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Updated: Jan 26, 2026

Reconstitution of Actin-Based Motility with Commercially Available Proteins
Published on: October 28, 2022
Burkholderia pseudomallei BimC Is Required for Actin-Based Motility, Intracellular Survival, and Virulence
Varintip Srinon1,2, Somjit Chaiwattanarungruengpaisan3, Sunee Korbsrisate1
1Department of Immunology, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, Thailand.
Abstract:
The intracellular pathogen Burkholderia pseudomallei, the etiological agent of melioidosis in humans and various animals, is capable of survival and movement within the cytoplasm of host cells by a process known as actin-based motility. The bacterial factor BimA is required for actin-based motility through its direct interaction with actin, and by mediating actin polymerization at a single pole of the bacterium to promote movement both within and between cells. However, little is known about the other bacterial proteins required for this process. Here, we have investigated the role of the bimC gene (bpss1491) which lies immediately upstream of the bimA gene (bpss1492) on the B. pseudomallei chromosome 2. Conserved amongst all B. pseudomallei, B. mallei and B. thailandensis strains sequenced to date, this gene encodes an iron-binding protein with homology to a group of proteins known as the bacterial autotransporter heptosyltransferase (BAHT) family. We have constructed a B. pseudomallei bimC deletion mutant and demonstrate that it is defective in intracellular survival in HeLa cells, but not in J774.1 macrophage-like cells. The bimC mutant is defective in cell to cell spread as demonstrated by ablation of plaque formation in HeLa cells, and by the inability to form multi-nucleated giant cells in J774.1 cells. These phenotypes in intracellular survival and cell to cell spread are not due to the loss of expression and polar localization of the BimA protein on the surface of intracellular bacteria, however they do correlate with an inability of the bacteria to recruit and polymerize actin. Furthermore, we also establish a role for bimC in virulence of B. pseudomallei using a Galleria mellonella larvae model of infection. Taken together, our findings indicate that B. pseudomallei BimC plays an important role in intracellular behavior and virulence of this emerging pathogen.
Insights
Burkholderia pseudomallei BimC is crucial for intracellular survival and cell-to-cell spread by facilitating actin polymerization. This study reveals BimC
Area of Science:
- Microbiology
- Cell Biology
- Pathogenesis
Background:
- Burkholderia pseudomallei causes melioidosis and utilizes actin-based motility for intracellular movement.
- Bacterial factor BimA mediates actin polymerization for motility, but other bacterial factors remain largely uncharacterized.
Purpose of the Study:
- To investigate the role of the gene bimC (bpss1491) in Burkholderia pseudomallei intracellular behavior and virulence.
- To understand the function of the BimC protein, an iron-binding protein homologous to the bacterial autotransporter heptosyltransferase family.
Main Methods:
- Construction and analysis of a Burkholderia pseudomallei bimC deletion mutant.
- Assessment of intracellular survival and cell-to-cell spread in HeLa and J774.1 macrophage-like cells.
- Evaluation of BimA expression and localization, actin recruitment, and Galleria mellonella infection model.
Main Results:
- The bimC mutant showed defective intracellular survival in HeLa cells but not J774.1 cells.
- bimC deletion resulted in impaired cell-to-cell spread, evidenced by reduced plaque formation and lack of multinucleated giant cells.
- These defects correlated with impaired actin recruitment and polymerization, independent of BimA expression or localization.
Conclusions:
- Burkholderia pseudomallei BimC is essential for intracellular survival and cell-to-cell spread.
- BimC plays a critical role in actin recruitment and polymerization, facilitating bacterial intracellular motility.
- BimC contributes significantly to the virulence of Burkholderia pseudomallei.
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