Effectively auto-regulated adsorption and recovery of rare earth elements via an engineered E. coli

吸附 化学 水溶液 生物吸附 解吸 镧系元素 化学工程 选择性 稀土 色谱法 核化学 吸附 有机化学 离子 矿物学 催化作用 工程类
作者
Xiaoman Xie,Xirui Tan,Yiyan Yu,Yunchong Li,Pengbo Wang,Yuan-Hao Liang,Yunjun Yan
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:424 (Pt C): 127642-127642 被引量:45
标识
DOI:10.1016/j.jhazmat.2021.127642
摘要

Conventional mining processes of rare earth elements (REEs) usually produce REEs-rich industrial waterwastes, which leads to a significant waste of REEs resources and causes serious environmental pollution. Biosorption using engineered microorganisms is an attractive technology for the recovery of REEs from aqueous solution. To regulate the REEs' adsorption and recovery by sensing extraneous REEs, an engineered cascaded induction system, pmrCAB operon containing a lanthanide-binding tag (LBT) for sensing REEs, was incorporated into E. coli in conjunction with a silica-binding protein (Si-tag) and dLBT anchored onto the cell membrane. The sensing and adsorption capacities for Terbium (Tb), a typical study subject of REEs, were enhanced by screening an effective LBT and increasing the dLBT copy number. The adsorption capacity for Tb reached the highest reported value of 41.9 mgg-1 dry cell weight (DCW). After adhering the engineered cells onto the silica column surface through overexpressed Si-tag, a high recovering efficiency (> 90%) of Tb desorption could be obtained with 3 bed volumes of citrate solution. In addition, the engineered cells also possessed fairly good adsorption capacity of other tested REEs. Our findings showed that the recovery of REEs with high efficiency, selectivity and controllability from aqueous solution can be well achieved via specifically bio-engineered strains.
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