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首页> 外文期刊>Journal of biomolecular screening: The official journal of the Society for Biomolecular Screening >Single Molecule Detection Technologies in Miniaturized High Throughput Screening: Fluorescence Correlation Spectroscopy
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Single Molecule Detection Technologies in Miniaturized High Throughput Screening: Fluorescence Correlation Spectroscopy

机译:小型化高通量筛选中的单分子检测技术:荧光相关光谱

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Fluorescence assay technologies used for miniaturized high throughput screening are broadly divided into two classes. Macroscopic fluorescence techniques (encompassing conventional fluorescence intensity, anisotropy [also often referred to as fluorescence polarization] and energy transfer) monitor the assay volume- and time-averaged fluorescence output from the ensemble of emitting fluorophores. In contrast, single-molecule detection (SMD) techniques and related approaches, such as fluorescence correlation spectroscopy (FCS), stochastically sample the fluorescence properties of individual constituent molecules and only then average many such detection events to define the properties of the assay system as a whole. Analysis of single molecular events is accomplished using confocal optics with an illumination/detection volume of approx 1 fl (10~(-15) L) such that the signal is insensitive to miniaturization of HTS assays to 1 #mu#L or below. In this report we demonstrate the general applicability of one SMD technique (FCS) to assay configuration for target classes typically encountered in HTS and confirm the equivalence of the rate/equilibrium constants determined by FCS and by macroscopic techniques. Advantages and limitations of the current FCS technology, as applied here, and potential solutions, particularly involving alternative SMD detection techniques, are also discussed.
机译:用于小型化高通量筛选的荧光分析技术大致分为两类。宏观荧光技术(包括常规的荧光强度,各向异性(通常也称为荧光偏振)和能量转移)可监控从发射荧光团整体输出的测定体积和时间平均荧光。相比之下,单分子检测(SMD)技术和相关方法(例如荧光相关光谱法(FCS))随机采样各个组成分子的荧光特性,然后对许多此类检测事件求平均值,以定义测定系统的特性,如下所述:整个。单分子事件的分析是使用共焦光学器件完成的,该共聚焦光学器件的照明/检测体积约为1 fl(10〜(-15)L),因此信号对HTS分析的小型化至1#mu#L或以下不敏感。在本报告中,我们证明了一种SMD技术(FCS)对于测定HTS中通常遇到的目标类别的配置的普遍适用性,并确认了由FCS和宏观技术确定的速率/平衡常数的等效性。本文还讨论了当前FCS技术的优势和局限性,以及潜在的解决方案,尤其是涉及替代SMD检测技术的解决方案。

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