Faculty of Life Science and Technology, Kunming University of Science and Technology, Yunnan Province, 650500, China.
Faculty of Life Science and Technology, Kunming University of Science and Technology, Yunnan Province, 650500, China.
Colloids Surf B Biointerfaces. 2020 Nov;195:111252. doi: 10.1016/j.colsurfb.2020.111252. Epub 2020 Jul 9.
Bacterial infection-related diseases have been growing year-by-year rapidly and raising health problems globally. The exploitation of novel, high efficiency, and bacteria-binding antibacterial agents are extremely need. As far as now, the most extensive treatment is restricted to antibiotics, which may be overused and misused, leading to increased multidrug resistance. Antibiotics abuse, as well as antibiotic-resistance of bacteria, is a global challenge in the current situation. It is highly recommended and necessary to develop novel bactericide to kill the bacteria effectively without causing further resistance development and biosafety issues. Nanozymes, inorganic nanostructures with intrinsic enzymatic activities, have attracted more and more interest from the researchers owing to their exceptional advantages. Compared to natural enzymes, nanozymes can destroy many Gram-positive, Gram-negative bacteria, which builds an important bridge between biology and nanotechnology. As the potent nanoantibiotics, nanozymes have exciting broad-spectrum antimicrobial properties and negligible biotoxicities. And we summarized and highlighted the recent advances on nanozymes including its antibacterial mechanism and applications. Finally, challenges and limitations for the further improvement of the antibacterial activity are covered to provide future directions for the use of engineered nanozymes with enhanced antibacterial function.
细菌感染相关疾病在全球范围内呈逐年迅速增长之势,引发了健康问题。新型高效、具有细菌结合能力的抗菌剂的开发极为迫切。到目前为止,最广泛的治疗方法仅限于抗生素,而抗生素可能被过度和滥用,导致耐药性增加。抗生素滥用以及细菌的抗生素耐药性是当前情况下的全球性挑战。开发新型杀菌剂以有效杀死细菌而不引起进一步的耐药性发展和生物安全问题是非常必要和推荐的。纳米酶是具有内在酶活性的无机纳米结构,由于其独特的优势,引起了研究人员越来越多的兴趣。与天然酶相比,纳米酶可以破坏许多革兰氏阳性菌和革兰氏阴性菌,在生物学和纳米技术之间架起了一座重要的桥梁。作为有效的纳米抗生素,纳米酶具有令人兴奋的广谱抗菌特性和可忽略不计的生物毒性。我们总结并强调了纳米酶的最新进展,包括其抗菌机制和应用。最后,探讨了进一步提高抗菌活性的挑战和局限性,为具有增强抗菌功能的工程纳米酶的应用提供了未来的方向。