BioMark@UC, Faculty of Sciences and Technology, University of Coimbra, 3030-790 Coimbra, Portugal.
BioMark@ISEP, School of Engineering, Polytechnic Institute of Porto, 4249-015 Porto, Portugal.
Biosensors (Basel). 2021 May 13;11(5):152. doi: 10.3390/bios11050152.
As part of the biomimetic enzyme field, nanomaterial-based artificial enzymes, or nanozymes, have been recognized as highly stable and low-cost alternatives to their natural counterparts. The discovery of enzyme-like activities in nanomaterials triggered a broad range of designs with various composition, size, and shape. An overview of the properties of nanozymes is given, including some examples of enzyme mimics for multiple biosensing approaches. The limitations of nanozymes regarding lack of selectivity and low catalytic efficiency may be surpassed by their easy surface modification, and it is possible to tune specific properties. From this perspective, molecularly imprinted polymers have been successfully combined with nanozymes as biomimetic receptors conferring selectivity and improving catalytic performance. Compelling works on constructing imprinted polymer layers on nanozymes to achieve enhanced catalytic efficiency and selective recognition, requisites for broad implementation in biosensing devices, are reviewed. Multimodal biomimetic enzyme-like biosensing platforms can offer additional advantages concerning responsiveness to different microenvironments and external stimuli. Ultimately, progress in biomimetic imprinted nanozymes may open new horizons in a wide range of biosensing applications.
作为仿生酶领域的一部分,基于纳米材料的人工酶,或纳米酶,因其高度稳定和低成本而被认为是天然酶的替代品。纳米材料中酶样活性的发现引发了各种具有不同组成、大小和形状的设计。概述了纳米酶的性质,包括用于多种生物传感方法的酶模拟物的一些例子。纳米酶的选择性差和催化效率低的局限性可以通过其易于进行表面修饰来克服,并且可以调整特定的性质。从这个角度来看,分子印迹聚合物已成功地与纳米酶结合作为仿生受体,赋予选择性并提高催化性能。综述了构建印迹聚合物层在纳米酶上以实现增强的催化效率和选择性识别的令人信服的工作,这是在生物传感设备中广泛实施的必要条件。多模态仿生酶样生物传感平台可以在对不同微环境和外部刺激的响应方面提供额外的优势。最终,仿生印迹纳米酶的进展可能会为广泛的生物传感应用开辟新的视野。