Jastrzebska Beata, Comar William D, Kaliszewski Megan J, Skinner Kevin C, Torcasio Morgan H, Esway Anthony S, Jin Hui, Palczewski Krzysztof, Smith Adam W
Department of Pharmacology, Cleveland Center for Membrane and Structural Biology, School of Medicine, Case Western Reserve University , 2109 Adelbert Road, Cleveland, Ohio 44106, United States.
Department of Chemistry, University of Akron , 190 Buchtel Common, Akron, Ohio 44325, United States.
Biochemistry. 2017 Jan 10;56(1):61-72. doi: 10.1021/acs.biochem.6b00877. Epub 2016 Nov 29.
G protein-coupled receptors (GPCRs) detect a wide variety of physical and chemical signals and transmit that information across the cellular plasma membrane. Dimerization is a proposed modulator of GPCR signaling, but the structure and stability of class A GPCR dimerization have been difficult to establish. Here we investigated the dimerization affinity and binding interface of human cone opsins, which initiate and sustain daytime color vision. Using a time-resolved fluorescence approach, we found that human red cone opsin exhibits a strong propensity for dimerization, whereas the green and blue cone opsins do not. Through mutagenesis experiments, we identified a dimerization interface in the fifth transmembrane helix of human red cone opsin involving amino acids I230, A233, and M236. Insights into this dimerization interface of red cone opsin should aid ongoing investigations of the structure and function of GPCR quaternary interactions in cell signaling. Finally, we demonstrated that the same residues needed for dimerization are also partially responsible for the spectral tuning of red cone opsin. This last observation has the potential to open up new lines of inquiry regarding the functional role of dimerization for red cone opsin.
G蛋白偶联受体(GPCRs)能检测多种物理和化学信号,并将这些信息传递穿过细胞质膜。二聚化是一种被提出的GPCR信号传导调节剂,但A类GPCR二聚化的结构和稳定性一直难以确定。在这里,我们研究了启动和维持日间色觉的人类视锥视蛋白的二聚化亲和力和结合界面。使用时间分辨荧光方法,我们发现人类红色视锥视蛋白表现出很强的二聚化倾向,而绿色和蓝色视锥视蛋白则不然。通过诱变实验,我们在人类红色视锥视蛋白的第五跨膜螺旋中确定了一个涉及氨基酸I230、A233和M236的二聚化界面。对红色视锥视蛋白这种二聚化界面的深入了解应有助于正在进行的关于细胞信号传导中GPCR四级相互作用的结构和功能的研究。最后,我们证明二聚化所需的相同残基也部分负责红色视锥视蛋白的光谱调谐。这一最后的观察结果有可能开辟关于红色视锥视蛋白二聚化功能作用的新研究方向。