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Using Fluorescent Proteins to Visualize and Quantitate Chlamydia Vacuole Growth Dynamics in Living Cells
Published on: October 13, 2015
Development of a Proximity Labeling System to Map the Chlamydia trachomatis Inclusion Membrane
Elizabeth A Rucks1, Macy G Olson1, Lisa M Jorgenson1
1Division of Basic Biomedical Sciences, Sanford School of Medicine, The University of South Dakota Vermillion, SD, USA.
Abstract:
Chlamydia grows within a membrane-bound vacuole termed an inclusion. The cellular processes that support the biogenesis and integrity of this pathogen-specified parasitic organelle are not understood. Chlamydia secretes integral membrane proteins called Incs that insert into the chlamydial inclusion membrane (IM). Incs contain at least two hydrophobic transmembrane domains flanked by termini, which vary in size and are exposed to the host cytosol. In addition, Incs are temporally expressed during the chlamydial developmental cycle. Data examining Inc function are limited because of (i) the difficulty in working with hydrophobic proteins and (ii) the inherent fragility of the IM. We hypothesize that Incs function collaboratively to maintain the integrity of the chlamydial inclusion with small Incs organizing the IM and larger Incs interfacing with host cell machinery. To study this hypothesis, we have adapted a proximity-labeling strategy using APEX2, a mutant soybean ascorbate peroxidase that biotinylates interacting and proximal proteins within minutes in the presence of H2O2 and its exogenous substrate, biotin-phenol. We successfully expressed, from an inducible background, APEX2 alone, or fusion proteins of IncATM (TM = transmembrane domain only), IncA, and IncF with APEX2 in Chlamydia trachomatis serovar L2. IncF-APEX2, IncA -APEX2, and IncA-APEX2 localized to the IM whereas APEX2, lacking a secretion signal, remained associated with the bacteria. We determined the impact of overexpression on inclusion diameter, plasmid stability, and Golgi-derived sphingomyelin acquisition. While there was an overall impact of inducing construct expression, IncF-APEX2 overexpression most negatively impacted these measurements. Importantly, Inc-APEX2 expression in the presence of biotin-phenol resulted in biotinylation of the IM. These data suggest that Inc expression is regulated to control optimal IM biogenesis. We subsequently defined lysis conditions that solubilized known Incs and were compatible with pulldown conditions. Importantly, we have created powerful tools to allow direct examination of the dynamic composition of the IM, which will provide novel insights into key interactions that promote chlamydial growth and development within the inclusion.
Insights
Chlamydia
Area of Science:
- Microbiology
- Cell Biology
- Molecular Biology
Background:
- Chlamydia develops within a unique vacuole called an inclusion.
- The biogenesis and maintenance of this pathogen-specific organelle are poorly understood.
- Integral membrane proteins (Incs) secreted by Chlamydia are crucial for inclusion membrane (IM) function.
Purpose of the Study:
- To investigate the collaborative functions of Incs in maintaining chlamydial inclusion integrity.
- To develop novel methods for studying the dynamic composition of the IM.
- To test the hypothesis that Incs organize the IM and interact with host cell machinery.
Main Methods:
- Adapted a proximity-labeling strategy using APEX2 (a mutant soybean ascorbate peroxidase) for biotinylation of proteins near the IM.
- Expressed APEX2 fusion proteins with various Inc proteins (IncA, IncF) in Chlamydia trachomatis.
- Assessed the impact of Inc overexpression on inclusion characteristics and analyzed biotinylated proteins.
Main Results:
- Inc-APEX2 fusion proteins localized to the chlamydial inclusion membrane, while APEX2 alone remained bacterial.
- Overexpression of IncF-APEX2 significantly impacted inclusion diameter, plasmid stability, and sphingomyelin acquisition.
- Biotinylation of the IM was achieved upon Inc-APEX2 expression and substrate addition, confirming the method's efficacy.
Conclusions:
- The study successfully developed and validated tools for examining the chlamydial IM proteome.
- Inc expression appears to be regulated to ensure optimal IM biogenesis and chlamydial development.
- These findings provide novel insights into the interactions governing chlamydial growth within the host cell.

