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基于金-二氧化钛表面双功能蛋白质微阵列的实时电化学生物传感技术与活细胞原位选择性培养集成,用于细胞内 H2O2 的电化学监测。

Real-time electrochemical monitoring of cellular H2O2 integrated with in situ selective cultivation of living cells based on dual functional protein microarrays at Au-TiO2 surfaces.

机构信息

Department of Chemistry, Tongji University, Siping Road 1239, Shanghai 200092, People's Republic of China.

出版信息

Anal Chem. 2010 Aug 1;82(15):6512-8. doi: 10.1021/ac100807c.

Abstract

This paper demonstrates a novel strategy for site-selective cell adhesion and in situ cultivation of living cells, integrated with real-time monitoring of cellular small biomolecules based on dual functional protein microarrays. The protein microarrays have been produced on the superhydrophobic|philic Au-TiO2 micropatterns, through further modification of L-cysteine (Cys) and followed by successive immobilization of a model protein, cytochrome c (cyt c). Experimental results have revealed that the created cyt c microarrays play dual functions: one is employed as a robust substrate for site-selective cell adhesion and in situ cultivation of living cells, because the protein microarrays exhibit high selectivity and bioaffinity toward cells, as well as long biostability under cell culture condition up to 7 days. Meanwhile, the cyt c microarrays can also serve as sensing elements for hydrogen peroxide (H2O2) due to the inherent enzymatic activity of the heme center in cyt c. Direct electron transfer of cyt c has been enhanced at the Cys-modified Au-TiO2 (Au-TiO2/Cys) microarrays, and the electrochemical behavior can be tuned by varying the width and spacing of the microband arrays. Furthermore, cyt c is stably immobilized on the Au-TiO2/Cys microarrays and maintains its enzymatic activity after confined on the microarrays. Thus, the optimized cyt c microarrays show striking analytical performance for H2O2 determination, e.g., high sensitivity and selectivity, broad linear range from 10(-9) M to 10(-2) M, low detection limit down to 2 nM, and short response time within 5 s. As a result, the excellent analytical properties of the cyt c microarrays, as well as the characteristic of the protein microarrays themselves, including high selectivity, long biostability, and good bioaffinity, opens up a method for selective in situ cultivation of cells integrated with real-time detection of signaling biomolecules such as H2O2 released from living cells, which shows potential for physiological and pathological investigations.

摘要

本文展示了一种基于双功能蛋白质微阵列的新型策略,用于实现活细胞的选择性细胞黏附和原位培养,并实时监测细胞内的小分子生物物质。该蛋白质微阵列是在超疏水/亲水 Au-TiO2 微图案上制作的,通过进一步修饰 L-半胱氨酸 (Cys),然后连续固定模型蛋白细胞色素 c (cyt c)。实验结果表明,所创建的 cyt c 微阵列具有双重功能:一方面,它可用作选择性细胞黏附和活细胞原位培养的坚固基底,因为蛋白质微阵列对细胞表现出高度的选择性和生物亲和力,并且在细胞培养条件下具有长达 7 天的长生物稳定性。同时,由于 cyt c 中心的固有酶活性,cyt c 微阵列也可用作过氧化氢 (H2O2) 的传感元件。在 Cys 修饰的 Au-TiO2 (Au-TiO2/Cys) 微阵列上增强了 cyt c 的直接电子转移,并且可以通过改变微带阵列的宽度和间距来调整电化学行为。此外,cyt c 稳定地固定在 Au-TiO2/Cys 微阵列上,并在限制在微阵列上后保持其酶活性。因此,优化后的 cyt c 微阵列对 H2O2 的测定表现出出色的分析性能,例如高灵敏度和选择性、从 10(-9) M 到 10(-2) M 的宽线性范围、低检测限低至 2 nM 以及 5 s 内的短响应时间。结果,cyt c 微阵列的出色分析性能以及蛋白质微阵列本身的特性,包括高选择性、长生物稳定性和良好的生物亲和力,为选择性原位培养细胞并实时检测活细胞释放的信号生物分子(如 H2O2)提供了一种方法,这为生理和病理研究展示了潜力。

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