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Cholesterol and host cell surface proteins contribute to cell-cell fusion induced by the Burkholderia type VI
Liam Whiteley1, Maria Haug1, Kristina Klein1
1Interfaculty Institute of Microbiology and Infection Medicine, University of Tuebingen, Tuebingen, Germany.
Abstract:
Following escape into the cytoplasm of host cells, Burkholderia pseudomallei and the related species Burkholderia thailandensis employ the type VI secretion system 5 (T6SS-5) to induce plasma membrane fusion with an adjacent host cell. This process leads to the formation of multinucleated giant cells and facilitates bacterial access to an uninfected host cell in a direct manner. Despite its importance in virulence, the mechanism of the T6SS-5 and the role of host cell factors in cell-cell fusion remain elusive. To date, the T6SS-5 is the only system of bacterial origin known to induce host-cell fusion. To gain insight into the nature of T6SS-5-stimulated membrane fusion, we investigated the contribution of cholesterol and proteins exposed on the host cell surface, which were shown to be critically involved in virus-mediated giant cell formation. In particular, we analyzed the effect of host cell surface protein and cholesterol depletion on the formation of multinucleated giant cells induced by B. thailandensis. Acute protease treatment of RAW264.7 macrophages during infection with B. thailandensis followed by agarose overlay assays revealed a strong reduction in the number of cell-cell fusions compared with EDTA treated cells. Similarly, proteolytic treatment of specifically infected donor cells or uninfected recipient cells significantly decreased multinucleated giant cell formation. Furthermore, modulating host cell cholesterol content by acute cholesterol depletion from cellular membranes by methyl- β-cyclodextrin treatment or exogenous addition of cholesterol impaired the ability of B. thailandensis to induce cell-cell fusions. The requirement of physiological cholesterol levels suggests that the membrane organization or mechanical properties of the lipid bilayer influence the fusion process. Altogether, our data suggest that membrane fusion induced by B. pseudomallei and B. thailandensis involves a complex interplay between the T6SS-5 and the host cell.
Insights
Burkholderia bacteria use a specialized secretion system to fuse host cells, forming giant cells. This study reveals host cell surface proteins and cholesterol are crucial for this bacterial invasion mechanism.
Area of Science:
- Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Burkholderia species utilize the type VI secretion system 5 (T6SS-5) to induce host cell fusion after intracellular invasion.
- This cell-cell fusion creates multinucleated giant cells, facilitating bacterial spread to uninfected host cells.
- The precise mechanisms of T6SS-5-mediated fusion and the role of host factors remain largely unknown.
Purpose of the Study:
- To investigate the involvement of host cell surface proteins and cholesterol in T6SS-5-induced cell-cell fusion.
- To elucidate the contribution of these host factors to the formation of multinucleated giant cells by Burkholderia thailandensis.
Main Methods:
- RAW264.7 macrophages were infected with B. thailandensis.
- Protease treatment was used to assess the role of surface proteins in cell fusion.
- Cholesterol levels were modulated using methyl-β-cyclodextrin and exogenous cholesterol to evaluate its impact on fusion.
Main Results:
- Proteolytic removal of host cell surface proteins significantly reduced multinucleated giant cell formation.
- Depletion or addition of cholesterol altered the efficiency of B. thailandensis-induced cell-cell fusion.
- These findings indicate that host cell surface proteins and cholesterol are critical for T6SS-5-mediated membrane fusion.
Conclusions:
- Host cell surface proteins and cholesterol play essential roles in the membrane fusion process induced by Burkholderia species.
- The mechanical properties and organization of the host cell membrane, influenced by cholesterol, are important for T6SS-5 function.
- Bacterial-induced cell-cell fusion involves a sophisticated interaction between the T6SS-5 and host cell components.
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