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Multiple Mutations in Mycobacterium tuberculosis MmpL3 Increase Resistance to MmpL3 Inhibitors
Matthew B McNeil1, Theresa O'Malley1, Devon Dennison1
1TB Discovery Research, Infectious Disease Research Institute, Seattle, Washington, USA.
Abstract:
The Mycobacterium tuberculosis protein MmpL3 performs an essential role in cell wall synthesis, since it effects the transport of trehalose monomycolates across the inner membrane. Numerous structurally diverse pharmacophores have been identified as inhibitors of MmpL3 largely based on the identification of resistant isolates with mutations in MmpL3. For some compounds, it is possible there are different primary or secondary targets. Here, we have investigated resistance to the spiral amine class of compounds. Isolation and sequencing of resistant mutants demonstrated that all had mutations in MmpL3. We hypothesized that if additional targets of this pharmacophore existed, then successive rounds to generate resistant isolates might reveal mutations in other loci. Since compounds were still active against resistant isolates, albeit with reduced potency, we isolated resistant mutants in this background at higher concentrations. After a second round of isolation with the spiral amine, we found additional mutations in MmpL3. To increase our chance of finding alternative targets, we ran a third round of isolation using a different molecule scaffold (AU1235, an adamantyl urea). Surprisingly, we obtained further mutations in MmpL3. Multiple mutations in MmpL3 increased the level and spectrum of resistance to different pharmacophores but did not incur a fitness cost in vitro These results support the hypothesis that MmpL3 is the primary mechanism of resistance and likely target for these pharmacophores.IMPORTANCEMycobacterium tuberculosis is a major global human pathogen, and new drugs and new drug targets are urgently required. Cell wall biosynthesis is a major target of current tuberculosis drugs and of new agents under development. Several new classes of molecules appear to have the same target, MmpL3, which is involved in the export and synthesis of the mycobacterial cell wall. However, there is still debate over whether MmpL3 is the primary or only target for these classes. We wanted to confirm the mechanism of resistance for one series. We identified mutations in MmpL3 which led to resistance to the spiral amine series. High-level resistance to these compounds and two other series was conferred by multiple mutations in the same protein (MmpL3). These mutations did not reduce growth rate in culture. These results support the hypothesis that MmpL3 is the primary mechanism of resistance and likely target for these pharmacophores.
Insights
New research confirms that mutations in the Mycobacterium tuberculosis protein MmpL3 are the primary cause of resistance to spiral amine drugs. Multiple MmpL3 mutations confer broad resistance without impacting bacterial growth.
Area of Science:
- Microbiology and Infectious Diseases
- Drug Discovery and Development
Background:
- Mycobacterium tuberculosis (Mtb) requires novel drug targets for effective treatment.
- Mtb protein MmpL3 is crucial for cell wall synthesis, transporting trehalose monomycolates.
- Existing MmpL3 inhibitors show diverse pharmacophores, but target specificity is debated.
Purpose of the Study:
- To investigate the mechanism of resistance to spiral amine class compounds targeting MmpL3.
- To determine if MmpL3 is the sole or primary target for these pharmacophores.
- To assess the impact of resistance mutations on Mtb fitness in vitro.
Main Methods:
- Generation and sequencing of resistant Mtb mutants to spiral amine compounds.
- Successive rounds of resistance selection using spiral amines and a different scaffold (AU1235).
- Phenotypic analysis of resistant mutants, including in vitro growth rate assessment.
Main Results:
- All isolated resistant mutants exhibited mutations exclusively in the MmpL3 gene.
- Multiple mutations in MmpL3 conferred increased resistance to spiral amines and other pharmacophores.
- Accumulated MmpL3 mutations did not result in a detectable in vitro fitness cost.
Conclusions:
- MmpL3 is the primary target for spiral amine and related pharmacophores.
- Mutations in MmpL3 are the principal mechanism of resistance to these drug classes.
- MmpL3 remains a promising target for developing new anti-tuberculosis therapies.
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