Leveraging Marine Natural Products as a Platform to Tackle Bacterial Resistance and Persistence

M Alejandro Valdes-Pena1, Nicholas P Massaro1, You-Chen Lin1

  • 1Department of Chemistry and Comparative Medicine Institute, NC State University, Raleigh, North Carolina 27695, United States.

Insights

Marine natural products offer novel scaffolds to combat antibiotic resistance and bacterial biofilms. Chemical synthesis and microbiology studies reveal potent compounds like synoxazolidinones, lipoxazolidinones, and batzelladines for new antimicrobial therapeutics.

Area of Science:

  • Natural Product Chemistry
  • Chemical Microbiology
  • Medicinal Chemistry

Background:

  • Antimicrobial resistance (AMR) and bacterial biofilm tolerance pose significant global health threats.
  • Limited development of novel antibiotic classes necessitates exploration of new sources and targets.
  • Natural products, particularly from marine environments, are a rich source of antibiotic discovery.

Purpose of the Study:

  • To explore marine natural products for novel antimicrobial scaffolds.
  • To investigate the chemical synthesis and biological activity of synoxazolidinones, lipoxazolidinones, and batzelladines.
  • To develop new therapeutic platforms against multidrug-resistant (MDR) and biofilm-tolerant bacterial infections.

Main Methods:

  • Chemical synthesis of marine natural product scaffolds.
  • Chemical microbiology to assess antimicrobial activity against MDR pathogens.
  • Structure-activity relationship studies, including stereochemical isomer analysis.

Main Results:

  • Synoxazolidinones provided methods for antimicrobial scaffold preparation and showed adjuvant activity against biofilms.
  • Lipoxazolidinones demonstrated potent single-agent antibiotic activity.
  • Batzelladine analogues, including superior-activity non-natural isomers, were synthesized with simplified access.

Conclusions:

  • Marine natural products offer diverse platforms for developing novel antibiotics.
  • Synthetic chemistry and chemical microbiology are crucial for combating AMR and tolerance.
  • This work provides leads for preclinical development and insights into novel antimicrobial targets.

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