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首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >Engineering enzyme-coupled hybrid nanoflowers: The quest for optimum performance to meet biocatalytic challenges and opportunities
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Engineering enzyme-coupled hybrid nanoflowers: The quest for optimum performance to meet biocatalytic challenges and opportunities

机译:工程酶联杂交纳米割草机:寻求最佳性能,以满足生物催化挑战和机遇

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The current industrial revolution signifies the high-value of biocatalysis engineering. Over the past decade, multiple micro- and nanostructured materials have been attempted for immobilization of enzymes to improve their catalytic properties. Conventional immobilization strategies result in improved stability, while insolubilized enzymes generally lost their activity compared to free counterparts. Recently, a new generation organic-inorganic hybrid nanoflowers with unique properties have received great attention as a novel and incentive immobilization approach owing to their simple fabrication, high biocatalytic efficiency, and enzyme stabilizing capability. The hybrid nanoflowers biocatalytic system implicates metal ions and biomolecules (enzymes). In contrast to free or conventionally immobilized enzymes, single enzyme or multi enzyme-incorporated flowers-like hybrid nanoconstructs demonstrated elevated catalytic activities and stabilities over a very broader range of experimental conditions, i.e., pHs, temperatures and salt concentration. This review discusses the recent developments in the fabrication strategies to diversifying nanoflowers, types, characteristics, and applications of organic inorganic hybrid nanoflowers as a host platform to engineer different kinds of enzymes with requisite functionalities for biocatalysis applications in different sectors of the modern world. Based on experimental and theoretical literature data, the review is wrapped up with concluding remarks and an outlook in terms of upcoming challenges and prospects for their scale-up applications. (C) 2019 Elsevier B.V. All rights reserved.
机译:目前的工业革命意味着生物分析工程的高价值。在过去的十年中,已经尝试了多种微型和纳米结构材料来固定酶以改善其催化性质。传统的固定策略导致稳定性提高,而与免费的对应物相比,渗透酶通常损失活性。最近,由于其简单的制造,高生物催化效率和酶稳定能力,具有独特性质的新一代有机无机杂交纳米哨者作为一种新颖和激励的固定方法。杂交纳米锤子生物催化系统意味着金属离子和生物分子(酶)。与自由或常规固定化酶相比,单一酶或多酶掺入的杂种纳米核结构在非常较宽的实验条件下,即pH,温度和盐浓度上显示出升高的催化活性和稳定性。本综述讨论了制造策略的最新发展,使有机无机杂交纳米圈作为宿主平台的多样化纳米割草机,类型,特征和应用,以工程为改造不同种类的酶,在现代世界的不同部门中具有必要的生物分析应用的必要函数。基于实验和理论文学数据,审查是在即将到来的挑战和前景的结束言论和前景,审查呈现出来,并为其扩展申请提供了挑战和前景。 (c)2019 Elsevier B.v.保留所有权利。

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