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Tandem catalysis in multicomponent solvent-free biofluids

机译:串联在多组分无溶剂催化biofluids

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摘要

Enzymes are widely employed to reduce the environmental impact of chemical industries as biocatalysts improve productivity and offer high selectively under mild reaction conditions in a diverse range of chemical transformations. The poor stability of biomacromolecules under reaction conditions is often a critical bottleneck to their application. Protein engineering or immobilization onto solid substrates may remedy this limitation but, unfortunately, this is often at the expense of catalytic potency or substrate specificity. In this work, we show that the combinatorial approach of chemical modification and supramolecular nanoencapsulation can endow mechanistically diverse enzymes with apparent extremophilic behavior. A protein-polymer surfactant core-shell architecture facilitates construction of increasingly complex biofluids from individual biosynthetic components, each of which retain biological activity at hydration levels almost two orders of magnitude below solvation. The herein constructed multifunctional biofluids operate in tandem up to 150 degrees C and in the total absence of solvent under apparent diffusional mass-transport limitation. The biosynthetic promotion of extremophilic traits for enzymes with diverse catalytic motions and chemical functions highlights the extraordinary capacity for a viscous surfactant milieu to replace both hydration and bulk waters.
机译:酶被广泛用来减少化学行业的环境影响生物催化剂提高生产力和提供高有选择地在温和的反应条件各种各样的化学转换。下的《生物稳定性差反应条件通常是至关重要的他们的应用程序的瓶颈。工程或固定到固体基质可能解决这个限制,但不幸的是,这往往是牺牲催化效力或底物特异性。这项工作,我们表明,该组合化学改性的方法超分子nanoencapsulation可以赋予从力学上看明显不同的酶extremophilic行为。表面活性剂核壳结构促进日益复杂的biofluids建设从个体生物合成的组件,每个在水化的保留生物活性吗水平几乎低两个数量级溶剂化作用。biofluids在串联到150摄氏度和总无溶剂下明显的扩散质量输运的限制。extremophilic的生物合成的推广特征与不同的催化酶的运动和化学功能突出非凡的粘性表面活性剂的能力环境取代水化和大部分水域。

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