Sampath Shobana, Madhavan Yasasve, Muralidharan Manjusha, Sunderam Veena, Lawrance Ansel Vishal, Muthupandian Saravanan
Department of Biotechnology, Sree Sastha Institute of Engineering and Technology (Affiliated to Anna University), Chennai 600123, Tamil Nadu, India.
AMR and Nanomedicine Laboratory, Department of Pharmacology, Saveetha Dental College, Saveetha Institute of Medical and Technical Sciences (SIMATS), Chennai 600077, Tamil Nadu, India.
J Biotechnol. 2022 Dec 10;360:92-109. doi: 10.1016/j.jbiotec.2022.10.009. Epub 2022 Oct 19.
In the recent two decades, there has been a tremendous increase in the biosynthesis of nanomaterials employing live organisms, their components, extracts, or biomolecules as catalysts. Algae has been used majorly for commercial and industrial uses such as food, feed, skin care, medicines, and fertilizers, algae are now being explored to synthesize green nanoparticles (NPs). Indeed, algae are a rich source of bioactive substances, are easy to produce, grow quickly, and are scalable, therefore this trend is growing by the day. The natural material from algae works as a capping and stabilizing factor in the conversion of metal compounds to metal, metal oxides, or bimetallic NPs. The NPs generated by algae might be intracellular or extracellular, depending on the area of the NPs. The aim of the present review, the first of its kind, is to provide readers with essential information about the diversity of algal strains exploited in the booming field of nanobiotechnology and to explore the biomedical applications of NPs biosynthesized from algae which include antimicrobial, antioxidant, anticancer and biocompatibility properties. Furthermore, this study examines the rationale for the algal-mediated creation of metal, metal oxide, and bimetallic NPs from a variety of algae, as well as the characterization of algae-mediated nanomaterial synthesis.
在最近二十年里,利用活生物体、其组成部分、提取物或生物分子作为催化剂进行纳米材料的生物合成有了巨大增长。藻类主要用于食品、饲料、护肤品、药品和肥料等商业和工业用途,现在人们正在探索利用藻类合成绿色纳米颗粒(NPs)。事实上,藻类是生物活性物质的丰富来源,易于生产、生长迅速且可扩展,因此这种趋势日益增长。藻类中的天然物质在将金属化合物转化为金属、金属氧化物或双金属纳米颗粒的过程中起到封端和稳定作用。藻类产生的纳米颗粒可能是细胞内的或细胞外的,这取决于纳米颗粒的区域。本综述是该领域的首篇综述,旨在为读者提供有关在蓬勃发展的纳米生物技术领域中所利用的藻类菌株多样性的基本信息,并探索由藻类生物合成的纳米颗粒的生物医学应用,这些应用包括抗菌、抗氧化、抗癌和生物相容性等特性。此外,本研究考察了从各种藻类中通过藻类介导生成金属、金属氧化物和双金属纳米颗粒的原理,以及藻类介导的纳米材料合成的表征。