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纳米流控晶体的蛋白质传感及其信号增强。

Protein sensing by nanofluidic crystal and its signal enhancement.

机构信息

Institute of Microelectronics, Peking University, Beijing, 100871, China ; School of Basic Medical Sciences, Peking University, Beijing, 100871, China.

Institute of Microelectronics, Peking University, Beijing, 100871, China.

出版信息

Biomicrofluidics. 2013 Apr 23;7(2):24112. doi: 10.1063/1.4802936. eCollection 2013.

Abstract

Nanofluidics has a unique property that ionic conductance across a nanometer-sized confined space is strongly affected by the space surface charge density, which can be utilized to construct electrical read-out biosensor. Based on this principle, this work demonstrated a novel protein sensor along with a sandwich signal enhancement approach. Nanoparticles with designed aptamer onside are assembled in a suspended micropore to form a 3-dimensional network of nanometer-sized interstices, named as nanofluidic crystal hereafter, as the basic sensing unit. Proteins captured by aptamers will change the surface charge density of nanoparticles and thereby can be detected by monitoring the ionic conductance across this nanofluidic crystal. Another aptamer can further enlarge the variations of the surface charge density by forming a sandwich structure (capturing aptamer/protein/signal enhancement aptamer) and the read-out conductance as well. The preliminary experimental results indicated that human α-thrombin was successfully detected by the corresponding aptamer modified nanofluidic crystal with the limit of detection of 5 nM (0.18 μg/ml) and the read-out signal was enhanced up to 3 folds by using another thrombin aptamer. Being easy to graft probe, facile and low-cost to prepare the nano-device, and having an electrical read-out, the present nanofluidic crystal scheme is a promising and universal strategy for protein sensing.

摘要

纳流具有独特的性质,纳米尺寸受限空间中的离子电导率强烈受到空间表面电荷密度的影响,这可以被用来构建电读取生物传感器。基于这个原理,本工作展示了一种新型的蛋白质传感器以及三明治信号增强方法。在悬浮微孔中组装了带有设计的适体的纳米颗粒,形成了纳米级间隙的三维网络,称为纳流晶体,作为基本传感单元。被适体捕获的蛋白质会改变纳米颗粒的表面电荷密度,从而可以通过监测穿过这种纳流晶体的离子电导率来检测。另一个适体可以通过形成三明治结构(捕获适体/蛋白质/信号增强适体)进一步放大表面电荷密度的变化,并增加读取电导。初步实验结果表明,通过相应的适体修饰的纳流晶体成功地检测到了人凝血酶,其检测限为 5 nM(0.18 μg/ml),并且通过使用另一个凝血酶适体,读取信号增强了 3 倍。本纳流晶体方案具有易于接枝探针、易于制备纳米器件以及具有电读取功能等优点,是一种用于蛋白质传感的很有前途和通用的策略。

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