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A Platform of Anti-biofilm Assays Suited to the Exploration of Natural Compound Libraries
Published on: December 27, 2016
Shifting from Ammonium to Phosphonium Salts: A Promising Strategy to Develop Next-Generation Weapons against Biofilms
1Department of Pharmacy, University of Genoa, Viale Cembrano, 4, 16148 Genova, Italy.
Abstract:
Since they are difficult and sometimes impossible to treat, infections sustained by multidrug-resistant (MDR) pathogens, emerging especially in nosocomial environments, are an increasing global public health concern, translating into high mortality and healthcare costs. In addition to having acquired intrinsic abilities to resist available antibiotic treatments, MDR bacteria can transmit genetic material encoding for resistance to non-mutated bacteria, thus strongly decreasing the number of available effective antibiotics. Moreover, several pathogens develop resistance by forming biofilms (BFs), a safe and antibiotic-resistant home for microorganisms. BFs are made of well-organized bacterial communities, encased and protected in a self-produced extracellular polymeric matrix, which impedes antibiotics' ability to reach bacteria, thus causing them to lose efficacy. By adhering to living or abiotic surfaces in healthcare settings, especially in intensive care units where immunocompromised older patients with several comorbidities are hospitalized BFs cause the onset of difficult-to-eradicate infections. In this context, recent studies have demonstrated that quaternary ammonium compounds (QACs), acting as membrane disruptors and initially with a low tendency to develop resistance, have demonstrated anti-BF potentialities. However, a paucity of innovation in this space has driven the emergence of QAC resistance. More recently, quaternary phosphonium salts (QPSs), including tri-phenyl alkyl phosphonium derivatives, achievable by easy one-step reactions and well known as intermediates of the Wittig reaction, have shown promising anti-BF effects in vitro. Here, after an overview of pathogen resistance, BFs, and QACs, we have reviewed the QPSs developed and assayed to this end, so far. Finally, the synthetic strategies used to prepare QPSs have also been provided and discussed to spur the synthesis of novel compounds of this class. We think that the extension of the knowledge about these materials by this review could be a successful approach to finding effective weapons for treating chronic infections and device-associated diseases sustained by BF-producing MDR bacteria.
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.

