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Baldin, V. P.

Publications and source records attributed to Baldin, V. P..

2 recordsLinked to original sources

Thienopyrimidine amide analogs target MmpL3 in Mycobacterium tuberculosis

ObjectivesThe identification of novel agents with mechanisms of action distinct from those currently utilized in tuberculosis treatment remains a significant challenge. The mycobacterial protein MmpL3 has emerged as a promising drug target due to its essential role in the synthesis of the cell wall of Mycobacterium tuberculosis. We previously identified novel thienopyrimidine amides with good anti-tubercular activity. MethodsWe profiled a subset of thienopyrimidine amides determining activity against intracellular bacteria and bactericidal activity against replicating bacteria. We ran assays to determine mode of action by measuring cell wall stress, ATP production, and bacterial cytological profiling. We determined activity against a strain of M. tuberculosis with mutations in MmpL3. We isolated and sequenced resistant mutants. ResultsWe tested five analogs against a strain of M. tuberculosis with mutations in MmpL3 and determined that they lost potency. Analogs induced PiniBAC, a reporter for cell wall stress, and led to an ATP boost characteristic of cell wall inhibitors. Bacterial cytological profiling of a representative compound revealed a morphological profile consistent with other MmpL3 inhibitors. ConclusionsTogether, our data support MmpL3 as the most probable drug target for the TPA analogs and add to the growing list of scaffolds that can inhibit this vulnerable transporter.

microbiology↗

An arylsulphonamide that targets cell wall biosynthesis in Mycobacterium tuberculosis

We investigated the mechanism of action of an arylsulphonamide with whole cell activity against Mycobacterium tuberculosis. We newly synthesized the molecule and confirmed it had activity against both extracellular and intracellular bacilli. The molecule had some activity against HepG2 cells but maintained some selectivity. Bacterial cytological profiling suggested that mechanism of action was via disruption of cell wall synthesis, with similarities to an inhibitor of the mycolic acid exporter MmpL3. The compound induced expression from the IniB promoter and caused a boost in ATP production but did not induce reactive oxygen species. A mutation in MmpL3 (S591I) led to low-level resistance. Taken together these data confirm the molecule targets cell wall biosynthesis with MmpL3 as the most probable target.

microbiology↗