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.

Msphere
|October 15, 2020
PubMed

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.