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Updated: Jun 7, 2025

System for Efficacy and Cytotoxicity Screening of Inhibitors Targeting Intracellular Mycobacterium tuberculosis
Published on: April 5, 2017
Netupitant Exhibits Potent Activity on Mycobacterium tuberculosis Persisters
Abstract:
In Mycobacterium tuberculosis (Mtb), persisters are genotypically drug-sensitive bacteria that nonetheless survive antibiotic treatment. Persisters represent a significant challenge to shortening TB treatment and preventing relapse, underscoring the need for new therapeutic strategies. In this study, we screened 2,336 FDA-approved compounds to identify agents that enhance the sterilizing activity of standard anti-TB drugs and prevent the regrowth of persisters. Netupitant (NTP), an FDA-approved antiemetic, emerged as a promising candidate with bacteriostatic activity on its own. However, in combination with isoniazid (INH) and rifampicin (RIF), NTP eliminated viable Mtb cells within 7 days, achieving a >6-log reduction in colony-forming units (CFUs) compared to the 2.5-log reduction observed with INH-RIF alone. NTP also demonstrated broad-spectrum efficacy, enhancing the activity of multiple TB drugs, including ethambutol, moxifloxacin, amikacin, and bedaquiline. Notably, NTP retained its potency under hypoxic and caseum-mimicking conditions, both of which are known to enrich for non-replicating, drug-tolerant cells. Interestingly, under hypoxic conditions, NTP demonstrated strong tuberculocidal activity, achieving an approximate 4-log CFU reduction, whereas high-dose INH-RIF was ineffective. Transcriptomic analysis revealed that NTP primarily disrupts cellular bioenergetics, with significant downregulation observed in activities associated with the electron transport chain, oxidative phosphorylation, NADH-ubiquinone oxidoreductase, succinate dehydrogenase, and ATP synthesis. While further studies are required to decipher the mechanism of action and resistance profile of NTP, and to assess its in vivo efficacy, these findings underscore its potential as a promising adjunct to existing TB therapies.
Insights
Netupitant, an antiemetic drug, effectively eliminates persistent Mycobacterium tuberculosis cells when combined with standard TB drugs. This combination therapy shows promise for shortening treatment and preventing relapse in tuberculosis patients.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Persistent Mycobacterium tuberculosis (Mtb) are drug-tolerant bacteria that survive antibiotic treatment, posing a challenge to tuberculosis therapy.
- New strategies are needed to target persisters, shorten treatment durations, and prevent relapse.
Purpose of the Study:
- To screen FDA-approved compounds for agents that enhance the sterilizing activity of standard anti-TB drugs.
- To identify compounds that prevent the regrowth of Mtb persisters.
Main Methods:
- Screened 2,336 FDA-approved compounds for activity against Mtb persisters.
- Assessed the efficacy of promising candidates in combination with standard anti-TB drugs (isoniazid, rifampicin).
- Evaluated drug activity under standard, hypoxic, and caseum-mimicking conditions.
- Performed transcriptomic analysis to investigate the mechanism of action.
Main Results:
- Netupitant (NTP), an antiemetic, demonstrated bacteriostatic activity and enhanced the tuberculocidal effect of isoniazid and rifampicin, achieving >6-log reduction in CFUs.
- NTP showed broad-spectrum efficacy, enhancing multiple TB drugs, and retained potency under hypoxic and caseum-mimicking conditions.
- Transcriptomic analysis indicated NTP disrupts Mtb cellular bioenergetics, downregulating the electron transport chain and ATP synthesis.
Conclusions:
- Netupitant is a promising candidate as an adjunct therapy to enhance the sterilizing activity of current TB drugs.
- NTP's ability to target persisters, especially under challenging conditions, offers potential for improved tuberculosis treatment strategies.
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