Beijing National Laboratory for Molecular Sciences, Key Laboratory of Analytical Chemistry for Living Biosystems, Institute of Chemistry, The Chinese Academy of Sciences, Beijing, P R China.
Anal Chem. 2011 Jul 15;83(14):5715-20. doi: 10.1021/ac200942a. Epub 2011 Jun 22.
This study demonstrates a new strategy to simplify the biosensor fabrication and thus minimize the biosensor-to-biosensor deviation through rational design and one-step formation of a multifunctional gel electronic transducer integrating all elements necessitated for efficiently transducing the biorecognition events to signal readout, by using glucose dehydrogenase (GDH) based electrochemical biosensor as an example. To meet the requirements for preparing integrated biosensors and retaining electronic and ionic conductivities for electronically transducing process, ionic liquids (ILs) with enzyme cofactor (i.e., oxidized form of nicotinamide adenine dinucleotide) as the anion were synthesized and used to form a bucky gel with single-walled carbon nanotubes, in which methylene green electrocatalyst was stably encapsulated for the oxidation of nicotinamide adenine dinucleotide. With such kind of rationally designed and one-step-formed multifunctional gel as the electronic transducer, the GDH-based electrochemical biosensors were simply fabricated by polishing the electrodes onto the gel followed by enzyme immobilization. This capability greatly simplifies the biosensor fabrication, prolongs the stability of the biosensors, and, more remarkably, minimizes the biosensor-to-biosensor deviation. The relative standard deviations obtained both with one electrode for the repeated measurements of glucose and with the different electrodes prepared with the same method for the concurrent measurements of glucose with the same concentration were 3.30% (n = 7) and 4.70% (n = 6), respectively. These excellent properties of the multifunctional gel-based biosensors substantially enable them to well-satisfy the pressing need of rapid measurements, for example, environmental monitoring, food analysis, and clinical diagnoses.
本研究展示了一种新的策略,通过合理设计和一步形成多功能凝胶电子换能器,将所有必需的元件集成在一起,从而简化生物传感器的制造,并最小化生物传感器之间的差异,以葡萄糖脱氢酶(GDH)为电化学生物传感器为例有效地将生物识别事件转换为信号读出。为了满足制备集成生物传感器的要求并保留电子和离子电导率以进行电子转换过程,合成了带有酶辅因子(即烟酰胺腺嘌呤二核苷酸的氧化形式)作为阴离子的离子液体(ILs),并将其与单壁碳纳米管形成巴基凝胶,其中稳定地封装了亚甲绿电催化剂,用于烟酰胺腺嘌呤二核苷酸的氧化。通过这种合理设计和一步形成的多功能凝胶作为电子换能器,简单地通过将电极抛光到凝胶上,然后进行酶固定化来制备基于 GDH 的电化学生物传感器。这种能力极大地简化了生物传感器的制造过程,延长了生物传感器的稳定性,更显著的是,最小化了生物传感器之间的差异。用同一电极对葡萄糖的重复测量和用相同方法制备的不同电极对相同浓度的葡萄糖的同时测量的相对标准偏差分别为 3.30%(n = 7)和 4.70%(n = 6)。多功能凝胶基生物传感器的这些优异性能使其能够很好地满足快速测量的迫切需求,例如环境监测、食品分析和临床诊断。