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Label-Free Detection of Tumor Angiogenesis Biomarker Angiopoietin 2 Using Bloch Surface Waves on One Dimensional Photonic Crystals

机译:使用一维光子晶体上的Bloch表面波无标记检测肿瘤血管生成生物标志物血管生成素2

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摘要

We describe the design and fabrication of biochips based on 1-D photonic crystals supporting Bloch surface waves for label-free optical biosensing. The optical properties of Bloch surface waves are studied in relation to the geometry of the photonic crystals and on the properties of the dielectric materials used for the fabrication. The planar stacks of the biochips are composed of silica, tantala, and titania that were deposited using plasma-ion-assisted evaporation under high-vacuum conditions. The biochip surfaces were functionalized by silanization, and appropriate fluidic cells were designed to operate in an automated platform. An angularly resolved ellipsometric optical sensing apparatus was assembled to carry out the sensing studies. The angular operation is obtained by a focused laser beam at a fixed wavelength and detection of the angular reflectance spectrum by means of an array detector. The results of the experimental characterization of the physical properties of the fabricated biochips show that their characteristics, in terms of sensitivity and figure of merit, match those expected from the numerical simulations. Practical application of the sensor was demonstrated by detecting a specific glycoprotein, Angio-poietin 2, that is involved in angiogenesis and inflammation processes. The protocol used for the label-free detection of Angiopoietin 2 is described, and the results of an exemplary assay, carried out at a relatively high concentration of 1 μg/ml, are given and confirm that an efficient detection can be achieved. The limit of detection of the biochips for Angiopoietin 2, based on the protocol used, is 1.5 pg/mm2 in buffer solution. The efficiency of the label-free assay is confirmed by independent measurements carried out by means of confocal fluorescence microscopy.
机译:我们描述了基于1-D光子晶体的生物芯片的设计和制造,该晶体支持Bloch表面波用于无标签的光学生物传感。研究了Bloch表面波的光学特性,这些特性与光子晶体的几何形状以及用于制造的介电材料的特性有关。生物芯片的平面叠层由二氧化硅,塔塔拉和二氧化钛组成,它们是在高真空条件下使用等离子体离子辅助蒸发沉积的。通过硅烷化功能对生物芯片表面进行功能化,并设计适当的流体池以在自动化平台中运行。组装了角度分辨椭圆偏振光学传感设备以进行传感研究。通过在固定波长处聚焦激光束并通过阵列检测器检测角反射光谱来获得角操作。对制成的生物芯片的物理特性进行实验表征的结果表明,就灵敏度和品质因数而言,它们的特性与数值模拟所预期的相匹配。通过检测与血管生成和炎症过程有关的特定糖蛋白,血管生成素2,证明了传感器的实际应用。描述了用于血管生成素2的无标记检测的方案,并给出了以1μg/ ml的相对高浓度进行的示例性测定结果,并证实可以实现有效检测。根据使用的方案,在缓冲溶液中,血管生成素2的生物芯片的检出限为1.5 pg / mm2。无标记测定的效率通过共聚焦荧光显微镜进行的独立测量得到证实。

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