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一种用于无标记生物分子检测的基于平面石英晶体微天平的多功能传感器设计。

A versatile planar QCM-based sensor design for nonlabeling biomolecule detection.

作者信息

Sota Hiroyuki, Yoshimine Hiroshi, Whittier Robert F, Gotoh Masanori, Shinohara Yasuro, Hasegawa Yukio, Okahata Yoshio

机构信息

Department of Research and Development, Amersham Biosciences K.K, Tokyo, Japan.

出版信息

Anal Chem. 2002 Aug 1;74(15):3592-8. doi: 10.1021/ac025526b.

Abstract

Despite high theoretical sensitivity, low-cost manufacture, and compactness potentially amenable to lab-on-a-chip use, practical hurdles have stymied the application of the quartz crystal microbalance (QCM) for aqueous applications such as detection of biomolecular interactions. The chief difficulty lies in achieving a sufficiently stable resonance signal in the presence of even minute fluctuations in hydrostatic pressure. In this work, we present a novel versatile planar sensor chip design (QCM chip) for a microliter-scale on-line biosensor. By sealing the quartz resonator along its edges to a flat, solid support, we provide uniform support for the crystal face not exposed to solvent, greatly decreasing deformation of the crystal resonator under hydrostatic pressure. Furthermore, this cassette design obviates the need for direct handling when exchanging the delicate quartz crystal in the flow cell. A prototype 27-MHz sensor signal exhibited very low noise over a range of flow rates up to 100 microL/min. In contrast, signals obtained from a conventional QCM sensor employing an O-ring-based holder were less stable and deteriorated even further with increasing flow rate. Additional control designs with intermediate amounts of unsupported undersurface yielded intermediate levels of stability, consistent with the interpretation that deformation of the crystal resonator under fluctuating hydraulic pressure is the chief source of noise. As a practical demonstration of the design's high effective sensitivity, we readily detected interaction between myoglobin and surface-bound antibody.

摘要

尽管石英晶体微天平(QCM)具有较高的理论灵敏度、低成本制造以及可能适用于芯片实验室使用的紧凑性,但实际障碍阻碍了其在诸如生物分子相互作用检测等水性应用中的应用。主要困难在于,即使在静水压力存在微小波动的情况下,也难以实现足够稳定的共振信号。在这项工作中,我们提出了一种用于微升规模在线生物传感器的新型通用平面传感器芯片设计(QCM芯片)。通过将石英谐振器沿其边缘密封到一个平坦的固体支撑物上,我们为未暴露于溶剂的晶体表面提供了均匀的支撑,大大减少了晶体谐振器在静水压力下的变形。此外,这种盒式设计避免了在更换流通池中的精密石英晶体时直接操作的需要。一个27兆赫兹的原型传感器信号在高达100微升/分钟的一系列流速范围内表现出非常低的噪声。相比之下,从采用基于O形环固定器的传统QCM传感器获得的信号稳定性较差,并且随着流速增加而进一步恶化。具有中间量无支撑底面的额外控制设计产生了中间水平的稳定性,这与晶体谐振器在波动水压下的变形是噪声主要来源的解释一致。作为该设计高效灵敏度的实际证明,我们很容易检测到肌红蛋白与表面结合抗体之间的相互作用。

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