybrid assays. Mutants lacking three key proteins protected mice from lethal infection, revealing their essential roles in pathogenicity.
Area of Science:
- Microbiology
- Pathogen Biology
- Molecular Biology
Background:
- Burkholderia mallei is a dangerous pathogen with significant antibiotic resistance, posing a bioterrorism threat.
- Its virulence relies on specialized secretion systems that deliver bacterial proteins into host cells.
- These secretion systems and their host targets remain largely uncharacterized.
Purpose of the Study:
- To identify novel Burkholderia mallei proteins essential for pathogenicity.
- To understand the molecular mechanisms underlying B. mallei virulence.
Main Methods:
- Combined in silico, in vitro, and in vivo approaches were employed.
- Bioinformatics tools and existing Burkholderia data were used for initial protein selection.
- Yeast two-hybrid assays identified interactions between bacterial and host proteins.
- Insertion mutants were created and tested in a murine aerosol challenge model.
Main Results:
- Three novel putative virulence proteins were identified through yeast two-hybrid screening.
- Mice infected with B. mallei mutants lacking these proteins survived lethal aerosol challenges.
- The identified proteins are crucial for modulating host ubiquitination, phagosomal escape, and actin rearrangement.
Conclusions:
- The identified proteins are essential virulence factors for Burkholderia mallei.
- Targeting these proteins could offer new therapeutic strategies against B. mallei infections.
- This study significantly advances our understanding of B. mallei pathogenesis.
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