CAS Engineering Laboratory for Nanozyme, Key Laboratory of Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, Chaoyang, Beijing, 100101, China.
School of Life Sciences, University of Chinese Academy of Sciences, Haidian, Beijing, 100049, China.
Adv Mater. 2024 Aug;36(33):e2403362. doi: 10.1002/adma.202403362. Epub 2024 Jun 26.
Infectious diseases caused by bacterial, viral, and fungal pathogens present significant global health challenges. The rapid emergence of antimicrobial resistance exacerbates this issue, leading to a scenario where effective antibiotics are increasingly scarce. Traditional antibiotic development strategies are proving inadequate against the swift evolution of microbial resistance. Therefore, there is an urgent need to develop novel antimicrobial strategies with mechanisms distinct from those of existing antibiotics. Nanozybiotics, which are nanozyme-based antimicrobials, mimic the catalytic action of lysosomal enzymes in innate immune cells to kill infectious pathogens. This review reinforces the concept of nanozymes and provides a comprehensive summary of recent research advancements on potential antimicrobial candidates. Initially, nanozybiotics are categorized based on their activities, mimicking either oxidoreductase-like or hydrolase-like functions, thereby highlighting their superior mechanisms in combating antimicrobial resistance. The review then discusses the progress of nanozybiotics in treating bacterial, viral, and fungal infections, confirming their potential as novel antimicrobial candidates. The translational potential of nanozybiotic-based products, including hydrogels, nanorobots, sprays, bandages, masks, and protective clothing, is also considered. Finally, the current challenges and future prospects of nanozybiotic-related products are explored, emphasizing the design and antimicrobial capabilities of nanozybiotics for future applications.
由细菌、病毒和真菌病原体引起的传染病对全球健康构成了重大挑战。抗生素耐药性的迅速出现加剧了这一问题,导致有效抗生素越来越稀缺。传统的抗生素开发策略在应对微生物耐药性的迅速进化方面证明是不够的。因此,迫切需要开发具有与现有抗生素不同作用机制的新型抗菌策略。纳米酶抗菌剂是基于纳米酶的抗菌剂,模拟天然免疫细胞溶酶体酶的催化作用来杀死感染性病原体。这篇综述强化了纳米酶的概念,并对潜在抗菌候选物的最新研究进展进行了全面总结。首先,根据纳米酶抗菌剂的活性对其进行分类,模拟氧化还原酶样或水解酶样功能,从而突出其在对抗抗生素耐药性方面的优越机制。然后,本文讨论了纳米酶抗菌剂在治疗细菌、病毒和真菌感染方面的进展,证实了它们作为新型抗菌候选物的潜力。还考虑了基于纳米酶抗菌剂的产品,如水凝胶、纳米机器人、喷雾剂、绷带、口罩和防护服的转化潜力。最后,探讨了纳米酶相关产品目前面临的挑战和未来前景,强调了纳米酶的设计和抗菌能力,以满足未来的应用需求。