Antimicrobial Peptide‐Modified Liquid Metal Nanomaterials for Enhanced Antibacterial Photothermal Therapy

Author:

Wang Bo1,Chen Sen2ORCID,Feng Weichen3,Shan Xiaohui3,Zhu Xiyu3,Yuan Ruizhi3,Cao Yingjie3,Fan Linlin4,Yuan Bo1,Wang Hongzhang5,Zhou Gang1,Liu Jing36ORCID

Affiliation:

1. School of Biological Science and Medical Engineering Key Laboratory for Biomechanics and Mechanobiology of Ministry of Education Beihang University Beijing 100083 China

2. Key Laboratory for Intelligent Nano Materials and Devices of Ministry of Education Institute for Frontier Science Nanjing University of Aeronautics and Astronautics Nanjing 210016 China

3. Department of Biomedical Engineering School of Medicine Tsinghua University Beijing 100084 China

4. Beijing Research Institute of Orthopaedics and Traumatology Beijing Jishuitan Hospital Beijing 100035 China

5. Center of Double Helix Tsinghua Shenzhen International Graduate School Shenzhen 518055 China

6. Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 China

Abstract

The misuse of antibiotics has led to antibiotic‐resistant “superbugs,” prompting the exploration of alternative antibacterial strategies. This study focuses on the promising avenue of photothermal therapy (PTT). Despite numerous advantages, the clinical applicability of PTT as a sole sterilization strategy is hindered by the necessity for higher temperatures, potentially causing harm to healthy tissues. To overcome this challenge, this study introduces antimicrobial peptides (AMPs) to modify the surface of gallium‐based liquid metal (LM) nano‐antimicrobial agents, thereby enhancing their photothermal antibacterial effects within a lower temperature range. First, a novel LM composite nanomaterial, LM@AMP nanoparticles, is synthesized through a sonication process involving 1,2‐distearoyl‐sn‐glycero‐3‐phosphoethanolamine‐N‐[carboxy(polyethylene glycol)], AMP, and LM in an aqueous solution. Herein, AMPs not only contribute to the structural stability of LM nanoparticles but also enhance their selective interaction with bacterial cell membranes. Then, a thorough characterization of LM@AMP nanoparticles is performed, encompassing analyses through electron microscopy, determination of particle size, and assessment of zeta potential. Moreover, the exceptional photothermal properties exhibited by these nanoparticles are validated. Finally, this investigation demonstrates that LM@AMP nanoparticles selectively target bacterial cell membranes, showcasing efficient bactericidal effects (near 100%) at relatively low temperatures under near‐infrared irradiation.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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