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Updated: Jan 27, 2026

Separation and Fractionation of Culture Filtrate Proteins (CFPs) from Mycobacterium tuberculosis
Published on: July 11, 2025
Gut Microbiota Metabolite Indole Propionic Acid Targets Tryptophan Biosynthesis in Mycobacterium tuberculosis
Dereje Abate Negatu1,2, Yoshiyuki Yamada1, Yu Xi3
1Department of Medicine, Yong Loo Lin School of Medicine, National University of Singapore, Singapore, Republic of Singapore.
Abstract:
Indole propionic acid (IPA), produced by the gut microbiota, is active against Mycobacterium tuberculosisin vitro and in vivo However, its mechanism of action is unknown. IPA is the deamination product of tryptophan (Trp) and thus a close structural analog of this essential aromatic amino acid. De novo Trp biosynthesis in M. tuberculosis is regulated through feedback inhibition: Trp acts as an allosteric inhibitor of anthranilate synthase TrpE, which catalyzes the first committed step in the Trp biosynthesis pathway. Hence, we hypothesized that IPA may mimic Trp as an allosteric inhibitor of TrpE and exert its antimicrobial effect by blocking synthesis of Trp at the TrpE catalytic step. To test our hypothesis, we carried out metabolic, chemical rescue, genetic, and biochemical analyses. Treatment of mycobacteria with IPA inhibited growth and reduced the intracellular level of Trp, an effect abrogated upon supplementation of Trp in the medium. Missense mutations at the allosteric Trp binding site of TrpE eliminated Trp inhibition and caused IPA resistance. In conclusion, we have shown that IPA blocks Trp biosynthesis in M. tuberculosis via inhibition of TrpE by mimicking the physiological allosteric inhibitor of this enzyme.IMPORTANCE New drugs against tuberculosis are urgently needed. The tryptophan (Trp) analog indole propionic acid (IPA) is the first antitubercular metabolite produced by human gut bacteria. Here, we show that this antibiotic blocks Trp synthesis, an in vivo essential biosynthetic pathway in M. tuberculosis Intriguingly, IPA acts by decoupling a bacterial feedback regulatory mechanism: it mimics Trp as allosteric inhibitor of anthranilate synthase, thereby switching off Trp synthesis regardless of intracellular Trp levels. The identification of IPA's target paves the way for the discovery of more potent TrpE ligands employing rational, target-based lead optimization.
Insights
Indole propionic acid (IPA), a gut bacteria metabolite, inhibits Mycobacterium tuberculosis growth by blocking tryptophan synthesis. It acts as an allosteric inhibitor of anthranilate synthase (TrpE), revealing a new drug target for tuberculosis.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Indole propionic acid (IPA), produced by gut microbiota, exhibits activity against Mycobacterium tuberculosis.
- The mechanism of action for IPA's antitubercular effect remains largely unknown.
- Tryptophan (Trp) biosynthesis in M. tuberculosis is regulated by feedback inhibition, with Trp inhibiting anthranilate synthase (TrpE).
Purpose of the Study:
- To investigate the hypothesis that IPA inhibits M. tuberculosis by mimicking Trp as an allosteric inhibitor of TrpE.
- To elucidate the molecular mechanism by which IPA exerts its antimicrobial effect against M. tuberculosis.
Main Methods:
- Metabolic, chemical rescue, genetic, and biochemical analyses were performed.
- Mycobacteria were treated with IPA, and intracellular Trp levels were measured.
- Mutations were introduced into the allosteric Trp binding site of TrpE to assess IPA resistance.
Main Results:
- IPA treatment inhibited mycobacterial growth and reduced intracellular Trp levels.
- Supplementation with Trp abrogated the growth inhibition and Trp reduction caused by IPA.
- Missense mutations in the TrpE allosteric site conferred IPA resistance and abolished Trp inhibition.
Conclusions:
- IPA inhibits Trp biosynthesis in M. tuberculosis by acting as an allosteric inhibitor of TrpE.
- IPA mimics the physiological allosteric inhibitor of TrpE, effectively blocking Trp synthesis.
- Targeting TrpE with novel ligands presents a promising strategy for developing new anti-tuberculosis drugs.
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