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An enhanced enzymatic reaction using a triphase system based on superhydrophobic mesoporous nanowire arrays

机译:基于超疏水介孔纳米线阵列的三相系统增强的酶促反应

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摘要

Gaseous reactants play a key role in a wide range of biocatalytic reactions, however reaction kinetics are generally limited by the slow mass transport of gases (typically oxygen) in or through aqueous solutions. Inspired by the morphologies of natural non-wetting surfaces, herein we address this limitation by developing a triphase reaction system possessing a triphase gas-solid-liquid interface. As a proof of concept, we study the kinetics of glucose oxidase (GOx) catalyzed reactions using a triphase system fabricated by layering GOx upon superhydrophobic mesoporous ZnO nanowire arrays through which oxygen, needed for the enzymatic reaction, is supplied directly from the atmosphere to the liquid-solid interface. We find that the enzymatic reaction rate is enhanced by a factor of 30 over that obtained from a conventional diphase system where oxygen is supplied through and from the liquid. The triphase system offers the opportunity to develop high performance bioassay systems, serving as an enabling platform for addressing challenges posed by gas-deficit kinetics.
机译:气态反应物在广泛的生物催化反应中发挥关键作用,但是反应动力学通常受到气体(通常氧气)的缓慢传输或通过水溶液的慢的质量传输。灵感来自天然非润湿表面的形态,在本文中,我们通过开发具有三血酶气体 - 固液界面的三相反应系统来解决这种限制。作为概念证据,我们使用通过层氧化物型ZnO纳米线阵列的分层GOX制造的三相体系来研究葡萄糖氧化酶(GOX)催化反应的动力学,通过该ZnOx,通过该Zonox XNO纳米线阵列通过该酶来源所需的氧,直接从大气中提供给液固界面。我们发现酶反应速率通过从常规二相系统获得的30倍,其中氧气通过液体提供氧气。 Trikhase系统提供了开发高性能生物测划系统的机会,作为解决煤气缺陷动力学构成的挑战的能力平台。

著录项

  • 来源
    《Nanoscale Horizons》 |2019年第1期|共5页
  • 作者单位

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;工程材料学;
  • 关键词

  • 入库时间 2022-08-20 04:26:19

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