4.8 Review

Nanophysical Antimicrobial Strategies: A Rational Deployment of Nanomaterials and Physical Stimulations in Combating Bacterial Infections

Journal

ADVANCED SCIENCE
Volume 9, Issue 10, Pages -

Publisher

WILEY
DOI: 10.1002/advs.202105252

Keywords

bacterial infections; drug-resistance; nanomaterials; phototherapy; physical stimulations; sonotherapy

Funding

  1. National Natural Science Foundation of China [31500802, 11874238]
  2. Natural Science Foundation of Shandong Province [ZR2020JQ04]
  3. Natural Science Foundation of Jiangsu Province [BK20190097]
  4. Program of Qilu Young Scholars of Shandong University
  5. Taishan Scholars Program for Young Expert of Shandong Province [tsqn201909021]
  6. Youth Cross-Scientific Innovation Group of Shandong University

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This review provides an overview of nanophysical antimicrobial strategies (NPAS), categorizing them based on the modes of their physical stimulation. The biomedical applications of NPAS in combating bacterial infections are discussed, with a focus on design and antimicrobial mechanisms. Current challenges and future perspectives of NPAS in clinical treatment of bacterial infections are also summarized and discussed, highlighting their potential use in clinical settings.
The emergence of bacterial resistance due to the evolution of microbes under antibiotic selection pressure, and their ability to form biofilm, has necessitated the development of alternative antimicrobial therapeutics. Physical stimulation, as a powerful antimicrobial method to disrupt microbial structure, has been widely used in food and industrial sterilization. With advances in nanotechnology, nanophysical antimicrobial strategies (NPAS) have provided unprecedented opportunities to treat antibiotic-resistant infections, via a combination of nanomaterials and physical stimulations. In this review, NPAS are categorized according to the modes of their physical stimulation, which include mechanical, optical, magnetic, acoustic, and electrical signals. The biomedical applications of NPAS in combating bacterial infections are systematically introduced, with a focus on their design and antimicrobial mechanisms. Current challenges and further perspectives of NPAS in the clinical treatment of bacterial infections are also summarized and discussed to highlight their potential use in clinical settings. The authors hope that this review will attract more researchers to further advance the promising field of NPAS, and provide new insights for designing powerful strategies to combat bacterial resistance.

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