Trehalose catalytic shift inherently enhances phenotypic heterogeneity and multidrug resistance in Mycobacterium tuberculosis.

Publication date: Jul 11, 2025

Drug-resistance (DR) in bacteria often develops through the repetitive formation of drug-tolerant persisters, which survive antibiotics without genetic changes. It is unclear whether Mycobacterium tuberculosis (Mtb), the bacterium that causes tuberculosis (TB), undergoes a similar transitioning process. Recent studies highlight changes in trehalose metabolism as crucial for persister formation and drug resistance. Here, we observe that mutants lacking trehalose catalytic shift activity exhibited fewer DR mutants due to decreased persisters. This shift enhances Mtb survival during antibiotic treatment by increasing metabolic heterogeneity and drug tolerance, facilitating drug resistance. Rifampicin (RIF)-resistant bacilli display cross-resistance to other antibiotics linked to higher trehalose catalytic shift, explaining how multidrug resistance (MDR) can follow RIF-resistance. In particular, the HN878 W-Beijing strain exhibits higher trehalose catalytic shift, increasing MDR risk. Both genetic and pharmacological inactivation of this shift reduces persister formation and MDR development, suggesting trehalose catalytic shift as a potential therapeutic target to combat TB resistance.

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Concepts Keywords
Antibiotics Antitubercular Agents
Beijing Antitubercular Agents
Drugresistance Bacterial Proteins
Higher Bacterial Proteins
Mutants Microbial Sensitivity Tests
Mutation
Mycobacterium tuberculosis
Phenotype
Rifampin
Rifampin
Trehalose
Trehalose
Tuberculosis, Multidrug-Resistant

Semantics

Type Source Name
drug DRUGBANK Trehalose
disease IDO bacteria
disease MESH causes
disease MESH tuberculosis
pathway KEGG Tuberculosis
disease IDO process
disease MESH drug tolerance
drug DRUGBANK Rifampicin
disease IDO susceptibility
drug DRUGBANK Oxygen
disease IDO bactericidal
disease MESH starvation
disease MESH hypoxia
disease IDO toxin
pathway KEGG Carbon metabolism
drug DRUGBANK Activated charcoal
disease IDO replication
drug DRUGBANK NADH
disease IDO production
drug DRUGBANK Succinic acid
drug DRUGBANK Gastric intrinsic factor
disease MESH mutation rates
drug DRUGBANK Methyl isocyanate
drug DRUGBANK Dextrose unspecified form
pathway REACTOME Trehalose biosynthesis
drug DRUGBANK Isoniazid
disease MESH biotic stress
pathway REACTOME Glycolysis
pathway REACTOME Pentose phosphate pathway
drug DRUGBANK Pidolic Acid
drug DRUGBANK L-Alanine
drug DRUGBANK Phosphate ion
drug DRUGBANK Phosphoenolpyruvate
drug DRUGBANK Trestolone
drug DRUGBANK Tetracycline
drug DRUGBANK Timonacic
pathway REACTOME Metabolism
disease MESH defects
disease MESH oxidative stresses
disease IDO assay
disease MESH spotting
disease IDO colony
drug DRUGBANK Pentaerythritol tetranitrate
drug DRUGBANK Cycloserine
disease IDO quality
drug DRUGBANK Fructose
drug DRUGBANK Coenzyme M
drug DRUGBANK ATP
disease MESH Tuberculosis Multidrug-Resistant

Original Article

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