Department of Cell Biology, Yale University School of Medicine, New Haven, Connecticut 06520 United States.
Nano Lett. 2010 Nov 10;10(11):4657-63. doi: 10.1021/nl1028792.
Observing dynamics at the nanoscale requires submillisecond time resolution. Notably, in studying biological systems, three-dimensional (3D) trajectories of fluorescently labeled objects such as viruses or transport vesicles often need to be acquired with high temporal resolution. Here, we present a novel instrument that combines scanning-free multiplane detection at 3.2 kHz frame rate and single photon sensitivity with optimized beam-steering capabilities. This setup enables ultrafast 3D localization with submillisecond time resolution and nanometer localization precision. We demonstrate 3D tracking of single fluorescent particles at speeds of up to 150 nm/ms over several seconds and large volumes. By focused excitation of only the particle of interest, while avoiding confocal pinholes, the system realizes maximum detection efficiency at minimal laser irradiation. These features, combined with the avoidance of stage movement, provide high live-sample compatibility for future biomedical applications.
观察纳米尺度的动态需要亚毫秒级的时间分辨率。值得注意的是,在研究生物系统时,通常需要以高时间分辨率获取荧光标记物体(如病毒或运输小泡)的三维(3D)轨迹。在这里,我们提出了一种新的仪器,它将 3.2 kHz 帧率的无扫描多平面检测与单光子灵敏度以及优化的光束转向能力相结合。该设置可实现具有亚毫秒时间分辨率和纳米定位精度的超快 3D 定位。我们在几秒钟内以高达 150nm/ms 的速度展示了单个荧光颗粒的 3D 跟踪,并且可以跟踪大体积的颗粒。通过仅聚焦感兴趣的颗粒,同时避免共聚焦针孔,该系统在最小激光照射下实现了最大的检测效率。这些功能与避免载物台运动相结合,为未来的生物医学应用提供了高的活样本兼容性。