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用于无标记生物传感器应用的带有聚乙二醇聚合物刷的SOI光学微环谐振器。

SOI optical microring resonator with poly(ethylene glycol) polymer brush for label-free biosensor applications.

作者信息

De Vos Katrien, Girones Jordi, Popelka Stepan, Schacht Etienne, Baets Roel, Bienstman Peter

机构信息

Photonics Research Group, Department of Information Technology, Ghent University-IMEC, Sint-Pietersnieuwstraat 41, B-9000 Gent, Belgium.

出版信息

Biosens Bioelectron. 2009 Apr 15;24(8):2528-33. doi: 10.1016/j.bios.2009.01.009. Epub 2009 Jan 14.

Abstract

Label-free monitoring of biomolecular interactions has become of key importance for the emerging proteomics field. Monitoring real time interaction kinetics and high throughput screening of complex samples is of major importance for a variety of applications. We previously reported the use of Silicon-on-Insulator photonics microring resonators for cheap disposable biosensors on chip. Silicon photonics is a platform for micro- and nanoscale integrated devices that can be fabricated at extremely low cost, with standard CMOS processing facilities. Incorporation of a hydrophilic heterobifunctional polymer coating on the silicon chips largely improved the system's response to non-specific binding. We report the chemical coating procedure, the chemical surface characterization and optical measurements for both specific and non-specific interactions. Two heterobifunctional polymer coatings were investigated, alpha-sulfanyl-omega-carboxy-poly(ethylene glycol) and monoprotected diamino-poly(ethylene glycol). Homogenous coatings with thicknesses of 2.3 and 2.5 nm were obtained, corresponding to a surface loading of 99 pm/cm(2) carboxy- and 97 pm/cm(2) aminogroups, respectively. The polymer coated sensor with covalently bound biotin receptor molecules showed very low response to Bovine Serum Albumin (BSA) up to 1 mg/ml in contrast to a high response to avidin with much lower concentrations (2, 10, 87.5 and 175 microg/ml). By extrapolation the detection limit is about 10 ng/ml or 0.37 fg avidin mass. Comparison with the values reported for standard silanization confirms the polymer coating does not deteriorate the system's limit of detection. This makes the optical biosensor chip suitable to be integrated in a microflow system for commercial label-free biosensors and for lab-on-a-chip applications.

摘要

生物分子相互作用的无标记监测对于新兴的蛋白质组学领域已变得至关重要。监测实时相互作用动力学以及对复杂样品进行高通量筛选对于多种应用而言至关重要。我们之前报道了使用绝缘体上硅光子学微环谐振器来制造廉价的一次性芯片上生物传感器。硅光子学是一个用于微米和纳米级集成器件的平台,可利用标准的CMOS加工设备以极低的成本制造。在硅芯片上加入亲水性异双功能聚合物涂层极大地改善了系统对非特异性结合的响应。我们报告了针对特异性和非特异性相互作用的化学涂层程序、化学表面表征及光学测量。研究了两种异双功能聚合物涂层,α-硫醇基-ω-羧基-聚(乙二醇)和单保护二氨基-聚(乙二醇)。获得了厚度分别为2.3和2.5 nm的均匀涂层,分别对应于99 pm/cm²的羧基表面负载和97 pm/cm²的氨基表面负载。与对浓度低得多(2、10、87.5和175 μg/ml)的抗生物素蛋白有高响应相比,共价结合生物素受体分子的聚合物涂层传感器对高达1 mg/ml的牛血清白蛋白(BSA)显示出非常低的响应。通过外推,检测限约为10 ng/ml或0.37 fg抗生物素蛋白质量。与标准硅烷化报道的值进行比较证实聚合物涂层不会降低系统的检测限。这使得光学生物传感器芯片适合集成到用于商业无标记生物传感器和芯片实验室应用的微流系统中。

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