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High-throughput bioaccumulation, biotransformation, and production of silver and selenium nanoparticles using genetically engineered Pichia pastoris

机译:使用基因工程毕赤酵母进行高通量生物富集,生物转化以及生产银和硒纳米颗粒

摘要

A genetically modified Pichia pastoris strain overexpressing a metal-resistant variant of cytochrome b5 reductase enzyme was developed for silver and selenium biosorption and for nanoparticle production. The maximum recombinant enzyme expression level was approximately 31 IU/ml in the intercellular fluid after 24 h of incubation, and the capacity of the recombinant biomass for the biosorption of silver and selenium in aqueous batch models were measured as 163.90 and 63.71 mg/g, respectively. The ions were reduced in the presence of enzyme, leading to the formation of stable 70–180 nm metal nanoparticles. Various instrumental analyses confirmed the well-dispersed and crystalline nature of the spherical nanometals. The purified silver and selenium nanoparticles exhibited at least 10-fold less cytotoxicity toward HDF, EPG85–257, and T47D cells than silver nitrate and selenium dioxide. These results revealed that the engineered Pichia strain is an eco-friendly, rapid, high-throughput, and versatile reduction system for nanometal production.
机译:已开发出一种过表达基因表达的巴斯德毕赤酵母菌株,该菌株过量表达了细胞色素b5还原酶的金属抗性变异体,用于银和硒的生物吸附以及纳米颗粒的生产。孵育24小时后,细胞间液中的最大重组酶表达水平约为31 IU / ml,在水批次模型中,重组生物量对银和硒的生物吸附能力为163.90和63.71 mg / g,分别。离子在存在酶的情况下被还原,从而形成稳定的70-180 nm金属纳米颗粒。各种仪器分析证实了球形纳米金属的良好分散性和结晶性。纯化的银和硒纳米粒子对HDF,EPG85-257和T47D细胞的细胞毒性比硝酸银和二氧化硒低至少10倍。这些结果表明,工程毕赤酵母菌株是一种用于纳米金属生产的生态友好,快速,高通量且用途广泛的还原系统。

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