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The pH gradient contributes to persistence in Mycobacterium tuberculosis
David Sherman1, Hassan Eldesouky1, Kristin Adams1
1University of Washington.
Abstract:
Tuberculosis (TB) remains difficult to cure due in part to poorly defined drug-tolerant persister cells formed by Mycobacterium tuberculosis (Mtb), which survive antibiotic treatment without evidence of genetic resistance. To better de ne this phenotype, we screened 2,336 FDA-approved drugs for compounds that target persistence. Unexpectedly, we identified a strong inducer of drug tolerance -- the antiparasitic niclosamide (NCA), which is known to disrupt proton motive force. In contrast to earlier reports that it harbors promising anti-TB activity, we found that NCA protected Mtb from bactericidal doses of isoniazid, rifampicin, and other standard TB drugs. Investigating further, we showed that disruption of the pH gradient and consequent intracellular acidification is needed to induce tolerance, while disruption of membrane potential is not, and also that protection is tunable by external pH Transcriptomic analysis of these chemically-induced persister (CIP) cells implicated specific genes in this phenotype, and targeted knockdowns confirmed roles for three genes in either promoting or mitigating the tolerance state. These findings highlight that chemical disruption of the pH gradient is a facile and rapid means to induce drug tolerance, offering a potentially useful tool to probe persister biology in TB and other infectious diseases.
Insights
Drug-tolerant tuberculosis (TB) persister cells are hard to eliminate. Researchers found niclosamide (NCA) induces TB drug tolerance by disrupting the pH gradient, offering a new tool to study persister cells.
Area of Science:
- Microbiology
- Drug Discovery
- Molecular Biology
Background:
- Tuberculosis (TB) treatment is challenging due to drug-tolerant persister cells of *Mycobacterium tuberculosis* (Mtb).
- These persister cells survive antibiotics without genetic resistance, complicating eradication efforts.
Purpose of the Study:
- To identify FDA-approved drugs targeting TB persister cells.
- To investigate the mechanism by which niclosamide (NCA) affects Mtb drug tolerance.
Main Methods:
- Screened 2,336 FDA-approved drugs for compounds affecting Mtb persistence.
- Investigated the role of pH gradient and membrane potential in NCA-induced tolerance.
- Performed transcriptomic analysis and gene knockdowns to identify key genes.
Main Results:
- Niclosamide (NCA), an antiparasitic, was identified as a potent inducer of drug tolerance in Mtb.
- NCA protected Mtb from standard TB drugs by disrupting the pH gradient and causing intracellular acidification.
- Specific genes involved in promoting or mitigating this chemically-induced persister (CIP) phenotype were identified.
Conclusions:
- Disruption of the pH gradient is a key mechanism for inducing drug tolerance in Mtb.
- NCA serves as a tool to rapidly induce and study drug tolerance in TB.
- This research provides insights into persister cell biology for TB and other infectious diseases.
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