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分子印迹聚合物传感器阵列。

Molecularly imprinted polymer sensor arrays.

机构信息

Department of Chemistry and Biochemistry, University of South Carolina, Columbia, SC 29208, USA.

出版信息

Curr Opin Chem Biol. 2010 Dec;14(6):743-50. doi: 10.1016/j.cbpa.2010.07.007. Epub 2010 Aug 3.

Abstract

The sensor array format has proved an effective method of transforming sensors of modest selectivity into highly selective and discriminating sensors. The primary challenge in developing new sensor arrays is collecting together a sufficient number of recognition elements that possess different binding affinities for the analytes of interest. In this regard, the use of molecularly imprinted polymers (MIPs) as the recognition elements in sensor arrays has a number of unique advantages. MIPs can be rapidly and inexpensively prepared with different selectivities and tuned with different selectivity patterns via the choice of templates in the imprinting process. The array format also helps compensate for the low selectivities and high cross-reactivities of MIP sensors. These attractive qualities of MIP sensor arrays have been demonstrated in recent examples, which have established the viability and generality of the approach. In particular, the versatility of the imprinting process enables MIP sensor arrays to be tailored to specific analytes. MIP sensor arrays have also shown surprisingly broad utility, as even analytes that were not used as templates in the imprinting process can be effectively discriminated.

摘要

传感器阵列格式已被证明是将选择性适中的传感器转化为高选择性和区分性传感器的有效方法。开发新型传感器阵列的主要挑战是收集足够数量的识别元件,这些元件对感兴趣的分析物具有不同的结合亲和力。在这方面,将分子印迹聚合物 (MIP) 用作传感器阵列中的识别元件具有许多独特的优势。MIP 可以通过印迹过程中模板的选择快速且廉价地制备,并具有不同的选择性模式进行调整。阵列格式还有助于弥补 MIP 传感器选择性低和交叉反应性高的问题。MIP 传感器阵列的这些吸引人的特性已在最近的一些例子中得到证明,这些例子确立了该方法的可行性和通用性。特别是,印迹过程的多功能性使 MIP 传感器阵列能够针对特定的分析物进行定制。MIP 传感器阵列的用途也非常广泛,即使是在印迹过程中未用作模板的分析物也可以有效地进行区分。

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