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Using Fluorescent Proteins to Visualize and Quantitate Chlamydia Vacuole Growth Dynamics in Living Cells
Published on: October 13, 2015
IncV, a FFAT motif-containing Chlamydia protein, tethers the endoplasmic reticulum to the pathogen-containing vacuole
Rebecca Murray1, Elizabeth Flora1, Charlie Bayne1
1Department of Microbiology, Immunology, and Cancer Biology, University of Virginia, Charlottesville, VA 22908.
Abstract:
Membrane contact sites (MCS) are zones of contact between the membranes of two organelles. At MCS, specific proteins tether the organelles in close proximity and mediate the nonvesicular trafficking of lipids and ions between the two organelles. The endoplasmic reticulum (ER) integral membrane protein VAP is a common component of MCS involved in both tethering and lipid transfer by binding directly to proteins containing a FFAT [two phenylalanines (FF) in an acidic tract (AT)] motif. In addition to maintaining cell homeostasis, MCS formation recently emerged as a mechanism by which intracellular pathogens hijack cellular resources and establish their replication niche. Here, we investigated the mechanism by which the Chlamydia-containing vacuole, termed the inclusion, establishes direct contact with the ER. We show that the Chlamydia protein IncV, which is inserted into the inclusion membrane, displays one canonical and one noncanonical FFAT motif that cooperatively mediated the interaction of IncV with VAP. IncV overexpression was sufficient to bring the ER in close proximity of IncV-containing membranes. Although IncV deletion partially decreased VAP association with the inclusion, it did not suppress the formation of ER-inclusion MCS, suggesting the existence of redundant mechanisms in MCS formation. We propose a model in which IncV acts as one of the primary tethers that contribute to the formation of ER-inclusion MCS. Our results highlight a previously unidentified mechanism of bacterial pathogenesis and support the notion that cooperation of two FFAT motifs may be a common feature of VAP-mediated MCS formation. Chlamydia-host cell interaction therefore constitutes a unique system to decipher the molecular mechanisms underlying MCS formation.
Insights
Chlamydia bacteria use the IncV protein to connect to host cell endoplasmic reticulum membranes, forming membrane contact sites essential for pathogen survival and replication.
Area of Science:
- Cell Biology
- Microbiology
- Pathogenesis
Background:
- Membrane contact sites (MCS) are crucial for cellular homeostasis, mediating lipid and ion transfer between organelles.
- The endoplasmic reticulum (ER) protein VAP, through its FFAT motif, is key in tethering organelles at MCS.
- Intracellular pathogens exploit MCS to establish replication niches within host cells.
Purpose of the Study:
- To investigate how the Chlamydia inclusion establishes direct contact with the host ER.
- To elucidate the role of the Chlamydia protein IncV in ER-inclusion membrane contact site formation.
Main Methods:
- Analysis of IncV protein structure and function, including its FFAT motifs.
- Investigating the interaction between IncV and the ER protein VAP.
- Studying the effect of IncV overexpression and deletion on ER-inclusion MCS formation.
Main Results:
- The Chlamydia protein IncV possesses one canonical and one noncanonical FFAT motif that cooperate to bind VAP.
- IncV overexpression drives ER proximity to IncV-containing membranes.
- While IncV deletion partially reduces VAP association, ER-inclusion MCS formation persists, indicating redundant mechanisms.
Conclusions:
- IncV acts as a primary tether facilitating ER-inclusion MCS formation.
- The cooperative function of two FFAT motifs in VAP-mediated MCS is potentially common.
- Chlamydia-host cell interactions offer a model for studying MCS formation mechanisms in bacterial pathogenesis.
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