Related Experiment Video
Updated: Aug 16, 2026

Quantifying Agonist Activity at G Protein-coupled Receptors
Published on: December 26, 2011
Mechanistic explanation for the unique pharmacologic properties of receptor partial agonists
1Department of Basic Pharmaceutical Sciences, College of Pharmacy, University of South Carolina, Columbia, SC 29208, USA. btzhu@cop.sc.edu
Abstract:
Simulation data provided in this paper revealed that when a receptor full agonist and a competitive or noncompetitive antagonist for the same type of receptor are covalently linked together in some proper ways, the resulting bifunctional compound would have a reduced efficacy, and their dose-response curve patterns would look exactly like the curve patterns for many known partial agonists. It is also shown that all known pharmacologic characteristics for receptor partial agonists matched precisely the projected properties of the agonist-antagonist bifunctional compounds. The novel mechanistic explanation developed in this paper not only reveals the structural requirements for receptor partial agonists, but it also negates the long-held mechanistic explanation that the reduced efficacy of receptor partial agonists is the result of partial activation of each individual receptor molecule being occupied by the partial agonist because of its "low intrinsic activity".
More Related Videos
Related Concept Videos
Drug-Receptor Interactions
Several parameters, such as the drug's affinity for its receptor and its efficacy, which is its ability to activate the receptor, determine the drug's effect on the tissue.
Dose-Response Relationship: Selectivity and Specificity
Drug-Receptor Interaction: Agonist
Agonists can bind to receptors in different ways. Some agonists bind directly to the receptor's active site, mimicking the endogenous ligand's action.
Spare Receptors
The Two-State Receptor Model
The binding affinity of a drug determines its interaction with one...
Adrenergic Agonists: Chemistry and Structure-Activity Relationship
Aromatic ring substitutions: Substituting the aromatic ring with –OH groups at positions 3 and 4 yields catecholamines (e.g., epinephrine), which have a high affinity for adrenoceptors. Hydrogen bonding between –OH groups and receptors enhances adrenergic activity.
Separation of the aromatic...

