Structural Insights into β-arrestin/CB1 Receptor Interaction: NMR and CD Studies on Model Peptides.

Int J Mol Sci

Departamento de Química Física Biológica, Instituto de Química Física Rocasolano (IQFR-CSIC), Serrano 119, 28006 Madrid, Spain.

Published: October 2020

AI Article Synopsis

  • The cannabinoid CB1 receptor activates various signaling pathways by interacting with different proteins, primarily G-proteins and β-arrestins, leading to various therapeutic effects.
  • Conformational changes during ligand binding determine which signaling pathways are activated, but the details of how β-arrestin interacts with the receptor remain unclear.
  • Researchers created peptides that mimic regions of β-arrestin and the CB1 receptor, finding that these peptides display a helical structure and can interact in solution, furthering the understanding of β-arrestin and CB1 receptor dynamics.

Article Abstract

Activation of the cannabinoid CB1 receptor induces different cellular signaling cascades through coupling to different effector proteins (G-proteins and β-arrestins), triggering numerous therapeutic effects. Conformational changes and rearrangements at the intracellular domain of this GPCR receptor that accompany ligand binding dictate the signaling pathways. The GPCR-binding interface for G proteins has been extensively studied, whereas β-arrestin/GPCR complexes are still poorly understood. To gain knowledge in this direction, we designed peptides that mimic the motifs involved in the putative interacting region: β-arrestin1 finger loop and the transmembrane helix 7-helix 8 (TMH7-H8) elbow located at the intracellular side of the CB1 receptor. According to circular dichroism and NMR data, these peptides form a native-like, helical conformation and interact with each other in aqueous solution, in the presence of trifluoroethanol, and using zwitterionic detergent micelles as membrane mimics. These results increase our understanding of the binding mode of β-arrestin and CB1 receptor and validate minimalist approaches to structurally comprehend complex protein systems.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7662265PMC
http://dx.doi.org/10.3390/ijms21218111DOI Listing

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