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August 6, 2025Antibiotics31 citationsOpen Access

Targeting Bacterial Biofilms on Medical Implants: Current and Emerging Approaches

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ASAlessandro Calogero ScaliaZNZiba Najmi

Key Points

  • Biofilms contribute to 80% of all microbial infections, impacting health outcomes significantly.
  • Surface modification techniques are designed to enhance antifouling properties of medical devices and combat biofilm formation.
  • Over 500,000 biofilm-related infections linked to implants occur annually in the U.S., leading to substantial healthcare costs.
  • Emerging non-antibiotic agents show promise in lowering infection rates and minimizing antibiotic reliance.

Abstract

Biofilms are structured communities of microorganisms encased in a self-produced extracellular matrix, and they represent one of the most widespread forms of microbial life on Earth. Their presence poses serious challenges in both environmental and clinical settings. In natural and industrial systems, biofilms contribute to water contamination, pipeline corrosion, and biofouling. Clinically, biofilm-associated infections are responsible for approximately 80% of all microbial infections, including endocarditis, osteomyelitis, cystic fibrosis, and chronic sinusitis. A particularly critical concern is their colonization of medical devices, where biofilms can lead to chronic infections, implant failure, and increased mortality. Implantable devices, such as orthopedic implants, cardiac pacemakers, cochlear implants, urinary catheters, and hernia meshes, are highly susceptible to microbial attachment and biofilm development. These infections are often recalcitrant to conventional antibiotics and frequently necessitate surgical revision. In the United States, over 500,000 biofilm-related implant infections occur annually, with prosthetic joint infections alone projected to incur revision surgery costs exceeding USD 500 million per year—a figure expected to rise to USD 1.62 billion by 2030. To address these challenges, surface modification of medical devices has emerged as a promising strategy to prevent bacterial adhesion and biofilm formation. This review focuses on recent advances in chemical surface functionalization using non-antibiotic agents, such as enzymes, chelating agents, quorum sensing quenching factors, biosurfactants, oxidizing compounds and nanoparticles, designed to enhance antifouling and mature biofilm eradication properties. These approaches aim not only to prevent device-associated infections but also to reduce dependence on antibiotics and mitigate the development of antimicrobial resistance.

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Cite This Study

Scalia et al. (2025) studied this question.

synapsesocial.com/papers/689522129f4f1c896c429899https://doi.org/10.3390/antibiotics14080802
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