Shifting from Ammonium to Phosphonium Salts: A Promising Strategy to Develop Next-Generation Weapons against Biofilms

Silvana Alfei1

  • 1Department of Pharmacy, University of Genoa, Viale Cembrano, 4, 16148 Genova, Italy.

Pharmaceutics
|January 23, 2024
PubMed

Insights

Multidrug-resistant (MDR) pathogens form biofilms (BFs), complicating infections. Quaternary phosphonium salts (QPSs) show promise in combating these resistant bacteria and BFs, offering new treatment avenues.

Area of Science:

  • Antimicrobial resistance
  • Microbiology
  • Materials Science

Background:

  • Multidrug-resistant (MDR) pathogens pose a significant global health threat, causing severe infections and high healthcare costs, particularly in nosocomial settings.
  • Bacteria develop resistance through genetic transfer and biofilm (BF) formation, creating protected communities that shield them from antibiotics.
  • Quaternary ammonium compounds (QACs) showed initial promise against biofilms but face emerging resistance, necessitating novel solutions.

Purpose of the Study:

  • To review quaternary phosphonium salts (QPSs) as potential agents against multidrug-resistant pathogens and biofilms.
  • To provide an overview of pathogen resistance, biofilm formation, and the limitations of existing treatments like QACs.
  • To stimulate the development of new QPS compounds by discussing synthetic strategies.

Main Methods:

  • Literature review of existing research on MDR pathogens, biofilms, QACs, and QPSs.
  • Analysis of QPS compounds developed and tested for anti-biofilm activity.
  • Discussion of synthetic pathways for QPS preparation.

Main Results:

  • QPSs, including tri-phenyl alkyl phosphonium derivatives, exhibit promising in vitro anti-biofilm effects.
  • QPSs are synthesized through accessible one-step reactions, similar to Wittig reaction intermediates.
  • The review consolidates current knowledge on QPSs for potential therapeutic applications.

Conclusions:

  • QPSs represent a promising class of compounds for combating infections caused by biofilm-forming MDR bacteria.
  • Further research and synthesis of novel QPSs are crucial for developing effective treatments against chronic and device-associated infections.
  • Understanding QPSs can lead to new strategies against challenging bacterial resistance mechanisms.