Optimizing the Antibiotic Potency and Metabolic Stability of Pyridomycin Using a Semisynthetic Approach

Katherine Valderrama1, Oliver Horlacher2, Gabriel Publicola3

  • 1Univ. Lille, CNRS, Inserm, CHU Lille, Institut Pasteur Lille, U1019 - UMR 9017 - CIIL - Center for Infection and Immunity of Lille, F-59000 Lille, France.

PubMed

Insights

Pyridomycin shows promise against drug-resistant tuberculosis by inhibiting fatty acid synthesis. However, poor metabolic stability and limited in vivo efficacy in mice hinder its development as a tuberculosis treatment.

Area of Science:

  • Natural product drug discovery
  • Medicinal chemistry
  • Tuberculosis research

Background:

  • Pyridomycin is a natural product effective against Mycobacterium tuberculosis (Mtb) by inhibiting the InhA enzyme.
  • It retains activity against Mtb strains resistant to isoniazid and ethionamide.
  • Pyridomycin exhibits poor in vitro metabolic stability, limiting its therapeutic potential.

Purpose of the Study:

  • To develop semisynthetic derivatives of pyridomycin with improved metabolic stability and in vitro activity.
  • To evaluate the in vivo pharmacokinetic properties and therapeutic efficacy of these derivatives in a murine tuberculosis model.

Main Methods:

  • Semisynthesis of pyridomycin derivatives by replacing the hydroxypicolinic acid group with alternative aromatic moieties.
  • In vitro assessment of metabolic stability and antibacterial activity against Mtb.
  • In vivo pharmacokinetic studies and efficacy evaluation in a murine pulmonary tuberculosis model.

Main Results:

  • Several semisynthetic pyridomycin derivatives demonstrated enhanced in vitro metabolic stability and maintained or improved antibacterial activity.
  • Despite improved in vitro properties, these derivatives did not show reduced systemic clearance in mice.
  • Neither pyridomycin nor its derivatives were effective in the murine pulmonary tuberculosis model.

Conclusions:

  • Semisynthesis can yield pyridomycin analogs with enhanced potency and metabolic stability.
  • The observed in vitro improvements did not translate to sufficient in vivo efficacy for tuberculosis treatment.
  • Further optimization is required to develop pyridomycin-based drugs for tuberculosis therapy.

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