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Nanometer-scale mapping and single-molecule detection with color-coded nanoparticle probes

机译:使用颜色编码的纳米粒子探针进行纳米级制图和单分子检测

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We report a method for single-molecule detection and biomolec-ular structural mapping based on dual-color imaging and automated colocalization of bioconjugated nanoparticle probes at nanometer precision. In comparison with organic dyes and fluorescent proteins, nanoparticle probes such as fluorescence energy-transfer nanobeads and quantum dots provide significant advantages in signal brightness, photostability, and multicolor-light emission. As a result, we have achieved routine two-color super-resolution imaging and single-molecule detection with standard fluorescence microscopes and inexpensive digital color cameras. By using green and red nanoparticles to simultaneously recognize two binding sites on a single target, individual biomolecules such as nucleic acids are detected and identified without target amplification or probe/target separation. We also demonstrate that a powerful astrophysical method (originally developed to analyze crowded stellar fields) can be used for automated and rapid statistical analysis of nanoparticle colocalization signals. The ability to rapidly localize bright nanoparticle probes at nanometer precision has implications not only for ultrasensitive medical detection but also for structural mapping of molecular complexes in which individual components are tagged with color-coded nanoparticles.
机译:我们报告了一种基于双色成像和生物共轭纳米粒子探针在纳米精度下自动共定位的单分子检测和生物分子结构图绘制方法。与有机染料和荧光蛋白相比,诸如荧光能量转移纳米珠和量子点之类的纳米探针在信号亮度,光稳定性和多色发光方面具有明显优势。结果,我们已经使用标准的荧光显微镜和廉价的数字彩色相机实现了常规的两色超分辨率成像和单分子检测。通过使用绿色和红色纳米颗粒同时识别单个靶标上的两个结合位点,无需靶标扩增或探针/靶标分离即可检测和鉴定单个生物分子(如核酸)。我们还证明了强大的天体物理方法(最初被开发用于分析拥挤的恒星场)可以用于纳米粒子共定位信号的自动和快速统计分析。以纳米级精度快速定位明亮的纳米颗粒探针的能力不仅对超灵敏医学检测有影响,而且对分子复合物的结构作图也有影响,在分子复合物中,各个组分都用颜色编码的纳米颗粒标记。

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