Ngcongco Khanyisile, Krishna Suresh Babu Naidu, Pillay Karen
School of Life Sciences, University of KwaZulu-Natal, Durban, South Africa.
Department of Biomedical and Clinical Technology, Durban University of Technology, Durban, South Africa.
Front Chem. 2023 Mar 7;11:1107619. doi: 10.3389/fchem.2023.1107619. eCollection 2023.
The use of biological systems such as plants, bacteria, and fungi for the synthesis of nanomaterials has emerged to fill the gap in the development of sustainable methods that are non-toxic, pollution-free, environmentally friendly, and economical for synthesizing nanomaterials with potential in biomedicine, biotechnology, environmental science, and engineering. Current research focuses on understanding the characteristics of biogenic nanoparticles as these will form the basis for the biosynthesis of nanoparticles with multiple functions due to the physicochemical properties they possess. This review briefly describes the intrinsic enzymatic mimetic activity of biogenic metallic nanoparticles, the cytotoxic effects of nanoparticles due to their physicochemical properties and the use of capping agents, molecules acting as reducing and stability agents and which aid to alleviate toxicity. The review also summarizes recent green synthetic strategies for metallic nanoparticles.
利用植物、细菌和真菌等生物系统合成纳米材料,已成为填补可持续方法发展空白的途径。这些方法无毒、无污染、环境友好且经济,可用于合成在生物医学、生物技术、环境科学和工程领域具有潜力的纳米材料。当前的研究重点是了解生物源纳米颗粒的特性,因为这些特性将基于其物理化学性质,为多功能纳米颗粒的生物合成奠定基础。本综述简要描述了生物源金属纳米颗粒的内在酶模拟活性、纳米颗粒因其物理化学性质和使用封端剂(作为还原剂和稳定剂起作用并有助于减轻毒性的分子)而产生的细胞毒性作用。该综述还总结了金属纳米颗粒最近的绿色合成策略。