Okada Tetsuji, Fujiyoshi Yoshinori, Silow Maria, Navarro Javier, Landau Ehud M, Shichida Yoshinori
Department of Biophysics, Graduate School of Science, Kyoto University, and Core Research for Evolution Science and Technology (CREST), Japan Science and Technology Corporation, Kyoto 606-8502, Japan.
Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5982-7. doi: 10.1073/pnas.082666399. Epub 2002 Apr 23.
Activation of G protein-coupled receptors (GPCRs) is triggered and regulated by structural rearrangement of the transmembrane heptahelical bundle containing a number of highly conserved residues. In rhodopsin, a prototypical GPCR, the helical bundle accommodates an intrinsic inverse-agonist 11-cis-retinal, which undergoes photo-isomerization to the all-trans form upon light absorption. Such a trigger by the chromophore corresponds to binding of a diffusible ligand to other GPCRs. Here we have explored the functional role of water molecules in the transmembrane region of bovine rhodopsin by using x-ray diffraction to 2.6 A. The structural model suggests that water molecules, which were observed in the vicinity of highly conserved residues and in the retinal pocket, regulate the activity of rhodopsin-like GPCRs and spectral tuning in visual pigments, respectively. To confirm the physiological relevance of the structural findings, we conducted single-crystal microspectrophotometry on rhodopsin packed in our three-dimensional crystals and show that its spectroscopic properties are similar to those previously found by using bovine rhodopsin in suspension or membrane environment.
G蛋白偶联受体(GPCRs)的激活由包含多个高度保守残基的跨膜七螺旋束的结构重排触发和调节。在视紫红质(一种典型的GPCR)中,螺旋束容纳一个内在的反向激动剂11-顺式视黄醛,其在光吸收时发生光异构化形成全反式形式。发色团的这种触发对应于可扩散配体与其他GPCRs的结合。在这里,我们通过X射线衍射至2.6 Å探索了水分子在牛视紫红质跨膜区域中的功能作用。结构模型表明,在高度保守残基附近和视黄醛口袋中观察到的水分子分别调节视紫红质样GPCRs的活性和视觉色素中的光谱调谐。为了证实结构发现的生理相关性,我们对包装在我们的三维晶体中的视紫红质进行了单晶显微分光光度测定,并表明其光谱特性与先前在悬浮液或膜环境中使用牛视紫红质发现的光谱特性相似。