Department of Biotechnology, College of Life Science and Biotechnology, Yonsei University, 50 Yonsei Ro, Seodaemun-gu, Seoul 03722, Korea.
Department of Infectious Diseases, Asan Medical Center, University of Ulsan College of Medicine, 88 Olympicro-43gil, Songpa-gu, Seoul 05505, Korea.
ACS Appl Mater Interfaces. 2021 Sep 1;13(34):40401-40414. doi: 10.1021/acsami.1c12352. Epub 2021 Aug 18.
Resistance to antibiotics because of misuse and overuse is one of the greatest public health challenges worldwide. Despite the introduction of advanced nanotechnology in the production of antibiotics, the choice of appropriate medicines is limited due to side effects such as blood coagulation, toxicity, low efficacy, and low biocompatibility; therefore, novel nanomaterial composites are required to counter these repercussions. We first introduce a facile method for synthesizing a omobifunctional imidoester-coated anopindle (HINS) zinc oxide composite for enhancement of antibiotic efficacy and reduction of toxicity and blood coagulation. The antibiotic efficacy of the composites is twice that of commercialized zinc nanoparticles; in addition, they have good biocompatibility, have increased surface charge and solubility owing to the covalent acylation groups of HI, and produce a large number of Zn ions and defensive reactive oxygen species (ROS) that effectively kill bacteria and fungi. The synergistic effect of a combination therapy with the HINS composite and itraconazole shows more than 90% destruction of fungi in treatments with low dosage with no cytotoxicity or coagulation evident in intravenous administration in and experiments. Thus, HINS composites are useful in reducing the effect of misuse and overuse of antibiotics in the medical field.
由于滥用和过度使用抗生素导致的耐药性是全球面临的最大公共卫生挑战之一。尽管在抗生素生产中引入了先进的纳米技术,但由于副作用如凝血、毒性、低疗效和低生物相容性,合适药物的选择受到限制;因此,需要新型纳米材料复合材料来应对这些影响。我们首先介绍了一种简便的方法来合成 omobifunctional 酰亚胺酯涂层 anopindle (HINS) 氧化锌复合材料,以提高抗生素的疗效,降低毒性和凝血。该复合材料的抗生素疗效是商业化氧化锌纳米粒子的两倍;此外,由于 HI 的共价酰化基团,它们具有良好的生物相容性,增加了表面电荷和溶解度,并产生大量的 Zn 离子和防御性活性氧(ROS),有效地杀死细菌和真菌。HINS 复合材料与伊曲康唑联合治疗的协同作用显示,在 和 实验中,低剂量组合治疗对真菌的破坏超过 90%,静脉注射时无细胞毒性或凝血迹象。因此,HINS 复合材料可用于减少医疗领域中抗生素滥用和过度使用的影响。