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首页> 外文期刊>Journal of Immunological Methods >Microwave-Accelerated Metal-Enhanced Fluorescence (MAMEF) with silver colloids in 96-well plates: Application to ultra fast and sensitive immunoassays, High Throughput Screening and drug discovery.
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Microwave-Accelerated Metal-Enhanced Fluorescence (MAMEF) with silver colloids in 96-well plates: Application to ultra fast and sensitive immunoassays, High Throughput Screening and drug discovery.

机译:带有银胶体的微波加速金属增强荧光(MAMEF)在96孔板上:应用于超快速和灵敏的免疫测定,高通量筛选和药物发现。

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Fluorescence detection is the basis of most assays used in drug discovery and High Throughput Screening (HTS) today. In all of these assays, assay rapidity and sensitivity is a primary concern, the sensitivity determined by both the quantum yield of the fluorophores and efficiency of the detection system, while rapidity is determined by the physical and biophysical parameters of temperature, concentration, assay bioaffinity, etc. In this paper we describe a platform technology that promises to fundamentally address these two physical constraints of sensitivity and rapidity. By combining the use of Metal-Enhanced Fluorescence (MEF), a near-field effect that can significantly enhance fluorescence signatures, with low power microwave heating, we can significantly increase the sensitivity of surface assays as well as >95% kinetically complete the assay within a few seconds. In addition, the metallic nanostructures used to facilitate MEF appear to be preferentially heated as compared to the surface assay fluid, advantageously localizing the MEF and heating around the nanostructures. To demonstrate proof of principle, a 96-well plate has been functionalized with silver nanostructures, and a model protein avidin-biotin assay studied. In our findings, a greater than 5-fold fluorescence enhancement coupled with a approximately 90-fold increase in assay kinetics was observed, but with no assay washing steps needed due to the silver-enhanced evanescent field mode of excitation. These findings promise to strongly facilitate high throughput fluorescence-based processes, such as in biology, drug discovery and general compound screening.
机译:荧光检测是当今用于药物发现和高通量筛选(HTS)的大多数测定的基础。在所有这些测定中,测定的速度和灵敏度是首要考虑因素,灵敏度由荧光团的量子产率和检测系统的效率决定,而测定的速度由温度,浓度,测定生物亲和力的物理和生物物理参数决定在本文中,我们描述了一种平台技术,有望从根本上解决灵敏度和速度这两个物理限制。通过结合使用金属增强荧光(MEF)(可以显着增强荧光特征的近场效应)和低功率微波加热,我们可以显着提高表面测定的灵敏度以及在动力学上完成> 95%的测定在几秒钟内。另外,与表面分析液相比,用于促进MEF的金属纳米结构似乎被优先加热,从而有利地将MEF定位在纳米结构周围并加热。为证明原理,已用银纳米结构对96孔板进行了功能化,并研究了模型蛋白抗生物素蛋白-生物素测定。在我们的发现中,观察到荧光增强了5倍以上,测定动力学增加了约90倍,但是由于银增强的van逝场模式的激发,因此无需进行测定洗涤步骤。这些发现有望大大促进高通量的基于荧光的过程,例如生物学,药物发现和常规化合物筛选。

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