纳米技术
生物传感器
石墨烯
自愈水凝胶
场效应晶体管
多路复用
材料科学
晶体管
多路复用
化学
计算机科学
生物信息学
电压
电信
生物
量子力学
物理
高分子化学
作者
Hamed Hosseini Bay,Richard Vo,Xiaochuan Dai,Huan-Hsuan Hsu,Zhiming Mo,Siran Cao,Wenyi Li,Fiorenzo G. Omenetto,Xiaocheng Jiang
出处
期刊:Nano Letters
[American Chemical Society]
日期:2019-03-25
卷期号:19 (4): 2620-2626
被引量:45
标识
DOI:10.1021/acs.nanolett.9b00431
摘要
Nanoscale field-effect transistors (FETs) represent a unique platform for real time, label-free transduction of biochemical signals with unprecedented sensitivity and spatiotemporal resolution, yet their translation toward practical biomedical applications remains challenging. Herein, we demonstrate the potential to overcome several key limitations of traditional FET sensors by exploiting bioactive hydrogels as the gate material. Spatially defined photopolymerization is utilized to achieve selective patterning of polyethylene glycol on top of individual graphene FET devices, through which multiple biospecific receptors can be independently encapsulated into the hydrogel gate. The hydrogel-mediated integration of penicillinase was demonstrated to effectively catalyze enzymatic reaction in the confined microenvironment, enabling real time, label-free detection of penicillin down to 0.2 mM. Multiplexed functionalization with penicillinase and acetylcholinesterase has been demonstrated to achieve highly specific sensing. In addition, the microenvironment created by the hydrogel gate has been shown to significantly reduce the nonspecific binding of nontarget molecules to graphene channels as well as preserve the encapsulated enzyme activity for at least one week, in comparison to free enzymes showing significant signal loss within one day. This general approach presents a new biointegration strategy and facilitates multiplex detection of bioanalytes on the same platform, which could underwrite new advances in healthcare research.
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