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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.
Abstract:
Infection with the obligate intracellular bacterium Chlamydia trachomatis is the most common bacterial sexually transmitted disease worldwide. Since no vaccine is available to date, antimicrobial therapy is the only alternative in C. trachomatis infection. However, changes in chlamydial replicative activity and the occurrence of chlamydial persistence caused by diverse stimuli have been proven to impair treatment effectiveness. Here, we report the mechanism for C. trachomatis regulating host signaling processes and mitochondrial function, which can be used for chlamydial metabolic reprogramming during treatment with β-lactam antimicrobials. Activation of signal transducer and activator of transcription 3 (STAT3) is a well-known host response in various bacterial and viral infections. In C. trachomatis infection, inactivation of STAT3 by host protein tyrosine phosphatases increased mitochondrial respiration in both the absence and presence of β-lactam antimicrobials. However, during treatment with β-lactam antimicrobials, C. trachomatis increased the production of citrate as well as the activity of host ATP-citrate lyase involved in fatty acid synthesis. Concomitantly, chlamydial metabolism switched from the tricarboxylic acid cycle to fatty acid synthesis. This metabolic switch was a unique response in treatment with β-lactam antimicrobials and was not observed in gamma interferon (IFN-γ)-induced persistent infection. Inhibition of fatty acid synthesis was able to attenuate β-lactam-induced chlamydial persistence. Our findings highlight the importance of the mitochondrion-fatty acid interplay for the metabolic reprogramming of C. trachomatis during treatment with β-lactam antimicrobials.IMPORTANCE The mitochondrion generates most of the ATP in eukaryotic cells, and its activity is used for controlling the intracellular growth of Chlamydia trachomatis Furthermore, mitochondrial activity is tightly connected to host fatty acid synthesis that is indispensable for chlamydial membrane biogenesis. Phospholipids, which are composed of fatty acids, are the central components of the bacterial membrane and play a crucial role in the protection against antimicrobials. Chlamydial persistence that is induced by various stimuli is clinically relevant. While one of the well-recognized inducers, β-lactam antimicrobials, has been used to characterize chlamydial persistence, little is known about the role of mitochondria in persistent infection. Here, we demonstrate how C. trachomatis undergoes metabolic reprogramming to switch from the tricarboxylic acid cycle to fatty acid synthesis with promoted host mitochondrial activity in response to treatment with β-lactam antimicrobials.
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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