Legionella‐ and host‐driven lipid flux at LCV‐ER membrane contact sites promotes vacuole remodeling

Author:

Vormittag Simone1,Hüsler Dario1,Haneburger Ina1,Kroniger Tobias2ORCID,Anand Aby3,Prantl Manuel1,Barisch Caroline3,Maaß Sandra2,Becher Dörte2ORCID,Letourneur François4ORCID,Hilbi Hubert1ORCID

Affiliation:

1. Institute of Medical Microbiology University of Zürich Zürich Switzerland

2. Institute of Microbiology University of Greifswald Greifswald Germany

3. Division of Molecular Infection Biology and Center for Cellular Nanoanalytics University of Osnabrück Osnabrück Germany

4. Laboratory of Pathogen Host Interactions Université de Montpellier, CNRS, INSERM Montpellier France

Abstract

AbstractLegionella pneumophila replicates in macrophages and amoeba within a unique compartment, the Legionella‐containing vacuole (LCV). Hallmarks of LCV formation are the phosphoinositide lipid conversion from PtdIns(3)P to PtdIns(4)P, fusion with ER‐derived vesicles and a tight association with the ER. Proteomics of purified LCVs indicate the presence of membrane contact sites (MCS) proteins possibly implicated in lipid exchange. Using dually fluorescence‐labeled Dictyostelium discoideum amoeba, we reveal that VAMP‐associated protein (Vap) and the PtdIns(4)P 4‐phosphatase Sac1 localize to the ER, and Vap also localizes to the LCV membrane. Furthermore, Vap as well as Sac1 promote intracellular replication of L. pneumophila and LCV remodeling. Oxysterol binding proteins (OSBPs) preferentially localize to the ER (OSBP8) or the LCV membrane (OSBP11), respectively, and restrict (OSBP8) or promote (OSBP11) bacterial replication and LCV expansion. The sterol probes GFP‐D4H* and filipin indicate that sterols are rapidly depleted from LCVs, while PtdIns(4)P accumulates. In addition to Sac1, the PtdIns(4)P‐subverting L. pneumophila effector proteins LepB and SidC also support LCV remodeling. Taken together, the Legionella‐ and host cell‐driven PtdIns(4)P gradient at LCV‐ER MCSs promotes Vap‐, OSBP‐ and Sac1‐dependent pathogen vacuole maturation.

Funder

Bundesministerium für Bildung und Forschung

Centre National de la Recherche Scientifique

Deutsche Forschungsgemeinschaft

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Université de Montpellier

Publisher

Springer Science and Business Media LLC

Subject

Genetics,Molecular Biology,Biochemistry

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