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嗜热酶在微型流动反应器中的固定化

Immobilization of thermophilic enzymes in miniaturized flow reactors.

作者信息

Hickey A M, Marle L, McCreedy T, Watts P, Greenway G M, Littlechild J A

机构信息

School of Biosciences, Henry Wellcome Building for Biocatalysis, University of Exeter, Stocker Road, Exeter EX4 4QD, U.K.

出版信息

Biochem Soc Trans. 2007 Dec;35(Pt 6):1621-3. doi: 10.1042/BST0351621.

Abstract

The exploitation of enzymes for biotransformation reactions for the production of new and safer drug intermediates has been the focus of much research. While a number of enzymes are commercially available, their use in an industrial setting is often limited to reactions that are cost-effective and they are rarely investigated further. However, the development of miniaturized flow reactor technology has meant that the cost of such research, once considered cost- and time-inefficient, would be much less prohibitive. The use of miniaturized flow reactors for enzyme screening offers a number of advantages over batch enzyme assay systems. Since the assay is performed on a miniaturized scale, enzyme, substrate and cofactor quantities are significantly reduced, thus reducing the cost of laboratory-scale investigations. Since flow reactors use microfluidic systems, where the substrate and products flow out of the system, the problems of substrate inhibition and product inhibition encountered by some enzymes are avoided. Quite often, enzymes fulfil a single-use function in biotransformation processes; however, enzyme immobilization allows enzyme reuse and often helps to increase enzyme stability. We have used an aminoacylase enzyme with potential use for industrial biotransformation reactions and have successfully immobilized it in miniaturized flow reactors. This L-aminoacylase is from the thermophilic archaeon Thermococcus litoralis. Two approaches to enzyme immobilization have been examined, both involving enzyme cross-linking. The first reactor type has used monoliths, to which the enzyme was attached, and the second contained previously cross-linked enzyme trapped using frits, in the microfluidic channels. Two different microreactor designs were used in the investigation: microreactor chips for the monoliths and capillary flow reactors for the cross-linked enzyme. These systems allowed passage of the substrate and product through the system while retaining the aminoacylase enzyme performing the catalytic conversion. The enzyme has been successfully immobilized and used to produce stable biocatalytic microreactors that can be used repeatedly over a period of several months.

摘要

利用酶进行生物转化反应以生产新型、更安全的药物中间体一直是众多研究的焦点。虽然有多种酶可商购获得,但它们在工业环境中的应用通常仅限于具有成本效益的反应,并且很少被进一步研究。然而,小型化流动反应器技术的发展意味着,这种曾经被认为成本高且耗时低效的研究成本将大大降低。与分批酶分析系统相比,使用小型化流动反应器进行酶筛选具有许多优势。由于分析是在小型规模上进行的,酶、底物和辅因子的用量显著减少,从而降低了实验室规模研究的成本。由于流动反应器使用微流体系统,底物和产物从系统中流出,避免了一些酶所遇到的底物抑制和产物抑制问题。在生物转化过程中,酶通常发挥一次性作用;然而,酶固定化允许酶重复使用,并且通常有助于提高酶的稳定性。我们使用了一种有潜力用于工业生物转化反应的氨基酰化酶,并成功地将其固定在小型化流动反应器中。这种L - 氨基酰化酶来自嗜热古菌嗜热栖热袍菌。研究了两种酶固定化方法,均涉及酶交联。第一种反应器类型使用了固定有酶的整体柱,第二种包含使用烧结板捕获的预先交联的酶,置于微流体通道中。研究中使用了两种不同的微反应器设计:用于整体柱的微反应器芯片和用于交联酶的毛细管流动反应器。这些系统允许底物和产物通过系统,同时保留进行催化转化的氨基酰化酶。该酶已成功固定,并用于生产可在数月内反复使用的稳定生物催化微反应器。

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