Regulation of the Mitochondrion-Fatty Acid Axis for the Metabolic Reprogramming of Chlamydia trachomatis during

Kensuke Shima1, Inga Kaufhold2, Thomas Eder3,4

  • 1Department of Infectious Diseases and Microbiology, University of Lübeck, Lübeck, Germany kensuke.shima@uksh.de.

Mbio
|March 31, 2021
PubMed

Insights

Chlamydia trachomatis, a common STD, can persist during antibiotic treatment. This study reveals how the bacterium reprograms its metabolism using host mitochondria and fatty acid synthesis to survive beta-lactam antimicrobial therapy.

Area of Science:

  • Microbiology
  • Cell Biology
  • Biochemistry

Background:

  • * *Chlamydia trachomatis* infection is the leading cause of bacterial sexually transmitted disease globally.
  • * Antimicrobial therapy is the primary treatment, but bacterial persistence can reduce effectiveness.
  • * Understanding chlamydial persistence mechanisms is crucial for developing effective treatments.

Purpose of the Study:

  • * To elucidate the mechanism by which *C. trachomatis* regulates host signaling and mitochondrial function during antimicrobial treatment.
  • * To investigate the metabolic reprogramming of *C. trachomatis* in response to beta-lactam antimicrobials.
  • * To explore the role of host mitochondria and fatty acid synthesis in chlamydial persistence.

Main Methods:

  • * Analysis of host signal transducer and activator of transcription 3 (STAT3) inactivation.
  • * Measurement of mitochondrial respiration and ATP-citrate lyase activity.
  • * Investigation of metabolic pathways (tricarboxylic acid cycle vs. fatty acid synthesis) in *C. trachomatis*.
  • * Assessment of the impact of inhibiting fatty acid synthesis on chlamydial persistence.

Main Results:

  • * *C. trachomatis* infection leads to STAT3 inactivation, increasing mitochondrial respiration.
  • * During beta-lactam treatment, *C. trachomatis* shifts metabolism to fatty acid synthesis, utilizing host ATP-citrate lyase.
  • * This metabolic switch to fatty acid synthesis is specific to beta-lactam treatment and not observed in IFN-γ-induced persistence.
  • * Inhibition of fatty acid synthesis reduced beta-lactam-induced chlamydial persistence.

Conclusions:

  • * *C. trachomatis* employs a unique metabolic reprogramming strategy involving host mitochondria and fatty acid synthesis to survive beta-lactam antimicrobial therapy.
  • * Targeting host mitochondrial function and fatty acid synthesis pathways presents a potential therapeutic strategy against persistent *C. trachomatis* infections.
  • * The mitochondrion-fatty acid interplay is critical for *C. trachomatis* metabolic adaptation during antimicrobial treatment.

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