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基于纳流控二极管的集成纳米缝阵列实现对飞摩尔浓度心肌肌钙蛋白的无标记特异性检测。

Label-free specific detection of femtomolar cardiac troponin using an integrated nanoslit array fluidic diode.

机构信息

Department of Electronic and Computer Engineering, The Hong Kong University of Science and Technology , Clear Water Bay, Kowloon, Hong Kong S. A. R.

出版信息

Nano Lett. 2014 Dec 10;14(12):6983-90. doi: 10.1021/nl5032524. Epub 2014 Nov 7.

Abstract

We demonstrate here for the first time the utility of an integrated nanofluidic diode for detecting and quantifying physiologically relevant macromolecules. Troponin T, a key human cardiac protein biomarker, was selectively and rapidly detected free of labels for concentrations down to 10 fg/mL (∼ 0.3 fM) in buffer as well as 10 pg/mL (∼ 300 fM) in untreated human serum. This ultrasensitive detection arises from monolithic integration of a unique nanofluidic diode structure that is highly robust and amenable to site-specific surface modification. The structure features a planar nanoslit array where each nanoslit is defined at a nominal width of 70 nm over a micrometer-scale silicon trench without the use of high-resolution patterning techniques. Through vapor deposition, a glass layer is placed at a nonuniform thickness, tapering the trench profile upward and contributing to the triangular nanoslit structure. This asymmetric profile is essential for ionic current rectification noted here at various pH values, ionic strengths, and captured target species, which modulate the surface-charge density within the sensitive region of the nanoslit. The nanoslit, unlike nanopores, offers only 1D confinement, which appears to be adequate for reasonable rectification. The measurements are found in quantitative agreement with the diode simulations for the first time based on a pH- and salt-dependent surface-charge model.

摘要

我们首次展示了集成纳米流控二极管在检测和定量生理相关的大分子方面的应用。肌钙蛋白 T 是一种关键的人类心脏蛋白生物标志物,我们在缓冲液中以无标记的方式对其进行了选择性和快速检测,检测下限低至 10 fg/mL(约 0.3 fM),在未经处理的人血清中,检测下限低至 10 pg/mL(约 300 fM)。这种超灵敏检测源于独特的纳米流控二极管结构的整体集成,该结构非常坚固且易于进行特定位置的表面修饰。该结构的特点是平面纳米缝隙阵列,每个纳米缝隙在微米级硅沟槽上的标称宽度为 70nm,而无需使用高分辨率的图案化技术。通过气相沉积,将玻璃层以非均匀的厚度放置,使沟槽轮廓向上逐渐变细,并形成三角形纳米缝隙结构。这种不对称的轮廓对于在不同 pH 值、离子强度和捕获的目标物种下观察到的离子电流整流至关重要,这些因素可以调节纳米缝隙敏感区域内的表面电荷密度。与纳米孔不同,纳米缝隙仅提供一维限制,这似乎足以实现合理的整流。基于 pH 值和盐度依赖的表面电荷模型,首次对二极管进行了模拟,我们的测量结果与二极管模拟结果非常吻合。

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