Huq Md Amdadul, Apu Md Aminul Islam, Ashrafudoulla Md, Rahman Md Mizanur, Parvez Md Anowar Khasru, Balusamy Sri Renukadevi, Akter Shahina, Rahman Md Shahedur
Department of Food and Nutrition, College of Biotechnology and Natural Resource, Chung-Ang University, Anseong 17546, Republic of Korea.
Department of Nutrition and Hospitality Management, The University of Mississippi, Oxford, MS 38677, USA.
Pharmaceutics. 2023 Nov 16;15(11):2634. doi: 10.3390/pharmaceutics15112634.
In recent years, biosynthesized zinc oxide nanoparticles (ZnONPs) have gained tremendous attention because of their safe and non-toxic nature and distinctive biomedical applications. A diverse range of microbes (bacteria, fungi and yeast) and various parts (leaf, root, fruit, flower, peel, stem, etc.) of plants have been exploited for the facile, rapid, cost-effective and non-toxic synthesis of ZnONPs. Plant extracts, microbial biomass or culture supernatant contain various biomolecules including enzymes, amino acids, proteins, vitamins, alkaloids, flavonoids, etc., which serve as reducing, capping and stabilizing agents during the biosynthesis of ZnONPs. The biosynthesized ZnONPs are generally characterized using UV-VIS spectroscopy, TEM, SEM, EDX, XRD, FTIR, etc. Antibiotic resistance is a serious problem for global public health. Due to mutation, shifting environmental circumstances and excessive drug use, the number of multidrug-resistant pathogenic microbes is continuously rising. To solve this issue, novel, safe and effective antimicrobial agents are needed urgently. Biosynthesized ZnONPs could be novel and effective antimicrobial agents because of their safe and non-toxic nature and powerful antimicrobial characteristics. It is proven that biosynthesized ZnONPs have strong antimicrobial activity against various pathogenic microorganisms including multidrug-resistant bacteria. The possible antimicrobial mechanisms of ZnONPs are the generation of reactive oxygen species, physical interactions, disruption of the cell walls and cell membranes, damage to DNA, enzyme inactivation, protein denaturation, ribosomal destabilization and mitochondrial dysfunction. In this review, the biosynthesis of ZnONPs using microbes and plants and their characterization have been reviewed comprehensively. Also, the antimicrobial applications and mechanisms of biosynthesized ZnONPs against various pathogenic microorganisms have been highlighted.
近年来,生物合成的氧化锌纳米颗粒(ZnONPs)因其安全无毒的性质和独特的生物医学应用而备受关注。人们利用各种各样的微生物(细菌、真菌和酵母)以及植物的各个部位(叶、根、果实、花、果皮、茎等)来简便、快速、经济高效且无毒地合成ZnONPs。植物提取物、微生物生物质或培养上清液含有各种生物分子,包括酶、氨基酸、蛋白质、维生素、生物碱、黄酮类化合物等,它们在ZnONPs的生物合成过程中充当还原剂、封端剂和稳定剂。生物合成的ZnONPs通常使用紫外可见光谱、透射电子显微镜、扫描电子显微镜、能谱仪、X射线衍射、傅里叶变换红外光谱等进行表征。抗生素耐药性是全球公共卫生面临的一个严重问题。由于突变、不断变化的环境状况和药物的过度使用,多重耐药致病微生物的数量在持续增加。为了解决这个问题,迫切需要新型、安全有效的抗菌剂。生物合成的ZnONPs因其安全无毒的性质和强大的抗菌特性,可能成为新型有效的抗菌剂。事实证明,生物合成的ZnONPs对包括多重耐药细菌在内的各种致病微生物具有很强的抗菌活性。ZnONPs可能的抗菌机制包括活性氧的产生、物理相互作用、细胞壁和细胞膜的破坏、DNA损伤、酶失活、蛋白质变性、核糖体不稳定和线粒体功能障碍。在这篇综述中,全面回顾了利用微生物和植物生物合成ZnONPs及其表征。此外,还强调了生物合成的ZnONPs对各种致病微生物的抗菌应用和机制。
J Colloid Interface Sci. 2016-3-12
Front Cell Infect Microbiol. 2025-7-14
Plants (Basel). 2024-1-20
Nanomaterials (Basel). 2023-3-31
Compr Rev Food Sci Food Saf. 2023-5