Discovery of Macrolide Antibiotics Effective against Multi-Drug Resistant Gram-Negative Pathogens

Andrew G Myers1, Roger B Clark2

  • 1Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, Massachusetts 02138, United States.

Insights

Novel synthetic macrolides demonstrate potent activity against drug-resistant Gram-negative bacteria. These new compounds possess unique physicochemical properties, offering a promising oral treatment option for challenging infections.

Area of Science:

  • Medicinal Chemistry
  • Drug Discovery
  • Antibiotic Resistance

Background:

  • Macrolides are widely used for Gram-positive bacterial infections but lack efficacy against Gram-negative pathogens.
  • Rising antibiotic resistance and a shortage of oral Gram-negative treatments necessitate new therapeutic options.
  • Traditional macrolides struggle to penetrate the Gram-negative outer membrane and are susceptible to efflux pumps.

Purpose of the Study:

  • To develop novel macrolides with activity against multi-drug resistant Gram-negative bacteria.
  • To explore a fully synthetic platform for expanding macrolide structural diversity and optimizing physicochemical properties.

Main Methods:

  • Utilized a fully synthetic platform to create diverse macrolide analogs, focusing on reduced molecular weight and increased polarity.
  • Introduced small amines to create polycationic species and modified the macrolactone ring (C10-C13) with aminoalcohols.
  • Conducted computational analysis of over 1800 compounds to identify key drivers for permeability and efflux avoidance.

Main Results:

  • Developed novel 13-membered azalides with clinically relevant activity against multi-drug resistant Gram-negative bacteria.
  • Identified optimal physicochemical properties for Gram-negative macrolides: MW 600-720, cLogD7.4 -1 to 3, and total charge 2.5-3.
  • Demonstrated that specific structural modifications, including amine introduction and C10-C13 fragment replacement, are critical for activity.

Conclusions:

  • Fully synthetic macrolides can be engineered to overcome Gram-negative bacterial barriers and exhibit potent antibacterial activity.
  • These novel macrolides occupy a unique physicochemical space distinct from traditional Gram-negative drugs and Gram-positive macrolides.
  • The findings provide a foundation for developing new oral macrolide-based therapies against challenging Gram-negative infections.

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