Abstract
G protein-coupled receptors (GPCRs) undergo dynamic transitions between active and inactive conformations. Usually, these conversions are triggered when the receptor detects an external signal, but some so-called constitutively activating mutations, or CAMs, induce a GPCR to bind and activate G proteins in the absence of external stimulation, in ways still not fully understood. Here, we investigated how a CAM alters the structure of a GPCR and the dynamics involved as the receptor transitions between different conformations. Our approach used site-directed fluorescence labeling (SDFL) spectroscopy to compare opsin, the ligand-free form of the GPCR rhodopsin, with opsin containing the CAM M257Y, focusing specifically on key movements that occur in the sixth transmembrane helix (TM6) during GPCR activation. The site-directed fluorescence labeling data indicate opsin is constrained to an inactive conformation both in detergent micelles and lipid membranes, but when it contains the M257Y CAM, opsin is more dynamic and can interact with a G protein mimetic. Further study of these receptors using tryptophan-induced quenching (TrIQ) methods indicates that in detergent, the CAM significantly increases the population of receptors in the active state, but not in lipids. Subsequent Arrhenius analysis of the TrIQ data suggests that, both in detergent and lipids, the CAM lowers the energy barrier for TM6 movement, a key transition required for conversion between the inactive and active conformations. Together, these data suggest that the lowered energy barrier is a primary effect of the CAM on the receptor dynamics and energetics.
Keywords
Conformational Transitions
Energy Landscapes
Fluorescence
G Protein-coupled Receptors (GPCR)
Protein Dynamics
Protein Energetics
Receptor Structure-Function
Rhodopsin
Site-directed Fluorescence Labeling (SDFL)
Tryptophan-induced Quenching (TrIQ)
MeSH Terms
Animals
COS Cells
Cattle
Chlorocebus aethiops
Crystallography, X-Ray
Detergents/chemistry
Ligands
Lipids/chemistry
Micelles
Mutation
Opsins/chemistry,genetics
Protein Structure, Secondary
Receptors, G-Protein-Coupled/chemistry,genetics
Rhodopsin/chemistry,genetics
Spectrometry, Fluorescence
Tryptophan/chemistry
Chemicals
Detergents
Ligands
Lipids
Micelles
Opsins
Receptors, G-Protein-Coupled
Tryptophan
Rhodopsin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Tsukamoto Hisao
From the Department of Biochemistry and Molecular Biology, Oregon Health and Science University, Portland, Oregon 97239-3098.
Farrens David L
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