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Published on: July 28, 2015
Co-option of endocytic functions of cellular caveolae by pathogens
1Department of Pathology and Microbiology, Duke University Medical Center, Durham, NC 27710, USA.
Abstract:
It is increasingly becoming clear that various immune cells are infected by the very pathogens that they are supposed to attack. Although many mechanisms for microbial entry exist, it appears that a common route of entry shared by certain bacteria, viruses and parasites involves cellular lipid-rich microdomains sometimes called caveolae. These cellular entities, which are characterized by their preferential accumulation of glycosylphosphatidylinositol (GPI)-anchored molecules, cholesterol and various glycolipids, and a distinct protein (caveolin), are present in many effector cells of the immune system including neutrophils, macrophages, mast cells and dendritic cells. These structures have an innate capacity to endocytoze various ligands and traffic them to different intracellular sites and sometimes, back to the extracellular cell surface. Because caveolae do not typically fuse with lysosomes, the ligands borne by caveolar vesicles are essentially intact, which is in marked contrast to ligands endocytozed via the classical endosome-lysosome pathway. A number of microbes or their exotoxins co-opt the unique features of caveolae to enter and traffic, without any apparent loss of viability and function, to different sites within immune and other host cells. In spite of their wide disparity in size and other structural attributes, we predict that a common feature among caveolae-utilizing pathogens and toxins is that their cognate receptor(s) are localized within plasmalemmal caveolae of the host cell.
Insights
Pathogens like bacteria, viruses, and parasites exploit cellular caveolae, lipid-rich microdomains in immune cells, for entry. This pathway protects microbes from degradation, allowing intact entry into host cells.
Area of Science:
- Cell Biology
- Immunology
- Microbiology
Background:
- Immune cells are susceptible to infection by pathogens they target.
- Pathogens utilize various mechanisms to enter host cells.
Purpose of the Study:
- To investigate the role of cellular caveolae in pathogen entry into immune cells.
- To identify common entry mechanisms for diverse microbes and toxins.
Main Methods:
- Analysis of microbial entry routes.
- Characterization of caveolae structure and function.
- Review of existing literature on pathogen-host interactions.
Main Results:
- Caveolae, lipid-rich microdomains, serve as a common entry point for bacteria, viruses, and parasites into immune cells.
- Caveolae facilitate intact microbial entry, bypassing lysosomal degradation.
- Pathogens and toxins co-opt caveolae for intracellular trafficking within host cells.
Conclusions:
- Caveolae-mediated entry is a conserved mechanism for various pathogens and toxins.
- Pathogen receptors are likely localized within plasmalemmal caveolae.
- Understanding this pathway is crucial for developing novel therapeutic strategies against infections.
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