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三维空间中单个有机染料和荧光蛋白的时间分辨共聚焦单分子跟踪。

Time-resolved, confocal single-molecule tracking of individual organic dyes and fluorescent proteins in three dimensions.

机构信息

Center for Integrated Nanotechnologies, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

ACS Nano. 2012 Oct 23;6(10):8922-32. doi: 10.1021/nn302912j. Epub 2012 Sep 17.

Abstract

We demonstrate following individual fluorescent protein constructs and individual organic dyes as they diffuse in 3-D in solution at rates up to 1 μm(2)/s over distances of several micrometers in X, Y, and Z. Our 3-D tracking method is essentially a stage scanning confocal microscope that uses a unique spatial filter geometry and active feedback 200 times/s to follow fast 3-D motion. Here we detail simulations used to find optimal feedback parameters for following individual fluorescent proteins in 3-D and show that a wide range of parameters are capable of following individual proteins diffusing at 1 μm(2)/s rates. In addition, we experimentally show that through 3-D single-molecule tracking of a protein oligomer series (monomer, dimer, and tetramer) of the fluorescent protein Azami Green one can determine the protein oligomerization state. We also perform time-resolved spectroscopy (photon pair correlation measurements) during the measured 3-D trajectories. The photon pair correlation measurements show clear fluorescence photon antibunching, demonstrating that the trajectories are of single fluorescent molecules. We note that the rates of single-molecule diffusive motion we follow (approximately 1 μm(2)/s) are comparable to or faster than many intracellular transport processes.

摘要

我们展示了以下单个荧光蛋白结构和单个有机染料,它们在溶液中以高达 1μm²/s 的速率在 X、Y 和 Z 方向上扩散,距离可达数微米。我们的 3-D 跟踪方法本质上是一种台扫共聚焦显微镜,它使用独特的空间滤波几何形状和主动反馈,以 200 倍/秒的速度跟踪快速 3-D 运动。在这里,我们详细介绍了用于找到最佳反馈参数以在 3-D 中跟踪单个荧光蛋白的模拟,并表明可以使用广泛的参数来跟踪以 1μm²/s 速率扩散的单个蛋白。此外,我们通过对荧光蛋白 Azami Green 的蛋白质寡聚体系列(单体、二聚体和四聚体)进行 3-D 单分子跟踪实验,确定了蛋白质的寡聚状态。我们还在测量的 3-D 轨迹期间进行了时间分辨光谱学(光子对相关测量)。光子对相关测量显示出明显的荧光光子反聚束,证明轨迹是单个荧光分子的。我们注意到,我们跟踪的单个分子扩散运动的速度(约 1μm²/s)与许多细胞内运输过程相当或更快。

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