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Biosynthesis of nanoparticles using microbes-A review

机译:微生物对纳米颗粒的生物合成研究进展

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The biosynthesis of nanoparticles by microorganism is a green and eco-friendly technology. This review focuses on the use of consortium of diverse microorganisms belonging to both prokaryotes and eukaryotes for the synthesis of metallic nanoparticles viz. silver, gold, platinum, zirconium, palladium, iron, cadmium and metal oxides such as titanium oxide, zinc oxide, etc. These microorganisms include bacteria, actinomycetes, fungi and algae. The synthesis of nanoparticles may be intracellular or extracellular. The several workers have reported that NADH dependent nitrate reductase enzyme plays a vital role in the conversion of metallic ions to nanoparticles. The FTIR study reveals that diverse biomolecules viz. car-boxyl group, primary and secondary amines, amide I, II, and III bands etc serve as a tool for bioreduction and capping agents there by offering stability to particles by preventing agglomeration and growth. The size and shape of the nanoparticles vary with the organism employed and conditions employed during the synthesis which included pH, temperature and substrate concentration. The microorganisms provide diverse environment for biosynthesis of nanoparticles. These particles are safe and eco-friendly with a lot of applications in medicine, agriculture, cosmetic industry, drug delivery and biochemical sensors. The challenges for redres sal include optimal production and minimal time to obtain desired size and shape, to enhance the stability of nanoparticles and optimization of specific microorganisms for specific application.
机译:微生物对纳米颗粒的生物合成是一种绿色环保的技术。这项审查侧重于属于原核生物和真核生物的多种微生物的财团用于金属纳米粒子的合成。银,金,铂,锆,钯,铁,镉和金属氧化物,例如氧化钛,氧化锌等。这些微生物包括细菌,放线菌,真菌和藻类。纳米颗粒的合成可以在细胞内或细胞外。几位工人报告说,依赖NADH的硝酸还原酶在金属离子向纳米颗粒的转化中起着至关重要的作用。 FTIR研究揭示了多种生物分子。羧基,伯胺和仲胺,酰胺I,II和III谱带等可作为生物还原和封端剂的工具,可通过防止团聚和生长来为颗粒提供稳定性,从而起到生物还原和封端剂的作用。纳米粒子的大小和形状随合成过程中所使用的生物和所使用的条件而变化,包括pH,温度和底物浓度。微生物为纳米颗粒的生物合成提供了多样化的环境。这些颗粒是安全和环保的,在医学,农业,化妆品工业,药物输送和生化传感器中有许多应用。重做盐的挑战包括最佳生产和最短时间以获得所需的大小和形状,增强纳米颗粒的稳定性以及针对特定应用优化特定微生物。

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