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采用田口设计和大规模策略从内生拟青霉 SYA.F4 中合成纳米银及其对植物病原菌的应用。

Applying Taguchi design and large-scale strategy for mycosynthesis of nano-silver from endophytic Trichoderma harzianum SYA.F4 and its application against phytopathogens.

机构信息

Bioprocess development Department, Genetic Engineering and Biotechnology Research Institute, City of Scientific Research and Technology Applications, New Borg El-Arab City, Alexandria, Egypt.

Chemical and Petrochemical Engineering Department, Egypt-Japan University of Science and Technology, New Borg El-Arab City, Alexandria, Egypt.

出版信息

Sci Rep. 2017 Mar 28;7:45297. doi: 10.1038/srep45297.

Abstract

Development of reliable and low-cost requirement for large-scale eco-friendly biogenic synthesis of metallic nanoparticles is an important step for industrial applications of bionanotechnology. In the present study, the mycosynthesis of spherical nano-Ag (12.7 ± 0.8 nm) from extracellular filtrate of local endophytic T. harzianum SYA.F4 strain which have interested mixed bioactive metabolites (alkaloids, flavonoids, tannins, phenols, nitrate reductase (320 nmol/hr/ml), carbohydrate (25 μg/μl) and total protein concentration (2.5 g/l) was reported. Industrial mycosynthesis of nano-Ag can be induced with different characters depending on the fungal cultivation and physical conditions. Taguchi design was applied to improve the physicochemical conditions for nano-Ag production, and the optimum conditions which increased its mass weight 3 times larger than a basal condition were as follows: AgNO (0.01 M), diluted reductant (10 v/v, pH 5) and incubated at 30 °C, 200 rpm for 24 hr. Kinetic conversion rates in submerged batch cultivation in 7 L stirred tank bioreactor on using semi-defined cultivation medium was as follows: the maximum biomass production (X) and maximum nano-Ag mass weight (P) calculated (60.5 g/l and 78.4 g/l respectively). The best nano-Ag concentration that formed large inhibition zones was 100 μg/ml which showed against A.alternate (43 mm) followed by Helminthosporium sp. (35 mm), Botrytis sp. (32 mm) and P. arenaria (28 mm).

摘要

开发可靠且低成本的大规模环保生物合成金属纳米粒子的要求,是生物纳米技术工业应用的重要步骤。本研究从当地内生真菌 T. harzianum SYA.F4 菌株的胞外滤液中生物合成了球形纳米银(12.7±0.8nm),该菌株具有混合生物活性代谢物(生物碱、类黄酮、单宁、酚类、硝酸还原酶(320nmol/hr/ml)、碳水化合物(25μg/μl)和总蛋白浓度(2.5g/l)。工业规模的纳米银生物合成可以根据真菌培养和物理条件的不同而具有不同的特性。田口设计被应用于改善纳米银生产的物理化学条件,优化条件可将其质量提高 3 倍以上,条件为:AgNO(0.01M)、稀释还原剂(10v/v,pH5),在 30°C、200rpm 下孵育 24 小时。在使用半确定培养基于 7L 搅拌罐生物反应器中进行分批培养的动力学转化率如下:最大生物量(X)和最大纳米银质量(P)分别为 60.5g/l 和 78.4g/l。形成最大抑菌圈的最佳纳米银浓度为 100μg/ml,对 A.alternate(43mm)、Helminthosporium sp.(35mm)、Botrytis sp.(32mm)和 P. arenaria(28mm)均有抑制作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b81/5368611/2082cab77af7/srep45297-f1.jpg

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