Mycobacterium abscessus (Mab) is a multidrug-resistant nontuberculous mycobacterium that causes debilitating tuberculosis (TB)-like pulmonary infections for which effective treatment options are lacking. One contributing factor to the poor in vivo efficacy of antibiotics may be the altered vulnerability of drug targets driven by host-specific environmental conditions. To enable validation and prioritization of candidate drug targets in vivo, we exploited CRISPRi (CRi) gene silencing in multiple mouse infection models. Inducible silencing of ftsZMab, a previously validated target, and three predicted targets (leuSMab, folPMab, and fusAMab) confirmed their essentiality in vitro. We then assessed the in vivo vulnerability of these targets in both immunocompetent C57BL/6N and immunodeficient NOD SCID gamma (NSG) mice by evaluating the impact of CRi silencing on pulmonary mycobacterial burden. In NSG mice, silencing of each of these four genes led to comparable decreases in Mab burden. However, in C57BL/6N mice, the degree of Mab clearance varied among targets, suggesting that immune pressure may influence the outcome of CRi-mediated gene silencing. Notably, repression of fusAMab yielded a larger decline in mycobacterial burden in C57BL/6N mice despite a lower level of gene silencing in vitro, consistent with the enhanced vulnerability of this target. Overall, this study demonstrated that ftsZMab, leuSMab, folPMab, and fusAMab are essential for Mab growth in vitro and, for the first time, validated their vulnerability to inhibition by CRi during infection. These data also identified potential context-dependent target vulnerabilities, which could inform the prioritization of bacterial drug targets and accelerate the development of effective therapeutics for Mab infections.
Gupta et al. (2026) studied this question.