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Purification of Pathogen Vacuoles from Legionella-infected Phagocytes
Published on: June 19, 2012
Purification of pathogen vacuoles from Legionella-infected phagocytes
Christine Hoffmann1, Ivo Finsel, Hubert Hilbi
1Max von Pettenkofer-Institut, Ludwig-Maximilians-Universität.
Abstract:
The opportunistic pathogen Legionella pneumophila is an amoeba-resistant bacterium, which also replicates in alveolar macrophages thus causing the severe pneumonia "Legionnaires' disease"(1). In protozoan and mammalian phagocytes, L. pneumophila employs a conserved mechanism to form a specific, replication-permissive compartment, the "Legionella-containing vacuole" (LCV). LCV formation requires the bacterial Icm/Dot type IV secretion system (T4SS), which translocates as many as 275 "effector" proteins into host cells. The effectors manipulate host proteins as well as lipids and communicate with secretory, endosomal and mitochondrial organelles(2-4). The formation of LCVs represents a complex, robust and redundant process, which is difficult to grasp in a reductionist manner. An integrative approach is required to comprehensively understand LCV formation, including a global analysis of pathogen-host factor interactions and their temporal and spatial dynamics. As a first step towards this goal, intact LCVs are purified and analyzed by proteomics and lipidomics. The composition and formation of pathogen-containing vacuoles has been investigated by proteomic analysis using liquid chromatography or 2-D gel electrophoresis coupled to mass-spectrometry. Vacuoles isolated from either the social soil amoeba Dictyostelium discoideum or mammalian phagocytes harboured Leishmania(5), Listeria(6), Mycobacterium(7), Rhodococcus(8), Salmonella(9) or Legionella spp.(10). However, the purification protocols employed in these studies are time-consuming and tedious, as they require e.g. electron microscopy to analyse LCV morphology, integrity and purity. Additionally, these protocols do not exploit specific features of the pathogen vacuole for enrichment. The method presented here overcomes these limitations by employing D. discoideum producing a fluorescent LCV marker and by targeting the bacterial effector protein SidC, which selectively anchors to the LCV membrane by binding to phosphatidylinositol 4-phosphate (PtdIns(4)P)(3,11) . LCVs are enriched in a first step by immuno-magnetic separation using an affinity-purified primary antibody against SidC and a secondary antibody coupled to magnetic beads, followed in a second step by a classical Histodenz density gradient centrifugation(12,13) (Fig. 1). A proteome study of isolated LCVs from D. discoideum revealed more than 560 host cell proteins, including proteins associated with phagocytic vesicles, mitochondria, ER and Golgi, as well as several GTPases, which have not been implicated in LCV formation before(13). LCVs enriched and purified with the protocol outlined here can be further analyzed by microscopy (immunofluorescence, electron microscopy), biochemical methods (Western blot) and proteomic or lipidomic approaches.
Insights
Legionella pneumophila forms a unique vacuole (LCV) using a type IV secretion system. A new method purifies LCVs for proteomic analysis, revealing over 560 host proteins involved in LCV formation.
Area of Science:
- Microbiology
- Cell Biology
- Pathogen-Host Interactions
Background:
- Legionella pneumophila causes Legionnaires' disease by replicating within host cells.
- The bacterium forms a specialized compartment, the Legionella-containing vacuole (LCV), essential for its survival.
- LCV formation relies on the type IV secretion system (T4SS) and numerous bacterial effector proteins.
Purpose of the Study:
- To develop an improved method for purifying intact Legionella-containing vacuoles (LCVs).
- To analyze the proteomic and lipidomic composition of LCVs.
- To gain a comprehensive understanding of LCV formation and host factor interactions.
Main Methods:
- Utilized Dictyostelium discoideum engineered to produce a fluorescent LCV marker.
- Employed immuno-magnetic separation targeting the bacterial effector protein SidC, which binds to phosphatidylinositol 4-phosphate (PtdIns(4)P).
- Followed magnetic separation with Histodenz density gradient centrifugation for LCV enrichment and purification.
Main Results:
- Successfully purified intact LCVs using the novel method.
- Proteomic analysis identified over 560 host cell proteins associated with LCVs.
- Discovered novel host proteins, including GTPases, implicated in LCV formation.
Conclusions:
- The developed purification protocol overcomes limitations of previous methods.
- The findings provide new insights into the complex molecular machinery governing LCV formation.
- The purified LCVs are suitable for further multi-omics and biochemical analyses.
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