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.

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.