R

Victoria Tidmas, Jon S. Brazier, Janine Hawkins, S. Forbes, L. Bottoms, K. Farrington
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引用次数: 0

Abstract

Nanoparticle scaffolds can impart multiple benefits onto immobilized enzymes including enhanced stability, activity, and recoverability. The magnitude of these benefits is modulated by features inherent to the scaffold–enzyme conjugate, amongst which the size of the nanoscaffold itself can be critically important. In this review, we highlight the benefits of enzyme immobilization on nanoparticles and the factors affecting these benefits using quantum dots and gold nanoparticles as representative materials due to their maturity. We then review recent literature on the use of these scaffolds for enzyme immobilization and as a means to dissect the underlying mechanisms. Detailed analysis of the literature suggests that there is a “sweet-spot” for scaffold size and the ratio of immobilized enzyme to scaffold, with smaller scaffolds and lower enzyme:scaffold ratios generally providing higher enzymatic activities. We anticipate that ongoing studies of enzyme immobilization onto nanoscale scaffolds will continue to sharpen our understanding of what gives rise to beneficial characteristics and allow for the next important step, namely, that of translation to large-scale processes that exploit these properties.
R
纳米颗粒支架可以给固定化酶带来多种好处,包括增强稳定性、活性和可恢复性。这些益处的大小是由支架-酶偶联物固有的特征调节的,其中纳米支架本身的大小是至关重要的。在本文中,我们重点介绍了酶固定在纳米颗粒上的好处和影响这些好处的因素,并以量子点和金纳米颗粒为代表材料,由于它们的成熟。然后,我们回顾了最近关于这些支架用于酶固定化的文献,并作为剖析其潜在机制的一种手段。对文献的详细分析表明,支架尺寸和固定化酶与支架的比例存在一个“最佳点”,支架越小,酶含量越低,支架比例通常提供更高的酶活性。我们预计,正在进行的酶固定在纳米级支架上的研究将继续加深我们对产生有益特性的原因的理解,并允许下一个重要步骤,即转化为利用这些特性的大规模过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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