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Updated: Sep 14, 2025

Anti-virulent Disruption of Pathogenic Biofilms using Engineered Quorum-quenching Lactonases
Published on: January 1, 2016
Lytic bacteriophages as alternative to overcoming antibiotic-resistant biofilms formed by clinically significant
Abdul-Halim Osman1,2, Samuel Darkwah1, Fleischer C N Kotey1
1Department of Medical Microbiology, University of Ghana Medical School, Korle-Bu, Accra, Ghana.
Abstract:
Bacterial infections are a major public health threat, with a substantial global burden of ∼5 million deaths in 2019, of which ∼1.27 million were attributed to antibiotic resistance. The formation of bacterial biofilms has significantly enhanced bacterial resistance to antibiotics. Worse still, it increases overall bacterial pathogenesis, contributing to inflammation and potentially to carcinogenesis in humans. Biofilm is implicated in approximately 65% of all bacterial infections and 78.2% chronic wound infections. Alarmingly, about 100-1000-fold increase in antibiotic concentration is required to eradicate bacteria within biofilms, further compromising the health of already ill-patients. Therefore, it is imperative to explore potential antibiofilm agents, especially ones with novel mechanisms of action, to clinically manage inpatient biofilms. Bacteriophage (phage) use is a promising evolutionary approach but is also challenged with potential resistance. Bacteria have developed several antiphage defense mechanisms, some of which exhibit synergistic antiphage activity. In this review, we provide several lines of evidence supporting the efficacy of phages against antibiotic-resistant clinical biofilm-forming bacteria. Observations reveal that phage enzymes disrupt biofilm structural components (e.g., EPS, pectate, and hyaluronic acid) and pave the way for phage infection of naked bacterial cells. We further provide insights into the recent advancements in phage use against biofilm-associated antibiotic-resistant bacteria in patients. Current knowledge shows that phages are rapidly evolving and counteracting antiphage bacterial mechanisms. Here, future perspectives to enhance phages efficacy against biofilm resistance are provided to establish their clinical antibiofilm application. Enhancing the clinical application of phages against biofilms requires addressing bacterial host biofilm resistance and optimizing strategies accordingly. Beyond phage cocktail and phage genetic engineering, conjugating phages with antimicrobial agents (eg., antimicrobial peptides) offers a compelling strategy to enhance phage antibiofilm efficacy.
Insights
Bacteriophages show promise in combating antibiotic-resistant bacterial biofilms by disrupting biofilm structure. Further research and strategies like phage-antimicrobial conjugation can enhance their clinical use against these persistent infections.
Area of Science:
- Microbiology
- Infectious Diseases
- Biotechnology
Background:
- Bacterial infections cause millions of deaths globally, with antibiotic resistance and biofilms exacerbating the problem.
- Biofilms significantly increase bacterial resistance and pathogenesis, complicating treatment and contributing to chronic infections.
- Existing treatments are often ineffective against biofilm-embedded bacteria, necessitating novel therapeutic strategies.
Purpose of the Study:
- To review the efficacy of bacteriophages against antibiotic-resistant, biofilm-forming bacteria.
- To explore the mechanisms by which phages and their enzymes combat biofilms.
- To discuss advancements and future perspectives for clinical application of phages in treating biofilm infections.
Main Methods:
- Literature review of studies on bacteriophage efficacy against clinical biofilm isolates.
- Analysis of phage-derived enzymes targeting biofilm matrix components.
- Examination of bacterial antiphage defense mechanisms and phage counter-strategies.
Main Results:
- Bacteriophages effectively target antibiotic-resistant bacteria within biofilms.
- Phage enzymes degrade biofilm structural components, facilitating bacterial cell lysis.
- Phages demonstrate evolutionary capacity to overcome bacterial antiphage defenses.
Conclusions:
- Bacteriophages represent a viable therapeutic option against antibiotic-resistant biofilms.
- Enhancing phage efficacy requires addressing bacterial resistance mechanisms and optimizing delivery strategies.
- Combining phages with antimicrobial agents or genetic engineering holds potential for improved clinical outcomes.
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