Asbury Charles L
Department of Physiology and Biophysics, University of Washington, Seattle, Washington 98195.
Cold Spring Harb Protoc. 2016 May 2;2016(5):2016/5/pdb.prot085571. doi: 10.1101/pdb.prot085571.
In the microscopes we use to analyze total internal reflection fluorescence (TIRF), the emitted fluorescence is split chromatically, using dichroic filters, into either two or three different colors ("channels"). In our two-color instrument, the green emission wavelengths (405-488 nm; for imaging green fluorescent protein [GFP]-tagged proteins) and far-red emission wavelengths (650-800 nm; for imaging Alexa-647-labeled microtubules) are projected onto the upper and lower halves, respectively, of a single camera. A single filter can be swapped to collect near-red wavelengths (561-640 nm; for imaging mCherry, or Alexa-568-labeled microtubules) instead of far-red. Our three-color instrument is very similar except that the green, near-red, and far-red color ranges are projected onto three separate cameras. In either case, the different colors can be imaged simultaneously. Typically, we collect images at 10 frames/sec for ∼200 sec. We have developed a series of semiautomated image analysis programs, written in LabView, to obtain the brightness, residence time, and mobility of individual particles bound to single microtubules. The basic analysis steps are straightforward and could also be implemented using ImageJ or Matlab. For convenience, this protocol describes the analysis of a single microtubule. Data from many microtubules across many experimental trials are needed to obtain robust conclusions that are independent of stochastic and trial-to-trial variability.
在我们用于分析全内反射荧光(TIRF)的显微镜中,发射出的荧光通过二向色滤光片进行色分离,分为两种或三种不同颜色(“通道”)。在我们的双色仪器中,绿色发射波长(405 - 488纳米;用于成像绿色荧光蛋白[GFP]标记的蛋白质)和远红色发射波长(650 - 800纳米;用于成像Alexa - 647标记的微管)分别投射到单个相机的上半部分和下半部分。可以更换单个滤光片以收集近红色波长(561 - 640纳米;用于成像mCherry或Alexa - 568标记的微管)而非远红色波长。我们的三色仪器非常相似,只是绿色、近红色和远红色颜色范围分别投射到三个独立的相机上。在任何一种情况下,不同颜色都可以同时成像。通常,我们以每秒10帧的速度采集图像,持续约200秒。我们用LabView编写了一系列半自动图像分析程序,以获取与单个微管结合的单个粒子的亮度、停留时间和迁移率。基本分析步骤很简单,也可以使用ImageJ或Matlab来实现。为方便起见,本方案描述了对单个微管的分析。需要来自许多实验试验中多个微管的数据,以获得独立于随机和试验间变异性的可靠结论。