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Photonic Crystal Enhancement of a Homogeneous Fluorescent Assay using Submicron Fluid Channels Fabricated by E-jet Patterning

机译:光子晶体增强的均相荧光测定法使用通过E-jet图案制作的亚微米流体通道

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摘要

We demonstrate the enhancement of a liquid-based homogenous fluorescence assay using the resonant electric fields from a photonic crystal (PC) surface. Because evanescent fields are confined to the liquid volume nearest to the photonic crystal, we developed a simple approach for integrating a PC fabricated on a silicon substrate within a fluid channel with submicron height, using electrohydrodynamic jet (e-jet) printing of a light-curable epoxy adhesive to define the fluid channel pattern. The PC is excited by a custom-designed compact instrument that illuminates the PC with collimated light that precisely matches the resonant coupling condition when the PC is covered with aqueous media. Using a molecular beacon nucleic acid fluorescence resonant energy transfer (FRET) probe for a specific miRNA sequence, we demonstrate an 8x enhancement of the fluorescence emission signal, compared to performing the same assay without exciting resonance in the PC detecting a miRNA sequence at a concentration of 62nM from a liquid volume of only ~20 nl. The approach may be utilized for any liquid-based fluorescence assay for applications in point-of-care diagnostics, environmental monitoring, or pathogen detection.
机译:我们演示了使用基于光子晶体(PC)表面的共振电场的基于液体的均相荧光测定法的增强。由于e逝场被限制在最接近光子晶体的液体体积中,因此我们开发了一种简单的方法,可以使用光动力的电动流体喷射(e-jet)打印技术将硅基板上制造的PC集成到亚微米高度的流体通道中。可固化的环氧胶以定义流体通道图案。定制设计的紧凑型仪器激发了PC的活力,当仪器被水性介质覆盖时,准直光可以精确匹配共振耦合条件,从而照亮PC。使用分子信标核酸荧光共振能量转移(FRET)探针检测特定的miRNA序列,与在PC上检测浓度相同的miRNA序列而不进行激发共振的情况下执行相同的测定方法相比,我们证明了荧光发射信号增强了8倍仅约20 nl的液体体积就能得到62nM的浓度。该方法可用于任何基于液体的荧光测定,以用于即时诊断,环境监测或病原体检测。

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