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Monitoring GPCR-β-arrestin1/2 Interactions in Real Time Living Systems to Accelerate Drug Discovery
Published on: June 28, 2019
Does GRK-β arrestin machinery work as a "switch on" for GPR17-mediated activation of intracellular signaling
Simona Daniele1, Maria Letizia Trincavelli1, Marta Fumagalli2
1Department of Pharmacy, University of Pisa, 56126 Pisa, Italy.
Abstract:
During oligodendrocyte-precursor cell (OPC) differentiation program, an impairment in the regulatory mechanisms controlling GPR17 spatio-temporal expression and functional activity has been suggested to contribute to defective OPC maturation, a crucial event in the pathogenesis of multiple sclerosis. GRK-β arrestin machinery is the primary actor in the control of G-protein coupled receptor (GPCR) functional responses and changes in these regulatory protein activities have been demonstrated in several immune/inflammatory diseases. Herein, in order to shed light on the molecular mechanisms controlling GPR17 regulatory events during cell differentiation, the role of GRK/β-arrestin machinery in receptor desensitization and signal transduction was investigated, in transfected cells and primary OPC. Following cell treatment with the two classes of purinergic and cysteinyl-leukotriene (cysLT) ligands, different GRK isoforms were recruited to regulate GPR17 functional responses. CysLT-mediated receptor desensitization mainly involved GRK2; this kinase, via a G protein-dependent mechanism, promoted a transient binding of the receptor to β-arrestins, rapid ERK phosphorylation and sustained nuclear CREB activation. Furthermore, GRK2, whose expression parallels that of the receptor during differentiation process, appeared to be crucial to induce cysLT-mediated maturation of OPCs. On the other hand, purinergic ligand exclusively recruited the GRK5 subtype, and induced, via a G protein-independent/β-arrestin-dependent mechanism, a receptor/β-arrestin stable association, slower and sustained ERK stimulation and marginal CREB activation. These results show that purinergic and cysLT ligands, through the recruitment of specific GRK isoforms, address distinct intracellular pathways, most likely reinforcing the same final response. The identification of these mechanisms and players controlling GPR17 responses during OPC differentiation could be useful to identify new targets in demyelination diseases and to develop new therapeutical strategies.
Insights
G protein-coupled receptor 17 (GPR17) regulation by GRK/β-arrestin machinery is crucial for oligodendrocyte-precursor cell (OPC) maturation in multiple sclerosis. Specific GRK isoforms mediate distinct signaling pathways for OPC differentiation.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Defective oligodendrocyte-precursor cell (OPC) maturation is implicated in multiple sclerosis pathogenesis.
- The G protein-coupled receptor 17 (GPR17) plays a role in OPC differentiation.
- GRK/β-arrestin machinery regulates G protein-coupled receptor (GPCR) function and is altered in inflammatory diseases.
Purpose of the Study:
- To investigate the role of the GRK/β-arrestin machinery in GPR17 regulation during OPC differentiation.
- To elucidate the molecular mechanisms controlling GPR17 desensitization and signal transduction.
- To understand how different ligands activate distinct signaling pathways via GPR17.
Main Methods:
- Investigated GRK/β-arrestin involvement in GPR17 regulation in transfected cells and primary OPCs.
- Utilized purinergic and cysteinyl-leukotriene (cysLT) ligands to stimulate GPR17.
- Assessed receptor desensitization, β-arrestin recruitment, ERK phosphorylation, and CREB activation.
Main Results:
- CysLT ligands recruited GRK2, leading to transient β-arrestin binding, rapid ERK phosphorylation, and sustained CREB activation, crucial for OPC maturation.
- Purinergic ligands recruited GRK5, causing stable β-arrestin association, sustained ERK stimulation, and minimal CREB activation.
- Distinct GRK isoforms mediate ligand-specific GPR17 signaling, influencing OPC differentiation pathways.
Conclusions:
- Specific GRK isoforms (GRK2 for cysLT, GRK5 for purinergic) differentially regulate GPR17 signaling during OPC differentiation.
- These distinct pathways activated by different ligands highlight the complexity of GPR17 regulation.
- Understanding these mechanisms offers potential therapeutic targets for demyelinating diseases like multiple sclerosis.
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