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Updated: May 21, 2026

Quantifying Agonist Activity at G Protein-coupled Receptors
Published on: December 26, 2011
Intracellular Loop 2 Peptides of the Human 5HT1a Receptor are Differential Activators of Gi
Brian Hall1, Carley Squires, Keith K Parker
1Department of Biomedical and Pharmaceutical Sciences (MPH I02), Center for Structural and Functional Neuroscience, Skaggs School of Pharmacy, The University of Montana, 32 Campus Drive No. 1552, Missoula, MT 59812-1552, USA.
Abstract:
Peptide mimics of intracellular loop 2 (ic2) of the human 5HT1a receptor have been studied with respect to their ability to inhibit agonist binding via interference with receptor-G-protein coupling. These peptides give shallow concentration-effect relationships. Additionally, these peptides have been studied with respect to their ability to trigger the signal transduction system of this Gi-coupled receptor. Two signaling parameters have been quantified: concentration of intracellular cAMP and changes in incorporation into the G protein of a stable analog of GTP. In both cases, peptide mimics near midloop of ic2 actually show agonist activity with efficacy falling off toward both loop termini near TM 3 and TM 4. Previous results have suggested that the loop region near the TM3/ic2 interface is primarily responsible for receptor-G-protein coupling, while the current result emphasizes the mid-ic2 loop region's ability to activate the G protein following initial coupling. A limited number of peptides from the receptor's TM5/ic3 loop vicinity were also studied regarding agonist inhibition and G-protein activation. These peptides provide additional evidence that the human 5HT1a receptor, TM5/ic3 loop region, is involved in both coupling and activation actions. Overall, these results provide further information about potential pharmacological intervention and drug development with respect to the human 5HT1a receptor/G-protein system. Finally, the structural evidence generated here provides testable models pending crystallization and X-ray analysis of the receptor.
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