Laboratory of Molecular Biology and Biochemistry, The Rockefeller University, 1230 York Avenue, New York, New York 10065, USA.
Nature. 2010 Apr 29;464(7293):1386-9. doi: 10.1038/nature08948. Epub 2010 Apr 11.
Rhodopsin is a prototypical heptahelical family A G-protein-coupled receptor (GPCR) responsible for dim-light vision. Light isomerizes rhodopsin's retinal chromophore and triggers concerted movements of transmembrane helices, including an outward tilting of helix 6 (H6) and a smaller movement of H5, to create a site for G-protein binding and activation. However, the precise temporal sequence and mechanism underlying these helix rearrangements is unclear. We used site-directed non-natural amino acid mutagenesis to engineer rhodopsin with p-azido-l-phenylalanine residues incorporated at selected sites, and monitored the azido vibrational signatures using infrared spectroscopy as rhodopsin proceeded along its activation pathway. Here we report significant changes in electrostatic environments of the azido probes even in the inactive photoproduct Meta I, well before the active receptor state was formed. These early changes suggest a significant rotation of H6 and movement of the cytoplasmic part of H5 away from H3. Subsequently, a large outward tilt of H6 leads to opening of the cytoplasmic surface to form the active receptor photoproduct Meta II. Thus, our results reveal early conformational changes that precede larger rigid-body helix movements, and provide a basis to interpret recent GPCR crystal structures and to understand conformational sub-states observed during the activation of other GPCRs.
视紫红质是一个典型的七螺旋家族 A G 蛋白偶联受体(GPCR),负责暗光视觉。光使视紫红质的视黄醛发色团发生光异构化,并引发跨膜螺旋的协同运动,包括第六螺旋(H6)向外倾斜和 H5 的较小运动,从而产生与 G 蛋白结合和激活的位点。然而,这些螺旋重排背后的确切时间顺序和机制尚不清楚。我们使用定点非天然氨基酸诱变技术,在手性视紫红质中引入 p-叠氮-l-苯丙氨酸残基,并用红外光谱法监测叠氮振动特征,以跟踪视紫红质沿着其激活途径的进展。在这里,我们报告了即使在形成活性受体状态之前,叠氮探针的静电环境也会发生显著变化,在非活性光产物 Meta I 中就已经如此。这些早期变化表明 H6 发生了显著旋转,并且 H5 的细胞质部分远离 H3 移动。随后,H6 的大向外倾斜导致细胞质表面打开,形成活性受体光产物 Meta II。因此,我们的结果揭示了在更大的刚性体螺旋运动之前发生的早期构象变化,并为解释最近的 GPCR 晶体结构以及理解其他 GPCR 激活过程中观察到的构象亚态提供了基础。