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Single-enzyme biomineralization of cadmium sulfide nanocrystals with controlled optical properties

机译:具有受控光学特性的硫化镉纳米晶体的单酶生物矿化

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摘要

Nature has evolved several unique biomineralization strategies to direct the synthesis and growth of inorganic materials. These natural systems are complex, involving the interaction of multiple biomolecules to catalyze biomineralization and template growth. Herein we describe the first report to our knowledge of a single enzyme capable of both catalyzing mineralization in otherwise unreactive solution and of templating nanocrystal growth. A recombinant putative cystathionine γ-lyase (smCSE) mineralizes CdS from an aqueous cadmium acetate solution via reactive H2S generation from l-cysteine and controls nanocrystal growth within the quantum confined size range. The role of enzymatic nanocrystal templating is demonstrated by substituting reactive Na2S as the sulfur source. Whereas bulk CdS is formed in the absence of the enzyme or other capping agents, nanocrystal formation is observed when smCSE is present to control the growth. This dual-function, single-enzyme, aerobic, and aqueous route to functional material synthesis demonstrates the powerful potential of engineered functional material biomineralization.
机译:大自然已经进化出几种独特的生物矿化策略来指导无机材料的合成和生长。这些天然系统很复杂,涉及多个生物分子的相互作用以催化生物矿化和模板生长。在这里,我们描述了第一个报告,据我们所知,该酶既能催化原本无反应的溶液中的矿化作用,又能模板化纳米晶体的生长。重组推定的胱硫醚γ-裂合酶(smCSE)通过从L-半胱氨酸生成H2S来从醋酸镉水溶液中矿化CdS,并将纳米晶体的生长控制在量子尺寸范围内。通过取代活性Na2S作为硫源,可以证明酶促纳米晶体模板的作用。尽管在没有酶或其他加帽剂的情况下会形成大量CdS,但是当存在smCSE来控制生长时会观察到纳米晶体的形成。这种功能材料合成的双功能,单酶,好氧和水性途径证明了工程功能材料生物矿化的强大潜力。

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