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Published on: June 2, 2022
Enhanced arrestin facilitates recovery and protects rods lacking rhodopsin phosphorylation
Xiufeng Song1, Sergey A Vishnivetskiy, Owen P Gross
1Department of Pharmacology, Vanderbilt University Medical Center, Nashville, TN 37232, USA.
Abstract:
G protein-coupled receptors (GPCRs) are the largest family of signaling proteins expressed in every cell in the body and are targeted by the majority of clinically used drugs [1]. GPCR signaling, including rhodopsin-driven phototransduction, is terminated by receptor phosphorylation followed by arrestin binding [2]. Genetic defects in receptor phosphorylation and excessive signaling by overactive GPCR mutants result in a wide variety of diseases, from retinal degeneration to cancer [3-6]. Here, we tested whether arrestin1 mutants with enhanced ability to bind active unphosphorylated rhodopsin [7-10] can suppress uncontrolled signaling, bypassing receptor phosphorylation by rhodopsin kinase (RK) and replacing this two-step mechanism with a single-step deactivation in rod photoreceptors. We show that in this precisely timed signaling system with single-photon sensitivity [11], an enhanced arrestin1 mutant partially compensates for defects in rhodopsin phosphorylation, promoting photoreceptor survival, improving functional performance, and facilitating photoresponse recovery. These proof-of-principle experiments demonstrate the feasibility of functional compensation in vivo for the first time, which is a promising approach for correcting genetic defects associated with gain-of-function mutations. Successful modification of protein-protein interactions by appropriate mutations paves the way to targeted redesign of signaling pathways to achieve desired functional outcomes.
Insights
Engineered arrestin1 mutants can bypass rhodopsin phosphorylation, offering a novel strategy to correct signaling defects in G protein-coupled receptors (GPCRs) and treat related diseases.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- G protein-coupled receptors (GPCRs) are crucial signaling proteins targeted by most drugs.
- GPCR signaling termination involves receptor phosphorylation and arrestin binding.
- Dysregulation of GPCR signaling causes diseases like cancer and retinal degeneration.
Purpose of the Study:
- To investigate if arrestin1 mutants can suppress uncontrolled GPCR signaling by directly binding unphosphorylated rhodopsin.
- To explore a single-step deactivation mechanism bypassing rhodopsin kinase (RK).
Main Methods:
- Engineering arrestin1 mutants with enhanced binding to active unphosphorylated rhodopsin.
- Testing mutant efficacy in a precisely timed, single-photon sensitive rod photoreceptor system.
- Evaluating impact on photoreceptor survival, function, and photoresponse recovery.
Main Results:
- Enhanced arrestin1 mutants partially compensated for rhodopsin phosphorylation defects.
- Mutants promoted photoreceptor survival and improved functional performance.
- Facilitated photoresponse recovery in the studied system.
Conclusions:
- Demonstrates in vivo functional compensation for GPCR signaling defects for the first time.
- Highlights the potential of modifying protein-protein interactions to correct gain-of-function mutations.
- Paves the way for targeted redesign of signaling pathways to treat genetic disorders.
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