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A High-throughput Compatible Assay to Evaluate Drug Efficacy against Macrophage Passaged Mycobacterium tuberculosis
Published on: March 24, 2017
Common Variants in the Glycerol Kinase Gene Reduce Tuberculosis Drug Efficacy
Michelle M Bellerose1, Seung-Hun Baek2, Chuan-Chin Huang3
1Department of Microbiology and Physiological Systems, University of Massachusetts Medical School, Worcester, Massachusetts, USA.
Abstract:
Despite the administration of multiple drugs that are highly effective in vitro, tuberculosis (TB) treatment requires prolonged drug administration and is confounded by the emergence of drug-resistant strains. To understand the mechanisms that limit antibiotic efficacy, we performed a comprehensive genetic study to identify Mycobacterium tuberculosis genes that alter the rate of bacterial clearance in drug-treated mice. Several functionally distinct bacterial genes were found to alter bacterial clearance, and prominent among these was the glpK gene that encodes the glycerol-3-kinase enzyme that is necessary for glycerol catabolism. Growth on glycerol generally increased the sensitivity of M. tuberculosis to antibiotics in vitro, and glpK-deficient bacteria persisted during antibiotic treatment in vivo, particularly during exposure to pyrazinamide-containing regimens. Frameshift mutations in a hypervariable homopolymeric region of the glpK gene were found to be a specific marker of multidrug resistance in clinical M. tuberculosis isolates, and these loss-of-function alleles were also enriched in extensively drug-resistant clones. These data indicate that frequently observed variation in the glpK coding sequence produces a drug-tolerant phenotype that can reduce antibiotic efficacy and may contribute to the evolution of resistance.IMPORTANCE TB control is limited in part by the length of antibiotic treatment needed to prevent recurrent disease. To probe mechanisms underlying survival under antibiotic pressure, we performed a genetic screen for M. tuberculosis mutants with altered susceptibility to treatment using the mouse model of TB. We identified multiple genes involved in a range of functions which alter sensitivity to antibiotics. In particular, we found glycerol catabolism mutants were less susceptible to treatment and that common variation in a homopolymeric region in the glpK gene was associated with drug resistance in clinical isolates. These studies indicate that reversible high-frequency variation in carbon metabolic pathways can produce phenotypically drug-tolerant clones and have a role in the development of resistance.
Insights
Tuberculosis treatment struggles with long durations and resistance. A study found mutations in the glpK gene, crucial for glycerol breakdown, allow Mycobacterium tuberculosis to survive antibiotics, potentially driving drug resistance.
Area of Science:
- Microbiology
- Genetics
- Drug Resistance
Background:
- Tuberculosis (TB) treatment is lengthy and challenged by emerging drug-resistant strains.
- Understanding mechanisms limiting antibiotic efficacy is crucial for improving TB control.
- Identifying bacterial genes affecting clearance rates in vivo can reveal survival strategies.
Purpose of the Study:
- To identify Mycobacterium tuberculosis genes that influence bacterial clearance rates in drug-treated mice.
- To investigate the role of glycerol catabolism, specifically the glpK gene, in antibiotic susceptibility.
- To determine if variations in glpK are associated with drug resistance in clinical TB isolates.
Main Methods:
- Conducted a comprehensive genetic screen in a mouse model of TB to identify M. tuberculosis mutants with altered antibiotic clearance rates.
- Analyzed the function of the glpK gene, encoding glycerol-3-kinase, in glycerol metabolism and its impact on in vitro and in vivo antibiotic sensitivity.
- Examined clinical M. tuberculosis isolates for mutations in the glpK gene, particularly in its hypervariable homopolymeric region, and correlated these with drug resistance profiles.
Main Results:
- Several M. tuberculosis genes were identified that alter bacterial clearance during antibiotic treatment.
- The glpK gene, essential for glycerol catabolism, was prominent; glpK-deficient mutants showed impaired clearance in vivo, especially with pyrazinamide.
- Frameshift mutations in a hypervariable region of glpK were a specific marker for multidrug resistance and enriched in extensively drug-resistant clones.
Conclusions:
- Variation in the glpK gene, affecting glycerol metabolism, confers a drug-tolerant phenotype in M. tuberculosis.
- This drug tolerance can reduce antibiotic efficacy and contribute to the evolution of drug resistance.
- Reversible, high-frequency variations in metabolic genes like glpK may play a significant role in the development of TB drug resistance.
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