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Published on: September 27, 2018
Burkholderia cepacia complex isolates survive intracellularly without replication within acidic vacuoles of
Julie Lamothe1, Sandra Thyssen, Miguel A Valvano
1Department of Microbiology and Immunology, University of Western Ontario, London, Ontario, N6A 5C1, Canada.
Abstract:
We have previously demonstrated that isolates of the Burkholderia cepacia complex can survive intracellularly in murine macrophages and in free-living Acanthamoeba. In this work, we show that the clinical isolates B. vietnamiensis strain CEP040 and B. cenocepacia H111 survived but did not replicate within vacuoles of A. polyphaga. B. cepacia-containing vacuoles accumulated the fluid phase marker Lysosensor Blue and displayed strong blue fluorescence, indicating that they had low pH. In contrast, the majority of intracellular bacteria within amoebae treated with the V-ATPse inhibitor bafilomycin A1 localized in vacuoles that did not fluoresce with Lysosensor Blue. Experiments using bacteria fluorescently labelled with chloromethylfluorescein diacetate demonstrated that intracellular bacteria remained viable for at least 24 h. In contrast, Escherichia coli did not survive within amoebae after 2 h post infection. Furthermore, intracellular B. vietnamiensis CEP040 retained green fluorescent protein within the bacterial cytoplasm, while this protein rapidly escaped from the cytosol of phagocytized heat-killed bacteria into the vacuolar lumen. Transmission electron microscopy analysis confirmed that intracellular Burkholderia cells were structurally intact. In addition, both Legionella pneumophila- and B. vietnamiensis-containing vacuoles did not accumulate cationized ferritin, a compound that localizes within the lysosome. Thus, our observations support the notion that B. cepacia complex isolates can use amoebae as a reservoir in the environment by surviving without intracellular replication within an acidic vacuole that is distinct from the lysosomal compartment.
Insights
Burkholderia cepacia complex bacteria survive within Acanthamoeba, using acidic vacuoles distinct from lysosomes as a potential environmental reservoir. This survival mechanism highlights their resilience outside of host cells.
Area of Science:
- Microbiology
- Environmental Science
- Cell Biology
Background:
- The Burkholderia cepacia complex (BCC) comprises opportunistic pathogens known for environmental persistence.
- Previous studies showed BCC survival within macrophages and Acanthamoeba.
Purpose of the Study:
- To investigate the intracellular survival mechanisms of BCC isolates, specifically B. vietnamiensis CEP040 and B. cenocepacia H111, within Acanthamoeba polyphaga.
- To determine if these bacteria replicate and characterize the nature of the vacuole they inhabit.
Main Methods:
- Infection of Acanthamoeba polyphaga with BCC isolates (B. vietnamiensis CEP040, B. cenocepacia H111) and Escherichia coli.
- Use of fluorescent markers (Lysosensor Blue, chloromethylfluorescein diacetate) and inhibitors (bafilomycin A1) to assess vacuole pH and bacterial viability.
- Transmission electron microscopy and cationized ferritin labeling to analyze vacuole structure and lysosomal association.
Main Results:
- BCC isolates survived intracellularly in A. polyphaga but did not replicate.
- Intracellular vacuoles containing BCC exhibited low pH, distinct from lysosomes, as indicated by Lysosensor Blue accumulation and lack of cationized ferritin uptake.
- BCC maintained viability for at least 24 hours, unlike E. coli, and retained intracellular integrity.
Conclusions:
- Amoebae serve as a potential environmental reservoir for BCC.
- BCC survives within Acanthamoeba by residing in acidic vacuoles that avoid lysosomal fusion and degradation.
- The lack of replication suggests a dormant or survival-focused state within the amoebal host.
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