Department of Chemistry, School of Chemical Science and Technology, Dr.Harisingh Gour Vishwavidyalaya (A Central University), Sagar, MP, 470003, India.
Department of Microbiology, CSIR-Central Drug Research Institute, Sitapur Road, Janakipuram Extension, Lucknow, India.
ChemMedChem. 2022 Aug 3;17(15):e202200251. doi: 10.1002/cmdc.202200251. Epub 2022 Jun 28.
An amyloid-β inspired biocompatible short peptide amphiphile (sPA) molecule was used for controlled and targeted delivery of bioactive silver nanoparticles via transforming sPA nanostructures. Such sPA-AgNPs hybrid structures can be further used to develop antibacterial materials to combat emerging bacterial resistance. Due to the excellent antibacterial activity of silver, the growth of clinically relevant bacteria was inhibited in the presence of AgNPs-sPA hybrids. Bacterial tests demonstrated that the high biocompatibility and low cytotoxicity of the designed sPA allow it to work as a model drug delivery agent. It therefore shows great potential in locally addressing bacterial infections. The results of our study suggest that these nanodevices have the potential to trap and then engage in the facile delivery of their chemical payload at the target site, thereby working as potential delivery materials. This system has potential therapeutic value for the treatment of microbiota triggered progression of neurodegenerative diseases.
受淀粉样蛋白启发的生物相容性短肽两亲分子(sPA)可用于通过转化 sPA 纳米结构来控制和靶向递送生物活性银纳米粒子。这种 sPA-AgNPs 杂化结构可进一步用于开发抗菌材料以对抗新兴的细菌耐药性。由于银具有优异的抗菌活性,在存在 AgNPs-sPA 杂化物的情况下,临床相关细菌的生长受到抑制。细菌测试表明,设计的 sPA 具有高生物相容性和低细胞毒性,可作为模型药物递送剂。因此,它在局部解决细菌感染方面具有巨大的潜力。我们的研究结果表明,这些纳米器件有可能捕获并随后在靶部位进行其化学有效载荷的简便传递,从而成为潜在的递送材料。该系统在治疗由微生物群触发的神经退行性疾病的进展方面具有潜在的治疗价值。