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首页> 外文期刊>Chemical engineering journal >Enhanced enzymatic reaction by aqueous two-phase systems using parallel-laminar flow in a double Y-branched microfluidic device
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Enhanced enzymatic reaction by aqueous two-phase systems using parallel-laminar flow in a double Y-branched microfluidic device

机译:使用双层分支微流体装置中的平行层流量通过两相体系增强酶促反应

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摘要

Although there are several reports showing the employment of aqueous two-phase systems (ATPS) for biotransformation in large-scale, the industrial application of ATPS is still hampered by their drawbacks such as slow diffusive mass transfer, long settling time for phase separation, and batch processes. Here, we propose for the first time a continuous-flow process based on a suitably designed ATPS parallel-laminar flow in a double Ybranched microfluidic device using for enzymatic catalysis. In a model urease reaction, polyethylene glycol (PEG) 8 kDa and dextran (Dex) 500 kDa are selected as polymer solutions, in which the enzymes settle mainly in the Dex phase while the products partition mainly to the PEG phase during short residence time. On account of rapid micro-transport, as well as integrate one single step of biocatalysis and separation process, obvious intensification of enzymatic catalysis in such ATPS microfluidic platform is demonstrated. Compared with the conventional ATPS in a beaker under gentle stirring, the enzymatic reaction rate in ATPS microfluidic is 500 times higher. Furthermore, the effects of flow rates, substrate concentration, residence time, and recycling number on the reaction rate and conversion rate are evaluated, respectively. Our study provides an all-aqueous, micro-scale and coupled reaction-separation platform for the process intensification of enzymatic catalysis, which has not only theoretical significance, but also practical value for biotransformation-based fields, such as biomedical, pharmaceuticals and food applications.
机译:虽然有几个报告显示在大规模的生物转化中使用两相系统(ATP)的就业,但ATP的工业应用仍然受到它们的缺点,例如缓慢的漫射传质,相分离的长度稳定时间,以及批处理过程。这里,我们提出了基于使用用于酶促催化的双架子微流体装置中适当设计的ATP平行层流的连续流程。在模型脲酶反应中,选择聚乙二醇(PEG)8kDA和葡聚糖(DEX)500kDa作为聚合物溶液,其中酶主要在DEX阶段沉降,同时产物分配在短暂停留时间期间的PEG相。由于快速微量运输,以及整合了一步的生物分析和分离过程,证明了在这种ATP微流体平台中的酶促催化的明显增强。与温和搅拌下烧杯中的常规ATP相比,ATP微流体中的酶反应速率为500倍。此外,分别评估了流速,底物浓度,停留时间和再循环数对反应速率和转化率的影响。我们的研究提供了一种用于酶促催化的过程强化的全水,微级和耦合的反应分离平台,其不仅具有理论意义,而且还具有基于生物形象,药品和食品应用的生物形态的田间的实用价值。

著录项

  • 来源
    《Chemical engineering journal》 |2018年第2018期|共9页
  • 作者单位

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

    Southwest Jiaotong Univ Sch Life Sci &

    Engn Chengdu 610031 Sichuan Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Microfluidics; Parallel-laminar flow; Aqueous two-phase system; Enzymatic reaction; Enhancement;

    机译:微流体;平行层流;水性两相系统;酶促反应;增强;

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