Allosteric sodium binding cavity in GPR3: a novel player in modulation of Aβ production.

Stefano Capaldi, Eda Suku, Martina Antolini, Mattia Di Giacobbe, Alejandro Giorgetti, Mario Buffelli

Journal: Scientific reports 2019;8(1):11102

PMID: 30038319

Abstract

The orphan G-protein coupled receptor 3 (GPR3) belongs to class A G-protein coupled receptors (GPCRs) and is highly expressed in central nervous system neurons. Among other functions, it is likely associated with neuron differentiation and maturation. Recently, GPR3 has also been linked to the production of Aβ peptides in neurons. Unfortunately, the lack of experimental structural information for this receptor hampers a deep characterization of its function. Here, using an in-silico and in-vitro combined approach, we describe, for the first time, structural characteristics of GPR3 receptor underlying its function: the agonist binding site and the allosteric sodium binding cavity. We identified and validated by alanine-scanning mutagenesis the role of three functionally relevant residues: Cys267, Phe120 and Asp. The latter, when mutated into alanine, completely abolished the constitutive and agonist-stimulated adenylate cyclase activity of GPR3 receptor by disrupting its sodium binding cavity. Interestingly, this is correlated with a decrease in Aβ production in a model cell line. Taken together, these results suggest an important role of the allosteric sodium binding site for GPR3 activity and open a possible avenue for the modulation of Aβ production in the Alzheimer's Disease.

Address: Department of Biotechnology-University of Verona, Verona, Italy.; Department of Neurosciences, Biomedicine and Movement Sciences-University of Verona, Verona, Italy.; Department of Biotechnology-University of Verona, Verona, Italy. [email protected].; Computational Biomedicine, Institute for Advanced Simulation IAS-5 and Institute of Neuroscience and Medicine INM-9, Forschungszentrum Jülich, Germany. [email protected].
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