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Acetylcholine biosensor based on the electrochemical functionalization of graphene field-effect transistors

机译:基于石墨烯场效应晶体管的电化学官能化的乙酰胆碱生物传感器

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摘要

We present a new strategy of Acetylcholinesterease (AchE) immobilization on graphene field-effect transistors (gFETs) for building up Acetylcholine sensors. This method is based on the electrosynthesis of an amino moiety-bearing polymer layer on the graphene channel. The film of the copolymer poly(3-amino-benzylamine-co-ani-line) (PABA) does not only provide the suitable electrostatic charge and non-denaturing environment for enzyme immobilization, but it also improves the pH sensitivity of the gFETs (from 40.8 to 56.3 mu A/pH unit), probably due to its wider effective pKa distribution. The local pH changes caused by the enzyme-catalyzed hydrolysis produce a shift in the Dirac point of the gFETs to more negative values, which are evidenced as differences in the gFET conductivity and thereby constituted the signal transduction mechanism of the modified transistors. In this way, the constructed biosensors showed a LOD of 2.3 mu M and were able to monitor Ach in the range from 5 to 1000 mu M in a flow configuration. Moreover, they showed a sensitivity of -26.6 +/- 0.7 mu A/Ach decade and also exhibited a very low RSD of 2.6%, revealing good device-to-device reproducibility. The biosensors revealed an excellent selectivity to interferences known to be present in the extracellular milieu, and the response to Ach was recovered by 97.5% after the whole set of interferences injected. Finally, the biosensors showed a fast response time, with an average value of 130 s and a good long-term response.
机译:我们在石墨烯场效应晶体管(GFET)上提出了一种新的乙酰胆碱酯酶(ACHE)固定的策略,用于建立乙酰胆碱传感器。该方法基于石墨烯通道上的亚氨基部分聚合物层的电合成。共聚物聚(3-氨基 - 苄胺 - Co-Ani-Line)(PABA)的薄膜不仅为酶固定化提供了合适的静电电荷和非变性环境,而且还提高了GFET的pH敏感性(从40.8至56.3亩/ pH单位),可能是由于其更广泛的有效PKA分布。由酶催化水解引起的局部pH变化会产生GFET的DIRAC点的变化,以更高的负值,这被证明为GFET电导率的差异,从而构成改进的晶体管的信号转导机构。以这种方式,构造的生物传感器显示了2.3μm的床位,并且能够在流动配置中监测5至1000μm的Ach。此外,它们显示出-26.6 +/- 0.7亩/ ach十年的敏感性,并且还表现出2.6%的低RSD,揭示了设备到装置的良好再现性。生物传感器揭示了已知存在于细胞外环境中的干扰的优异选择性,并且在整个注射的干扰后,将对ACH的反应得到97.5%。最后,生物传感器显示出快速响应时间,平均值为130秒和良好的长期响应。

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