Metabolic model guided CRISPRi identifies a central role for phosphoglycerate mutase in Chlamydia trachomatis

Niaz Bahar Chowdhury1, Nick Pokorzynski2, Elizabeth A Rucks2

  • 1Chemical and Biomolecular Engineering, University of Nebraska-Lincoln, Lincoln, Nebraska, USA.

Msystems
|June 28, 2024
PubMed

Insights

Chlamydia trachomatis persistence is a passive response to nutrient starvation, regulated by phosphoglycerate mutase (pgm). This study introduces thermodynamics and enzyme cost as novel tools to understand bacterial persistence mechanisms.

Area of Science:

  • Microbiology
  • Systems Biology
  • Metabolic Engineering

Background:

  • Chlamydia trachomatis serovar L2 (CTL) exhibits a persistence state under nutrient starvation.
  • The mechanisms driving CTL persistence, whether adaptive or passive, remain unclear due to a lack of canonical regulators.
  • Understanding persistence is crucial for developing effective treatment strategies against Chlamydia infections.

Purpose of the Study:

  • To investigate the factors contributing to CTL persistence under nutrient starvation.
  • To differentiate between active and passive response hypotheses for chlamydial persistence.
  • To identify key metabolic regulators involved in the transition to persistence.

Main Methods:

  • Transcriptomic analysis using K-means clustering to identify global transcriptomic rewiring.
  • Reconstruction and contextualization of a genome-scale metabolic model of CTL (iCTL278).
  • Metabolic bottleneck analysis, thermodynamic driving force, and enzyme cost calculations.
  • CRISPRi-driven knockdown of phosphoglycerate mutase (pgm) to validate findings.

Main Results:

  • Transcriptomic data strongly supported a passive response to nutrient starvation in CTL.
  • Metabolic modeling identified phosphoglycerate mutase (pgm) as a key regulator of CTL persistence.
  • Pgm exhibits high thermodynamic driving force and low enzymatic cost.
  • Pgm knockdown significantly impacted CTL persistence, confirming its regulatory role.

Conclusions:

  • Chlamydial persistence is a passive response to nutrient starvation, not an active adaptive mechanism.
  • Phosphoglycerate mutase (pgm) is a critical metabolic regulator controlling the entry into persistence.
  • Thermodynamics and enzyme cost analysis, integrated with systems biology approaches like CRISPRi, offer powerful tools for dissecting complex bacterial behaviors.