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Method for the Isolation of Francisella tularensis Outer Membranes
Published on: June 29, 2010
Francisella tularensis enters macrophages via a novel process involving pseudopod loops
Daniel L Clemens1, Bai-Yu Lee, Marcus A Horwitz
1Division of Infectious Diseases, Dept. of Medicine, UCLA School of Medicine, CHS 37-121, 10833 LeConte Ave., Los Angeles, CA 90095-1688, USA. dclemens@mednet.ucla.edu
Abstract:
Intracellular bacterial pathogens employ a variety of strategies to invade their eukaryotic host cells. From an ultrastructural standpoint, the processes that bacteria employ to invade their host cells include conventional phagocytosis, coiling phagocytosis, and ruffling/triggered macropinocytosis. In this paper, we describe a novel process by which Francisella tularensis, the agent of tularemia, enters host macrophages. F. tularensis is a remarkably infectious facultative intracellular bacterial parasite--as few as 10 bacteria can cause life-threatening disease in humans. However, the ultrastructure of its uptake and the receptor mechanisms that mediate its uptake have not been reported previously. We have used fluorescence microscopy and electron microscopy to examine the adherence and uptake of a virulent recent clinical isolate of F. tularensis, subspecies tularensis, and the live vaccine strain (LVS), subspecies holarctica, by human macrophages. We show here that both strains of F. tularensis enter human macrophages by a novel process of engulfment within asymmetric, spacious pseudopod loops, a process that differs ultrastructurally from all previously described uptake mechanisms. We demonstrate also that adherence and uptake of F. tularensis by macrophages is strongly dependent upon complement receptors and upon serum with intact complement factor C3 and that uptake requires actin microfilaments. These findings have significant implications for understanding the intracellular biology and virulence of this extremely infectious pathogen.
Insights
Francisella tularensis invades macrophages via a novel pseudopod loop engulfment, distinct from other bacterial uptake mechanisms. This process relies on complement receptors and actin, crucial for understanding tularemia pathogenesis.
Area of Science:
- Microbiology
- Cell Biology
- Immunology
Background:
- Intracellular bacterial pathogens utilize diverse mechanisms to invade host cells.
- Francisella tularensis (agent of tularemia) is a highly infectious facultative intracellular bacterium.
- The specific ultrastructure and receptor mechanisms of F. tularensis uptake remain largely uncharacterized.
Purpose of the Study:
- To elucidate the novel process of F. tularensis entry into host macrophages.
- To identify the ultrastructural mechanisms and receptor dependencies of F. tularensis uptake.
Main Methods:
- Utilized fluorescence and electron microscopy to observe F. tularensis adherence and uptake by human macrophages.
- Examined both virulent F. tularensis subspecies tularensis and the live vaccine strain (LVS).
Main Results:
- F. tularensis enters human macrophages through a novel engulfment process involving asymmetric pseudopod loops.
- This uptake mechanism is ultrastructurally distinct from previously known bacterial invasion strategies.
- Macrophage adherence and uptake are dependent on complement receptors, intact complement factor C3, and actin microfilaments.
Conclusions:
- Identified a unique mechanism of host cell entry for F. tularensis.
- Highlighted the critical roles of complement receptors and actin in F. tularensis invasion.
- Findings provide insights into the intracellular biology and virulence of this significant pathogen.
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