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通过无机分子印迹技术将纳米结构人工受体与声子回旋模式光学微谐振器集成。

Integrating Nanostructured Artificial Receptors with Whispering Gallery Mode Optical Microresonators via Inorganic Molecular Imprinting Techniques.

机构信息

Department of Bioengineering, University of Missouri, Columbia, MO 65211, USA.

出版信息

Biosensors (Basel). 2016 Jun 15;6(2):26. doi: 10.3390/bios6020026.

Abstract

The creation of label-free biosensors capable of accurately detecting trace contaminants, particularly small organic molecules, is of significant interest for applications in environmental monitoring. This is achieved by pairing a high-sensitivity signal transducer with a biorecognition element that imparts selectivity towards the compound of interest. However, many environmental pollutants do not have corresponding biorecognition elements. Fortunately, biomimetic chemistries, such as molecular imprinting, allow for the design of artificial receptors with very high selectivity for the target. Here, we perform a proof-of-concept study to show how artificial receptors may be created from inorganic silanes using the molecular imprinting technique and paired with high-sensitivity transducers without loss of device performance. Silica microsphere Whispering Gallery Mode optical microresonators are coated with a silica thin film templated by a small fluorescent dye, fluorescein isothiocyanate, which serves as our model target. Oxygen plasma degradation and solvent extraction of the template are compared. Extracted optical devices are interacted with the template molecule to confirm successful sorption of the template. Surface characterization is accomplished via fluorescence and optical microscopy, ellipsometry, optical profilometry, and contact angle measurements. The quality factors of the devices are measured to evaluate the impact of the coating on device sensitivity. The resulting devices show uniform surface coating with no microstructural damage with Q factors above 10⁶. This is the first report demonstrating the integration of these devices with molecular imprinting techniques, and could lead to new routes to biosensor creation for environmental monitoring.

摘要

创建能够准确检测痕量污染物(特别是小分子有机化合物)的无标记生物传感器对于环境监测应用具有重要意义。这是通过将高灵敏度信号传感器与赋予对感兴趣化合物选择性的生物识别元件配对来实现的。然而,许多环境污染物没有相应的生物识别元件。幸运的是,仿生化学,如分子印迹,可以设计出对目标具有非常高选择性的人工受体。在这里,我们进行了一项概念验证研究,展示了如何使用分子印迹技术从无机硅烷中创建人工受体,并且在不损失器件性能的情况下与高灵敏度传感器配对。使用荧光染料荧光素异硫氰酸酯作为模板,在二氧化硅微球 whispering gallery mode 光学微谐振器上涂覆一层二氧化硅薄膜。我们将其作为模型靶标。比较了氧等离子体降解和模板的溶剂萃取。提取的光学器件与模板分子相互作用,以确认模板的成功吸附。通过荧光和光学显微镜、椭偏仪、光学轮廓仪和接触角测量来完成表面特性分析。测量器件的品质因数以评估涂层对器件灵敏度的影响。结果表明,所得器件具有均匀的表面涂层,没有微结构损伤,其品质因数超过 10⁶。这是首次报道证明这些器件与分子印迹技术的集成,这可能为环境监测中的生物传感器创建开辟新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da8b/4931486/156dd34e5825/biosensors-06-00026-g002.jpg

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