Tortolini Cristina, Sanzò Gabriella, Antiochia Riccarda, Mazzei Franco, Favero Gabriele
Department of Chemistry and Drug Technologies, Sapienza University of Rome, P.le Aldo Moro, 5, 00185, Roma, Italy.
Methods Mol Biol. 2017;1572:41-53. doi: 10.1007/978-1-4939-6911-1_4.
Electrochemical biosensors provide an attractive means of analyzing the content of a biological sample due to the direct conversion of a biological event to an electronic signal. The signal transduction and the general performance of electrochemical biosensors are often determined by the surface architectures that connect the sensing element to the biological sample at the nanometer scale. The most common surface modification techniques, the various electrochemical transduction mechanisms, and the choice of the recognition receptor molecules all influence the ultimate sensitivity of the sensor. We show herein a novel electrochemical biosensing platform based on the coupling of two different nanostructured materials (gold nanoparticles and fullerenols) displaying interesting electrochemical features. The use of these nanomaterials improved the electrochemical performance of the proposed biosensor.An application of the nanostructured enzyme-based biosensor has been developed for evaluating the detection of polyphenols either in buffer solution or in real wine samples.
电化学生物传感器由于能将生物事件直接转化为电信号,为分析生物样品的成分提供了一种有吸引力的手段。电化学生物传感器的信号转导和总体性能通常由在纳米尺度上将传感元件与生物样品连接起来的表面结构决定。最常见的表面修饰技术、各种电化学转导机制以及识别受体分子的选择都会影响传感器的最终灵敏度。我们在此展示了一种基于两种具有有趣电化学特性的不同纳米结构材料(金纳米颗粒和富勒醇)耦合的新型电化学生物传感平台。这些纳米材料的使用改善了所提出的生物传感器的电化学性能。一种基于纳米结构酶的生物传感器已被开发用于评估在缓冲溶液或实际葡萄酒样品中多酚的检测。