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Functioned silver nanoparticle loaded activated carbon for the recovery of bioactive molecule from bacterial fermenter for its bactericidal activity

机译:载有功能性纳米银的活性炭可从细菌发酵罐中回收生物活性分子,从而具有杀菌活性

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A novel continuous production and extraction of bacterial bioactive prodigiosin (PG) from fermented using silver nanoparticle impregnated functioned activated carbon composite is proposed for cost-effective and ecofriendly microbial technique. Hence, in this investigation silver nanoparticle was impregnated onto functioned activated carbon ([AC](F)) as a support matrix and to enable the separation of PG conjugated silver nanoparticle from the fermented medium. A laboratory scale experiment was carried out to evaluate the continuous production and recovery of PG using [AC@Ag](F). Ag nanoparticle impregnated [AC](F) ([AC@Ag](F)) characterized by FT-IR, XRD, TGA, DSC and SEM. Instrumental analyses confirmed that Ag nanoparticles significantly impregnated on AC through the functionalization of AC with diethanolamine and it enhances the binding capacity between AC and Ag. The various process parameters, such as contact time, pH, and mass of [AC@Ag](F), were statistically optimized for the recovery of PG using Response Surface Methodology (RSM). The maximum extraction of PG in [AC@Ag] F was found to be 16.2 +/- 0.2 mg g(-1), its twofold higher than [AC](F). Further, PG conjugated [AC@Ag](F) and ([AC@Ag](F)-PG) were checked for the growth inhibition of gram negative and gram positive bacteria without formation of biofilm upto 96 h. Hence, the developed matrix could be eco-friendly, viable and lower energy consumption step for separation of the bacterial bioactive PG from fermented broth. In additionally, [AC@Ag](F)-PG was used as an antifouling matrix without formation of biofilm. (C) 2017 Elsevier B.V. All rights reserved.
机译:提出了一种新的连续生产和提取细菌的生物活性prodigiosin(PG)从银纳米粒子浸渍的功能性活性炭复合材料发酵的成本效益和生态友好的微生物技术。因此,在这项研究中,将银纳米颗粒浸渍到功能性活性炭([AC](F))上作为载体基质,并使PG共轭银纳米颗粒与发酵介质分离。进行了实验室规模的实验,以评估使用[AC @ Ag](F)进行的PG的连续生产和回收率。通过FT-IR,XRD,TGA,DSC和SEM表征了Ag纳米粒子浸渍的[AC](F)([AC @ Ag](F))。仪器分析证实,通过用二乙醇胺对AC进行官能化,Ag纳米颗粒明显地浸渍在AC上,并增强了AC与Ag之间的结合能力。使用响应表面方法(RSM)对PG的回收率进行了统计优化,例如接触时间,pH和[AC @ Ag](F)的质量。发现[AC @ Ag] F中PG的最大提取量为16.2 +/- 0.2 mg g(-1),是[AC](F)的两倍。此外,检查了共轭PG的[AC @ Ag](F)和([AC @ Ag](F)-PG)对革兰氏阴性和革兰氏阳性细菌的生长抑制作用,直到96小时都没有形成生物膜。因此,所开发的基质可以是生态友好,可行且能耗较低的步骤,用于从发酵液中分离细菌生物活性PG。另外,[AC @ Ag](F)-PG被用作防污基质而没有形成生物膜。 (C)2017 Elsevier B.V.保留所有权利。

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