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基于电场诱导直接逐层沉积在ITO电极上进行双酶与聚电解质的位点选择性横向多层组装。

Site-selective lateral multilayer assembly of bienzyme with polyelectrolyte on ITO electrode based on electric field-induced directly layer-by-layer deposition.

作者信息

Shi Lixin, Lu Yingxi, Sun Jing, Zhang Jing, Sun Changqing, Liu Junqiu, Shen Jiacong

机构信息

Key Lab for Supramolecular Structure and Materials, Jilin University, Changchun, 130023, PR China.

出版信息

Biomacromolecules. 2003 Sep-Oct;4(5):1161-7. doi: 10.1021/bm030003e.

Abstract

We describe here a new approach to construct a multilayer enzyme/polyelectrolyte film on a structured transparent indium-tin oxide (ITO) covered glass electrode surface as micropattern, on which two different types of enzyme distributed laterally on one common substrate without interference. The multilayer film was prepared by alternate electric field directed layer-by-layer assembly deposition and alternate deposition of different redox enzymes and polyelectrolyte poly(diallyldimethylammonium chloride) (PDDA) onto the site-selective ITO glass electrode surface. The cyclic voltammogram, obtained from the ITO glass electrode modified with the glucose oxidase (GO(X))/PDDA and catalase (CA(T))/PDDA multilayers, revealed that the bioelectrocatalytic response is directly correlated to the number of deposition bilayers. From the analysis of cyclic voltammetric characterization, the coverage of catalytically active enzymes per enzyme/PDDA bilayer during the multilayer formation was homogeneous, which demonstrates that the multilayer is constructed in a spatially ordered manner. Also, from the atomic force microscopy and Brewster angle microscopy measurements, more information of the multilayer constructed by different methods on the modified electrode surface is obtained and compared. This fabrication technique is simple and would be applicable to the construction of a thickness- and area-controlled biopattern composed of multi-enzymes as well as multiple biomaterials.

摘要

我们在此描述一种新方法,即在结构化的透明氧化铟锡(ITO)覆盖的玻璃电极表面构建多层酶/聚电解质膜作为微图案,在该表面上两种不同类型的酶可在一个共同底物上横向分布且互不干扰。多层膜通过交替电场引导的逐层组装沉积以及将不同的氧化还原酶和聚电解质聚二烯丙基二甲基氯化铵(PDDA)交替沉积到位点选择性的ITO玻璃电极表面来制备。从用葡萄糖氧化酶(GO(X))/PDDA和过氧化氢酶(CA(T))/PDDA多层修饰的ITO玻璃电极获得的循环伏安图表明,生物电催化响应与沉积双层的数量直接相关。通过对循环伏安表征的分析,在多层形成过程中每个酶/PDDA双层上催化活性酶的覆盖率是均匀的,这表明多层是以空间有序的方式构建的。此外,通过原子力显微镜和布鲁斯特角显微镜测量,获得并比较了在修饰电极表面通过不同方法构建的多层膜的更多信息。这种制造技术简单,适用于构建由多种酶以及多种生物材料组成的厚度和面积可控的生物图案。

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