Prasad Sonal, Zeug Andre, Ponimaskin Evgeni
Cellular Neurophysiology, Center of Physiology, Hannover Medical School, Hannover, Germany.
Methods Cell Biol. 2013;117:243-65. doi: 10.1016/B978-0-12-408143-7.00014-1.
G protein-coupled receptors (GPCRs) participate in the regulation of many cellular processes and, therefore, represent key targets for pharmacological treatment. The existence of GPCR homo- and heterodimers has become generally accepted, and a growing body of evidence points to the functional importance of oligomeric complexes for the receptor trafficking, receptor activation, and G protein coupling in native tissues. Quantitative molecular microscopy is becoming more and more important to investigate such receptor-receptor interaction in their native environments. Förster resonance energy transfer (FRET) is thereby utilized to aim at investigating the interaction of molecules at distances beyond diffraction-limited spatial resolution. The exact determination of the FRET signals, which are often only fractions of the fluorescence signals, requires extensive experimental effort. Moreover, the correct interpretation of FRET measurements as well as FRET data-based modeling represents an essential challenge in microscopy and biophysics. In this chapter, we present and discuss variety of acquisition protocols and models based on "linear unmixing FRET" (lux-FRET) to investigate receptor-receptor interaction in living cells with high spatial and temporal resolution. Here, we show how to apply lux-FRET in spectroscopic and different imaging devices, based either on spectral detection or on filter cubes. We focus on detailed description for FRET measurements and analyses based on sophisticated acquisition procedures according to different experimental setups and also provide several examples of biological applications.
G蛋白偶联受体(GPCRs)参与许多细胞过程的调节,因此是药物治疗的关键靶点。GPCR同源和异源二聚体的存在已被普遍接受,越来越多的证据表明寡聚复合物在天然组织中的受体转运、受体激活和G蛋白偶联方面具有功能重要性。定量分子显微镜对于研究其天然环境中的此类受体-受体相互作用变得越来越重要。福斯特共振能量转移(FRET)因此被用于研究衍射极限空间分辨率以外距离的分子相互作用。FRET信号通常只是荧光信号的一部分,准确测定这些信号需要大量的实验工作。此外,对FRET测量结果以及基于FRET数据的建模进行正确解读,是显微镜学和生物物理学中的一项重大挑战。在本章中,我们介绍并讨论了基于“线性解混FRET”(lux-FRET)的各种采集协议和模型,以高时空分辨率研究活细胞中的受体-受体相互作用。在这里,我们展示了如何在基于光谱检测或滤光片组的光谱和不同成像设备中应用lux-FRET。我们专注于根据不同实验设置,基于复杂采集程序对FRET测量和分析的详细描述,并提供了几个生物学应用实例。