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Updated: Aug 14, 2026

Light-mediated Reversible Modulation of the Mitogen-activated Protein Kinase Pathway during Cell Differentiation and Xenopus Embryonic Development
Published on: June 15, 2017
Phosphorylation modulates the affinity of light-activated rhodopsin for G protein and arrestin
S K Gibson1, J H Parkes, P A Liebman
1Department of Biochemistry and Biophysics, University of Pennsylvania Medical Center, Philadelphia, Pennsylvania 19104-6059, USA.
Abstract:
Reduced effector activity and binding of arrestin are widely accepted consequences of GPCR phosphorylation. However, the effect of receptor multiphosphorylation on G protein activation and arrestin binding parameters has not previously been quantitatively examined. We have found receptor phosphorylation to alter both G protein and arrestin binding constants for light-activated rhodopsin in proportion to phosphorylation stoichiometry. Rod disk membranes containing different average receptor phosphorylation stoichiometries were combined with G protein or arrestin, and titrated with a series of brief light flashes. Binding of G(t) or arrestin to activated rhodopsin augmented the 390 nm MII optical absorption signal by stabilizing MII as MII.G or MII.Arr. The concentration of active arrestin or G(t) and the binding constant of each to MII were determined using a nonlinear least-squares (Simplex) reaction model analysis of the titration data. The binding affinity of phosphorylated MII for G(t) decreased while that for arrestin increased with each added phosphate. G(t) binds more tightly to MII at phosphorylation levels less than or equal to two phosphates per rhodopsin; at higher phosphorylation levels, arrestin binding is favored. However, arrestin was found to bind much more slowly than G(t) at all phosphorylation levels, perhaps allowing time for phosphorylation to gradually reduce receptor-G protein interaction before arrestin capping of rhodopsin. Sensitivity of the binding constants to ionic strength suggests that a strong membrane electrostatic component is involved in both the reduction of G(t) binding and the increase of arrestin binding with increasing rhodopsin phosphorylation.
Insights
GPCR phosphorylation stoichiometry quantitatively impacts G protein and arrestin binding. Increased phosphorylation favors arrestin binding over G protein binding to activated rhodopsin.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- G protein-coupled receptor (GPCR) phosphorylation is known to reduce effector activity and arrestin binding.
- The quantitative impact of GPCR multiphosphorylation on G protein activation and arrestin binding has not been thoroughly investigated.
Purpose of the Study:
- To quantitatively examine the effect of receptor multiphosphorylation on G protein and arrestin binding parameters for light-activated rhodopsin.
- To determine how phosphorylation stoichiometry influences the binding constants of G protein and arrestin to rhodopsin.
Main Methods:
- Utilized rod disk membranes with varying average receptor phosphorylation stoichiometries.
- Titrated membranes with G protein (Gt) or arrestin using brief light flashes.
- Analyzed titration data using nonlinear least-squares (Simplex) reaction modeling to determine binding constants.
Main Results:
- Receptor phosphorylation altered both G protein and arrestin binding constants for activated rhodopsin in proportion to phosphorylation stoichiometry.
- G protein binding affinity decreased, while arrestin binding affinity increased with added phosphates.
- At phosphorylation levels ≤2 phosphates/rhodopsin, Gt bound more tightly; at higher levels, arrestin binding was favored.
- Arrestin binding was significantly slower than G protein binding across all phosphorylation levels.
Conclusions:
- GPCR phosphorylation stoichiometry directly modulates G protein and arrestin binding affinities.
- The balance shifts towards arrestin binding at higher phosphorylation levels, potentially regulating signaling duration.
- Membrane electrostatics play a crucial role in modulating these binding interactions during receptor phosphorylation.
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