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用于稀土富集和材料应用的微生物合成系统的构建。

The Construction of a Microbial Synthesis System for Rare Earth Enrichment and Material Applications.

机构信息

Engineering Research Center of Advanced Rare Earth Materials, Department of Chemistry, Tsinghua University, Beijing, 100084, China.

出版信息

Adv Mater. 2023 Aug;35(33):e2303457. doi: 10.1002/adma.202303457. Epub 2023 Jun 30.

Abstract

Rare earth materials play an irreplaceable role in biomedical and high technology fields. However, typical mining and extraction approaches to rare earth elements (REEs) often lead to severe environmental problems and resource wastage due to the involvement of hazardous chemicals. Although biomining shows elegant alternatives, there are still grand challenges to sustainably isolate and recover REEs in nature because of insufficient metal-extracting microbes and RE-scavenging macromolecular tools. To obtain high-performance rare earth materials directly from rare earth ore, a new generation of biological synthesis strategies needs to be developed for the efficient preparation of REEs. The microbial synthesis system established here has achieved active biomanufacturing of high-purity rare earth products. Further, through employing robust affinity columns bioconjugated with structurally engineered proteins, outstanding separation of Eu/Lu and Dy/La is acquired with the purity of 99.9% (Eu), 97.1% (La), and 92.7% (Dy). More importantly, in situ one-pot synthesis of lanthanide-dependent methanol dehydrogenase is well harnessed and exclusively adsorbs La, Ce, Pr, and Nd in RE tailing for advanced biocatalysis, indicating high value-added application. Therefore, this novel biosynthetic platform provides an insightful roadmap to expand the scope of chassis engineering in terms of biofoundry and to manufacture valuable bioproducts related to REEs.

摘要

稀土材料在生物医学和高科技领域发挥着不可替代的作用。然而,典型的稀土元素(REEs)采矿和提取方法由于涉及危险化学品,往往会导致严重的环境问题和资源浪费。虽然生物采矿显示出了优雅的替代方案,但由于缺乏金属提取微生物和 RE 回收大分子工具,仍然存在可持续地从自然界中分离和回收 REE 的巨大挑战。为了直接从稀土矿石中获得高性能的稀土材料,需要开发新一代的生物合成策略,以高效地制备 REEs。这里建立的微生物合成系统已经实现了高纯度稀土产品的活性生物制造。此外,通过使用与结构工程化蛋白质偶联的强大亲和柱,实现了 Eu/Lu 和 Dy/La 的出色分离,纯度分别达到 99.9%(Eu)、97.1%(La)和 92.7%(Dy)。更重要的是,有效地利用了镧系元素依赖型甲醇脱氢酶的原位一锅合成,并专门吸附 RE 尾矿中的 La、Ce、Pr 和 Nd,用于先进的生物催化,表明了其具有高附加值的应用。因此,这个新型生物合成平台为底盘工程在生物铸造方面的扩展提供了一个有见地的路线图,并为与 REEs 相关的有价值的生物制品制造提供了可能。

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