Discipline of Pharmaceutical Sciences, College of Health Sciences, University of KwaZulu-Natal, Private Bag X54001, Durban, South Africa.
Discipline of Pharmaceutical Sciences, College of Health Sciences, University of KwaZulu-Natal, Private Bag X54001, Durban, South Africa.
Int J Pharm. 2021 Mar 1;596:120276. doi: 10.1016/j.ijpharm.2021.120276. Epub 2021 Jan 21.
The identification of bacterial infections as a significant human-life threatening challenge is driving several research efforts toward generating new strategies to treat bacterial infections and associated resistance issues. Biomimicry is an emerging field demonstrating great potential for application in the war against bacterial infection and their associated diseases. Recently, nanotechnology combined with biomimetic concepts has been identified as an innovative strategy to combat bacterial infections. Herein, we present an up-to-date review of biomimetic antibacterial nanosystems, with a focus on the different biomimetic approaches involved in the synthesis and delivery of antibacterial nanosystems. Biomimetic synthesis and nanosystems involved in mimicking cellular structures, extracellular matrix structures and biological surfaces are critically reviewed. Their advantages achieved in biocompatibility, biodegradability, improvement of pharmacokinetics parameters and antibacterial efficiency are highlighted. Current challenges and recommendations for amplifying the potential of these systems are also identified. This review illustrates the significant impact and potential of biomimetic antibacterial nanosystems in the field of bacterial infection treatment.
细菌感染作为严重威胁人类生命的挑战之一,促使人们开展了多项研究工作,以寻求治疗细菌感染和相关耐药问题的新策略。仿生学是一个新兴领域,在对抗细菌感染及其相关疾病方面具有巨大的应用潜力。最近,纳米技术与仿生学概念相结合,被认为是一种治疗细菌感染的创新策略。本文对仿生抗菌纳米系统进行了最新综述,重点介绍了抗菌纳米系统合成和递送上涉及的不同仿生方法。对仿生合成和纳米系统进行了批判性的综述,这些仿生合成和纳米系统模拟了细胞结构、细胞外基质结构和生物表面。强调了它们在生物相容性、生物降解性、改善药代动力学参数和抗菌效率方面的优势。还确定了放大这些系统潜力的当前挑战和建议。本文综述表明,仿生抗菌纳米系统在细菌感染治疗领域具有重要的影响和潜力。