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Construction of a Cell Surface Engineered Yeast Aims to Selectively Recover Molybdenum, a Rare Metal

机译:细胞表面工程酵母的构建旨在选择性回收钼(一种稀有金属)

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The depletion of rare metals is an issue of major concern since rare metals are limited in the abundance but essential for high technology industry. However, the present rare metal recovery technology by chemical methods has high environmental impact, poor selectivity, and is too expensive to be practical. To resolve these problems, this study aimed to create a rare metal recovery system using yeast, and molybdenum was selected as the first target. A molybdenum binding protein, ModE, which was derived from Escherichia coli was selected. A fusion gene was generated by linking partial modE with a secretion signal and a domain of a-agglutinin to display the ModE on the surface of yeast cells. The expression of fusion protein on the cell surface was detected by immunofluorescence labeling. As for the recovery experiment, the engineered yeast cells were incubated in 10 mM of sodium molybdate solution for 2 h, and the recovery of molybdenum ion was measured by ICP-AES. The results of fluorescence micrographs showed that the designed fusion protein was successfully expressed on yeast cell surface. According to the results of ICP-AES, the cell surface engineered yeast adsorbed molybdenum and the cells after 72-84 h incubation gave the best adsorption. Besides, the results suggested that the optimization of each functional domain in the fusion protein was important. The selectivity and the lower limit of recoverable concentration are under investigation, while this study provides a preliminary result of bio-extraction technology using cell surface engineered yeast.
机译:稀有金属的消耗是一个主要问题,因为稀有金属的含量有限,但对高科技行业却至关重要。但是,目前的通过化学方法的稀有金属回收技术对环境的影响大,选择性差,并且太昂贵而不能实用。为了解决这些问题,本研究旨在创建一种使用酵母的稀有金属回收系统,并选择了钼作为第一个靶标。选择了来源于大肠杆菌的钼结合蛋白ModE。通过将部分modE与分泌信号和α-凝集素的结构域连接而产生融合基因,以在酵母细胞表面上展示该ModE。通过免疫荧光标记检测融合蛋白在细胞表面的表达。对于回收实验,将工程酵母细胞在10 mM钼酸钠溶液中孵育2小时,然后通过ICP-AES测定钼离子的回收率。荧光显微照片的结果表明,所设计的融合蛋白已在酵母细胞表面成功表达。根据ICP-AES的结果,细胞表面工程化酵母吸收了钼,温育72-84 h后细胞获得了最佳吸附。此外,结果表明融合蛋白中每个功能域的优化是重要的。选择性和可回收浓度的下限正在研究中,而本研究提供了使用细胞表面工程酵母的生物提取技术的初步结果。

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