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Metal-Based Nanoparticles: Antibacterial Mechanisms and Biomedical Application

Microorganisms 2022 291 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 65 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Domenico Franco, Giovanna Calabrese, Salvatore Guglielmino, Sabrina Conoci

Summary

This review examines how metal-based nanoparticles kill bacteria and their potential use as alternatives to antibiotics in medicine. While not about microplastics directly, the antibacterial mechanisms described are relevant because microplastics in the environment can carry both metal nanoparticles and bacteria on their surfaces. Understanding these interactions helps explain how microplastics may influence the spread or suppression of harmful bacteria in the environment.

The growing increase in antibiotic-resistant bacteria has led to the search for new antibacterial agents capable of overcoming the resistance problem. In recent years, nanoparticles (NPs) have been increasingly used to target bacteria as an alternative to antibiotics. The most promising nanomaterials for biomedical applications are metal and metal oxide NPs, due to their intrinsic antibacterial activity. Although NPs show interesting antibacterial properties, the mechanisms underlying their action are still poorly understood, limiting their use in clinical applications. In this review, an overview of the mechanisms underlying the antibacterial activity of metal and metal oxide NPs will be provided, relating their efficacy to: (i) bacterial strain; (ii) higher microbial organizations (biofilm); (iii) and physico-chemical properties of NPs. In addition, bacterial resistance strategies will be also discussed to better evaluate the feasibility of the different treatments adopted in the clinical safety fields. Finally, a wide analysis on recent biomedical applications of metal and metal oxide NPs with antibacterial activity will be provided.

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