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Live-Cell Forward Genetic Approach to Identify and Isolate Developmental Mutants in Chlamydia trachomatis
Published on: June 10, 2020
Modulation of Host Cell Metabolism by Chlamydia trachomatis
Marion Rother1,2,3, Ana Rita Teixeira da Costa3, Rike Zietlow3
1Steinbeis Innovation Center for Systems Biomedicine, 14612 Berlin-Falkensee, Germany.
Abstract:
Propagation of the intracellular bacterial pathogen Chlamydia trachomatis is strictly bound to its host cells. The bacterium has evolved by minimizing its genome size at the cost of being completely dependent on its host. Many of the vital nutrients are synthesized only by the host, and this has complex implications. Recent advances in loss-of-function analyses and the metabolomics of human infected versus noninfected cells have provided comprehensive insight into the molecular changes that host cells undergo during the stage of infection. Strikingly, infected cells acquire a stage of high metabolic activity, featuring distinct aspects of the Warburg effect, a condition originally assigned to cancer cells. This condition is characterized by aerobic glycolysis and an accumulation of certain metabolites, altogether promoting the synthesis of crucial cellular building blocks, such as nucleotides required for DNA and RNA synthesis. The altered metabolic program enables tumor cells to rapidly proliferate as well as C. trachomatis-infected cells to feed their occupants and still survive. This program is largely orchestrated by a central control board, the tumor suppressor protein p53. Its downregulation in C. trachomatis-infected cells or mutation in cancer cells not only alters the metabolic state of cells but also conveys the prevention of programmed cell death involving mitochondrial pathways. While this points toward common features in the metabolic reprogramming of infected and rapidly proliferating cells, it also forwards novel treatment options against chronic intracellular infections involving well-characterized host cell targets and established drugs.
Insights
Chlamydia trachomatis infection reprograms host cell metabolism, inducing Warburg effect-like aerobic glycolysis. This metabolic shift, controlled by p53, supports bacterial survival and proliferation, offering new therapeutic targets.
Area of Science:
- Microbiology
- Cell Biology
- Metabolic Engineering
Background:
- * Chlamydia trachomatis is an obligate intracellular bacterium dependent on host cells for survival.
- * Host cell metabolism is significantly altered during C. trachomatis infection.
- * Understanding these metabolic changes is crucial for developing new treatments.
Purpose of the Study:
- * To investigate the metabolic reprogramming of host cells during C. trachomatis infection.
- * To identify common metabolic pathways between infected cells and cancer cells.
- * To explore potential therapeutic targets for chronic intracellular infections.
Main Methods:
- * Loss-of-function analyses.
- * Metabolomics of infected and non-infected human cells.
- * Analysis of the role of tumor suppressor protein p53.
Main Results:
- * Infected cells exhibit high metabolic activity, including aerobic glycolysis (Warburg effect).
- * This metabolic state promotes synthesis of nucleotides for DNA/RNA synthesis.
- * Downregulation of p53 in infected cells alters metabolism and prevents cell death.
Conclusions:
- * C. trachomatis infection induces a metabolic program similar to cancer cells.
- * p53 plays a key role in orchestrating this metabolic reprogramming.
- * Host cell targets and existing drugs may offer novel treatment strategies for chlamydial infections.
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