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Sanchez-Yepes, S.

Publications and source records attributed to Sanchez-Yepes, S..

2 recordsLinked to original sources

FDA drug repurposing uncovers modulators of dopamine D2 receptor localization via disruption of the NCS-1 interaction

Dopamine D2 receptor (D2R) regulates key aspects of motor control, cognition, and reward. Its function depends not only on ligand binding and signaling efficacy, but also on the dynamic control of receptor localization at the cell surface. Neuronal Calcium Sensor 1 (NCS-1) is a calcium binding protein which directly interacts with D2R in a Ca2+-dependent manner. Here, we investigated the regulatory role of NCS-1 in D2R localization and function. We found that NCS-1 promotes the trafficking of D2R to the plasma membrane through a mechanism dependent on active exocytosis. Functional signaling assays confirmed that NCS-1 does not alter the canonical receptor pharmacology. Using a library of FDA-approved drugs, a structure-based drug-repurposing strategy was designed to find protein-protein interaction modulators that allowed the exploration of the NCS-1/D2R interface as a new pharmacological target. Azilsartan medoxomil, atorvastatin, and vilazodone disrupted its interaction with D2R, reducing receptor surface expression in cells. Crystallography and molecular dynamics simulations revealed their mechanism of action. These compounds target the NCS-1 hydrophobic crevice and overlap the D2R binding site, perturbing the dynamics of the regulatory helix H10 in NCS-1. These findings uncover a previously unexploited intracellular mechanism for modulating D2R function and highlight the potential of targeting protein-protein interactions for therapeutic purposes. Our results provide a framework for fine-tuning dopaminergic tone through receptor localization mechanisms, offering an alternative strategy to conventional approaches based on receptor blockade or direct agonism. SIGNIFICANCEFDA-approved drugs targeting the calcium sensor NCS-1 selectively disrupt its interaction with the dopamine D2 receptor, offering a new strategy to modulate receptor trafficking without altering receptor signaling.

biochemistry↗

The neuronal calcium sensor NCS-1 regulates the phosphorylation state and activity of the Gα chaperone and GEF Ric-8A

The Neuronal Calcium Sensor 1 and Ric-8A coregulate synapse number and probability of neurotransmitter release. Recently, the structures of Ric-8A bound to G have revealed how Ric-8A phosphorylation promotes G recognition and activity as a chaperone and guanine nucleotide exchange factor. However, the molecular mechanism by which NCS-1 regulates Ric-8A activity and its interaction with G subunits is not well understood. Given the interest in the NCS-1/Ric-8A complex as a therapeutic target in nervous system disorders, it is necessary to shed light on this molecular mechanism of action at atomic level. We have reconstituted NCS-1/Ric-8A complexes to conduct a multimodal approach and determine the sequence of Ca2+ signals and phosphorylation events that promote the interaction of Ric-8A with G. Our data show that the binding of NCS-1 and G to Ric-8A are mutually exclusive. Importantly, NCS-1 induces a profound structural rearrangement in Ric-8A that traps the protein in a conformational state that is inaccessible to Casein Kinase II-mediated phosphorylation, demonstrating one aspect of its negative regulation of Ric-8A-mediated G-protein signaling. Functional experiments indicate a loss of Ric-8A GEF activity towards G when complexed with NCS-1, and restoration of nucleotide exchange activity upon increasing Ca2+ concentration. Finally, the high-resolution crystallographic data reported here that define the NCS-1/Ric-8A interface will allow the development of therapeutic synapse function regulators with improved activity and selectivity.

biochemistry↗