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Structural basis for small-molecule agonism at GCGR and GIPR via a conserved intracellular allosteric site.

The glucagon receptor (GCGR) and gastric inhibitory polypeptide receptor (GIPR) are class B GPCRs that regulate glucose homeostasis and energy balance, making them key targets for type 2 diabetes and obesity. Achieving preferential Gs signaling at these receptors with small molecules remains an unmet challenge. Here, we report SIM1, developed through optimization of the PCO371 scaffold, which exhibits preferential Gs signaling at GCGR and GIPR with minimal detectable β-arrestin recruitment and substantially improved efficacy at GIPR. Cryo-EM structures of SIM1-GCGR-Gs (2.53 Å) and SIM1-GIPR-Gs (2.74 Å) reveal a shared intracellular allosteric interface at the receptor-G protein coupling region, distinct from extracellular peptide recognition. Structural comparison with GLP1R suggests that intracellular conformational constraints contribute to differential SIM1 responsiveness, which is restored by targeted mutations. Guided by these insights, analogs SIM2 and SIM3 exhibited up to 20-fold enhanced potency while maintaining an apparent preferential Gs signaling profile. These findings reveal a conserved intracellular allosteric activation mechanism across multiple class B GPCRs and identify SIM1 and its analogs as valuable chemical tools for investigating receptor-specific intracellular allosteric regulation and G protein-preferential signaling.

GCGR

Polymorphic positions 349 and 725 of the autoimmunity-protective allotype 10 of ER aminopeptidase 1 are key in determining its unique enzymatic properties.

INTRODUCTION: ER aminopeptidase 1 (ERAP1) is a polymorphic intracellular aminopeptidase with key roles in antigen presentation and adaptive immune responses. ERAP1 allotype 10 is highly protective toward developing some forms of autoimmunity and displays unusual functional properties, including very low activity versus some substrates. METHODS: To understand the molecular mechanisms that underlie the biology of allotype 10, we studied its enzymatic and biophysical properties focusing on its unique polymorphisms V349M and Q725R. RESULTS: Compared to ancestral allotype 1, allotype 10 is much less effective in trimming small substrates but presents allosteric kinetics that ameliorate activity differences at high substrate concentrations. Furthermore, it is inhibited by a transition-state analogue via a non-competitive mechanism and is much less responsive to an allosteric small-molecule modulator. It also presents opposite enthalpy, entropy, and heat capacity of activation compared to allotype 1, and its catalytic rate is highly dependent on viscosity. Polymorphisms V349M and Q725R significantly contribute to the lower enzymatic activity of allotype 10 for small substrates, especially at high substrate concentrations, influence the cooperation between the regulatory and active sites, and regulate viscosity dependence, likely by limiting product release. CONCLUSIONS: Overall, our results suggest that allotype 10 is not just an inactive variant of ERAP1 but rather carries distinct enzymatic properties that largely stem from changes at positions 349 and 725. These changes affect kinetic and thermodynamic parameters that likely control rate-limiting steps in the catalytic cycle, resulting in an enzyme optimized for sparing small substrates and contributing to the homeostasis of antigenic epitopes in the ER.

Aminopeptidases