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Updated: May 11, 2026

From Constructs to Crystals – Towards Structure Determination of β-barrel Outer Membrane Proteins
Published on: July 4, 2016
Functional characterization of Burkholderia pseudomallei trimeric autotransporters
Cristine G Campos1, Matthew S Byrd, Peggy A Cotter
1Department of Microbiology and Immunology, University of North Carolina School of Medicine, Chapel Hill, North Carolina, USA.
Abstract:
Burkholderia pseudomallei is a tier 1 select agent and the causative agent of melioidosis, a severe and often fatal disease with symptoms ranging from acute pneumonia and septic shock to a chronic infection characterized by abscess formation in the lungs, liver, and spleen. Autotransporters (ATs) are exoproteins belonging to the type V secretion system family, with many playing roles in pathogenesis. The genome of B. pseudomallei strain 1026b encodes nine putative trimeric AT proteins, of which only four have been described. Using a bioinformatic approach, we annotated putative domains within each trimeric AT protein, excluding the well-studied BimA protein, and found short repeated sequences unique to Burkholderia species, as well as an unexpectedly large proportion of ATs with extended signal peptide regions (ESPRs). To characterize the role of trimeric ATs in pathogenesis, we constructed disruption or deletion mutations in each of eight AT-encoding genes and evaluated the resulting strains for adherence to, invasion of, and plaque formation in A549 cells. The majority of the ATs (and/or the proteins encoded downstream) contributed to adherence to and efficient invasion of A549 cells. Using a BALB/c mouse model of infection, we determined the contributions of each AT to bacterial burdens in the lungs, liver, and spleen. At 48 h postinoculation, only one strain, Bp340::pDbpaC, demonstrated a defect in dissemination and/or survival in the liver, indicating that BpaC is required for wild-type virulence in this model.
Insights
Burkholderia pseudomallei autotransporters (ATs) were investigated for their role in melioidosis. BpaC was identified as essential for bacterial dissemination and survival in a mouse model, highlighting its importance in virulence.
Area of Science:
- Microbiology
- Pathogenesis
- Bacterial Secretion Systems
Background:
- Burkholderia pseudomallei causes melioidosis, a severe disease.
- Autotransporters (ATs) are key virulence factors in many pathogens.
- Eight ATs in B. pseudomallei strain 1026b were previously undescribed.
Purpose of the Study:
- To bioinformatically annotate putative domains of B. pseudomallei ATs.
- To characterize the role of ATs in bacterial adherence, invasion, and pathogenesis.
- To identify specific ATs contributing to B. pseudomallei virulence in a mouse model.
Main Methods:
- Bioinformatic analysis of AT protein domains and signal peptides.
- Construction and characterization of AT gene deletion mutants.
- In vitro assays for cell adherence, invasion, and plaque formation.
- In vivo infection studies using a BALB/c mouse model.
Main Results:
- Unique repetitive sequences and extended signal peptide regions were identified in B. pseudomallei ATs.
- Most ATs contributed to bacterial adherence and invasion of A549 cells.
- Only the BpaC autotransporter mutant showed impaired dissemination and liver colonization in mice.
Conclusions:
- BpaC is crucial for Burkholderia pseudomallei virulence and dissemination in a mouse model.
- Autotransporters play significant roles in bacterial pathogenesis.
- Further investigation into BpaC function is warranted.
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