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Bioprocessing strategies for cost-effective large-scale biogenic synthesis of nano-MgO from endophytic Streptomyces coelicolor strain E72 as an anti-multidrug-resistant pathogens agent

机译:从内生链霉菌天蓝色菌株E72作为抗多药耐药病原体的低成本生物大规模合成生物合成纳米MgO的生物加工策略。

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摘要

In this report, the local nano-MgO synthesizer strain has been isolated from Ocimum sanctum plant and deposited in GenBank as endophytic Streptomyces coelicolor strain E72. Its intracellular metabolic fraction that contains 7.2 μg/μl of carbohydrate, 6.3 g/l of protein and 5.2 nmol/hr/ml of nitrate reductase used to produce multi-surface shaped nano-MgO with diameter ~25 nm. To the best of our knowledge, this is the first report using statistical nanobiotechnological strategies (Plackett -Burman, Box-Behnken and Taguchi experimental designs) to study and evaluate the endophytic S. coelicolor biomass production (123.3 g/l) and extract the highest bioactive metabolites that used for biogenic synthesis of nano-MgO (320 g/l) through exponential sucrose pulses feeding fermentation strategy after 192 hr in semi industrial scale bioreactor (7 L). Purified nano-MgO applied in vitro against multi-drug resistant human pathogens and the large inhibition zone recorded against Shigella flexneri (108 ± 10.53 mm). The average of MICs was recorded as 25 µg/ml that inhibited 90% of the pathogenic living cells and compared with 100 mg/ml ampicilin/sulbactam solution that killed 40% of the same pathogen. These results are expected to gather sufficient knowledge to discover and develop a new cheap and eco-friendly nano-MgO as an extremely strong antimicrobial agent used in biomedical applications.
机译:在此报告中,已经从Ocimum密室植物中分离出了本地纳米MgO合成菌株,并以内生链霉菌天蓝色菌株E72的形式存放在GenBank中。其细胞内代谢级分包含7.2μg/μl的碳水化合物,6.3μg/ l的蛋白质和5.2nmol / hr / ml的硝酸还原酶,用于生产直径约25μm的多表面形纳米MgO。据我们所知,这是第一份使用统计学纳米生物技术策略(Plackett -Burman,Box-Behnken和Taguchi实验设计)研究和评估内生天蓝色链霉菌生物量产生(123.3μg/ l)并提取最高生物量的报告。生物活性代谢物,用于在半工业规模生物反应器(7 L)中经过192 hr的指数蔗糖脉冲进料发酵策略后,用于生物合成纳米MgO(320 g / l)。纯化的纳米MgO在体外可用于抵抗多种药物耐药的人类病原体,并具有抗弗氏志贺氏菌(108±10.53 mm)的大抑制区。 MIC的平均记录为25μg/ ml,可抑制90%的病原性活细胞,而100μmg/ ml的氨苄青霉素/舒巴坦溶液可杀死40%的相同病原体。预期这些结果将收集足够的知识,以发现和开发一种新型的廉价且生态友好的纳米MgO,作为生物医学应用中使用的极强抗菌剂。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Shahira H. EL-Moslamy;

  • 作者单位
  • 年(卷),期 -1(8),-1
  • 年度 -1
  • 页码 3820
  • 总页数 22
  • 原文格式 PDF
  • 正文语种
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