Brenker Kathrin, Osthof Kerstin, Yang Jianying, Reth Michael
Max-Planck Institute for Immunobiology und Epigenetics; Spemann Graduate School of Biology and Medicine (SGBM), University of Freiburg; Centre for Biological Signaling Studies, BIOSS, University of Freiburg;
Max-Planck Institute for Immunobiology und Epigenetics; Albert-Ludwigs-Universität.
J Vis Exp. 2016 Dec 30(118):54707. doi: 10.3791/54707.
Optogenetic tools allow isolated, functional investigations of almost any signaling molecule within complex signaling pathways. A major obstacle is the controlled delivery of light to the cell sample and hence the most popular tools for optogenetic studies are microscopy-based cell analyses and in vitro experiments. The flow cytometer has major advantages over a microscope, including the ability to rapidly measure thousands of cells at single cell resolution. However, it is not yet widely used in optogenetics. Here, we present a device that combines the power of optogenetics and flow cytometry: the LED Thermo Flow. This device illuminates cells at specific wavelengths, light intensities and temperatures during flow cytometric measurements. It can be built at low cost and be used with most common flow cytometers. To demonstrate its utility, we characterized the photoswitching kinetics of Dronpa proteins in vivo and in real time. This protocol can be adapted to almost all optically controlled substances and substantially expands the set of possible experiments. More importantly, it will greatly simplify the discovery and development of new optogenetic tools.
光遗传学工具能够对复杂信号通路中的几乎任何信号分子进行独立的功能研究。一个主要障碍是如何将光精准地传递到细胞样本,因此光遗传学研究中最常用的工具是基于显微镜的细胞分析和体外实验。流式细胞仪相对于显微镜具有诸多主要优势,包括能够以单细胞分辨率快速测量数千个细胞。然而,它在光遗传学中尚未得到广泛应用。在此,我们展示一种结合了光遗传学和流式细胞术功能的设备:LED 热流仪。该设备在流式细胞术测量过程中,能以特定波长、光强度和温度对细胞进行照明。它成本低廉,可与大多数常见的流式细胞仪配套使用。为证明其效用,我们对体内实时的 Dronpa 蛋白的光开关动力学进行了表征。该方案几乎可适用于所有光控物质,并极大地扩展了可能的实验范围。更重要的是,它将大大简化新光遗传学工具的发现和开发过程。