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Forward Genetic Approaches in Chlamydia trachomatis
Published on: October 23, 2013
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.
Abstract:
Upon nutrient starvation, Chlamydia trachomatis serovar L2 (CTL) shifts from its normal growth to a non-replicating form, termed persistence. It is unclear if persistence reflects an adaptive response or a lack thereof. To understand this, transcriptomics data were collected for CTL grown under nutrient-replete and nutrient-starved conditions. Applying K-means clustering on transcriptomics data revealed a global transcriptomic rewiring of CTL under stress conditions in the absence of any canonical global stress regulator. This is consistent with previous data that suggested that CTL's stress response is due to a lack of an adaptive response mechanism. To investigate the impact of this on CTL metabolism, we reconstructed a genome-scale metabolic model of CTL (iCTL278) and contextualized it with the collected transcriptomics data. Using the metabolic bottleneck analysis on contextualized iCTL278, we observed that phosphoglycerate mutase (pgm) regulates the entry of CTL to the persistence state. Our data indicate that pgm has the highest thermodynamics driving force and lowest enzymatic cost. Furthermore, CRISPRi-driven knockdown of pgm in the presence or absence of tryptophan revealed the importance of this gene in modulating persistence. Hence, this work, for the first time, introduces thermodynamics and enzyme cost as tools to gain a deeper understanding on CTL persistence.
Importance:
This study uses a metabolic model to investigate factors that contribute to the persistence of Chlamydia trachomatis serovar L2 (CTL) under tryptophan and iron starvation conditions. As CTL lacks many canonical transcriptional regulators, the model was used to assess two prevailing hypotheses on persistence-that the chlamydial response to nutrient starvation represents a passive response due to the lack of regulators or that it is an active response by the bacterium. K-means clustering of stress-induced transcriptomics data revealed striking evidence in favor of the lack of adaptive (i.e., a passive) response. To find the metabolic signature of this, metabolic modeling pin-pointed pgm as a potential regulator of persistence. Thermodynamic driving force, enzyme cost, and CRISPRi knockdown of pgm supported this finding. Overall, this work introduces thermodynamic driving force and enzyme cost as a tool to understand chlamydial persistence, demonstrating how systems biology-guided CRISPRi can unravel complex bacterial phenomena.
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.

