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基于无干扰多通道整体式石英晶体微天平的实时多分析物生物传感器。

Real-time multianalyte biosensors based on interference-free multichannel monolithic quartz crystal microbalance.

机构信息

Department of Electronics, Faculty of Engineering, King Mongkut's Institute of Technology Ladkrabang (KMITL), Thailand; Nanoelectronics and MEMS Laboratory, National Electronics and Computer Technology Center (NECTEC), National Science and Technology Development Agency (NSTDA), Thailand.

Nanoelectronics and MEMS Laboratory, National Electronics and Computer Technology Center (NECTEC), National Science and Technology Development Agency (NSTDA), Thailand.

出版信息

Biosens Bioelectron. 2015 May 15;67:576-81. doi: 10.1016/j.bios.2014.09.047. Epub 2014 Sep 28.

Abstract

In this work, we design, fabricate and characterize a new interference-free multichannel monolithic quartz crystal microbalance (MQCM) platform for bio-sensing applications. Firstly, interference due to thickness-shear vibration mode coupling between channels in MQCM array is effectively suppressed by interposing a polydimethylsiloxane wall between adjacent QCM electrodes on a quartz substrate to form inverted-mesa-like structure. In addition, the electrical coupling due to the electrical impedance of solution is diminished by extending the flow path between them with an extended-design flow channel. The electrical testing results show that individual QCM signal is unaffected by those of adjacent channels under liquid loading, signifying the achievement of interference-free MQCM. The MQCM is applied for multi-analyte biosensing of IgG and HSA. The anti-IgG and anti-HSA are separately immobilized on two adjacent QCM electrodes, which are subsequently blocked with BSA to avoid unspecific binding. The MQCM biosensors are tested with single- and double-analyte solutions under continuous flow of buffer. The IgG and HSA QCM sensors only show frequency shift responses to their corresponding analytes and there are very small cross frequency shifts due to remnant unspecific binding. Moreover, MQCM sensors show approximately linear frequency shift response with analyte concentration. Therefore, the developed MQCM platform is promising for real-time interference-free label-free detection and quantification of multiple bio-analytes.

摘要

在这项工作中,我们设计、制造和表征了一种新的无干扰多通道单片石英晶体微天平(MQCM)平台,用于生物传感应用。首先,通过在石英衬底上的相邻 QCM 电极之间插入聚二甲基硅氧烷(PDMS)壁,形成倒台状结构,有效地抑制了 MQCM 阵列中厚度剪切振动模式之间的干涉。此外,通过延长它们之间的流道来减小由于溶液的阻抗引起的电耦合,从而扩展了设计的流道。电测试结果表明,在液体加载下,单个 QCM 信号不受相邻通道的影响,这表明实现了无干扰的 MQCM。该 MQCM 用于 IgG 和 HSA 的多分析物生物传感。将抗 IgG 和抗 HSA 分别固定在两个相邻的 QCM 电极上,然后用 BSA 封闭以避免非特异性结合。在缓冲液的连续流动下,用单和双分析物溶液测试 MQCM 生物传感器。IgG 和 HSA QCM 传感器仅对其相应的分析物表现出频率移动响应,由于残余的非特异性结合,只有非常小的交叉频率移动。此外,MQCM 传感器的分析物浓度表现出近似线性的频率移动响应。因此,所开发的 MQCM 平台有望用于实时无干扰的无标记检测和多个生物分析物的定量。

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