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Kalkan, S.

Publications and source records attributed to Kalkan, S..

2 recordsLinked to original sources

Epistasis between drug resistance-conferring mutations in Mycobacterium tuberculosis

Studies in model organisms show that mutations conferring resistance to different antibiotics can interact epistatically, but the biological and epidemiological consequences of such interactions are unknown. Here we show that in Mycobacterium tuberculosis (Mtb), positive sign epistasis between RpoB and GyrA mutations causing resistance to rifampicin and fluoroquinolone, respectively, can lead to double-resistant strains with high in vitro fitness. Two of these RpoB-GyrA mutation combinations account for 53% in a global collection of highly drug-resistant Mtb clinical isolates, compared to <0.7% for RpoB-GyrA combinations with low in vitro fitness. Moreover, the two high-fitness RpoB-GyrA combinations are associated with a more benign and idiosyncratic proteome perturbation compared to low-fitness combinations. Our findings highlight the relevance of epistasis for the emergence and spread of antimicrobial resistance.

microbiology↗

Variability in intrinsic drug tolerance in Mycobacterium tuberculosis corresponds with phylogenetic lineage

Drug tolerance allows bacteria to survive extended exposure to bactericidal drugs and is thought to play a role in drug resistance evolution. In Mycobacterium tuberculosis (Mtb), the causative agent of tuberculosis (TB), multidrug resistant TB (MDR-TB) outbreaks are frequently caused by strains belonging to two phylogenetic lineages of the human-adapted strains of the Mtb Complex, namely lineages (L) 2 and L4. We hypothesized that members of L2 and L4 are more intrinsically drug tolerant, and as such, more readily evolve drug resistance. To explore this, we devised a high throughput in vitro assay to measure drug tolerance in Mtb. We selected a cohort of strains representative of the globally most frequent lineages L1 - L4. We measured tolerance to rifampicin and bedaquiline and found L3 and L4 strains to have higher tolerance compared to L1 and L2 strains. In addition, phylogenetically closely related strains exhibited similar levels of tolerance, suggesting that tolerance is heritable. Finally, we explored genes previously reported to be associated with tolerance in Mtb and found significant enrichment in mutations in genes involved in cell wall and cell processes, intermediary metabolism and respiration, as well as lipid metabolism in high-tolerance strains.

microbiology↗