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Structural and Energetic Determinants of Sweet Protein Recognition: Mechanistic Insights into Thaumatin Binding to the Human T1R2/T1R3 Receptor.

International journal of molecular sciences2026Kiewhuo K, Basharat G, Rungrotmongkol T, et al.
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Excessive sugar intake remains a major health challenge, motivating the development of safe and effective alternatives. Thaumatin, a natural high-intensity sweet protein, elicits sweetness through activation of the sweet taste receptor (T1R2/T1R3), yet its molecular recognition mechanism remains understudied. An integrated computational strategy combining comparative modeling, protein-protein docking, and 500 ns molecular dynamics simulations (triplicates) was employed to elucidate the thaumatin-receptor binding. Structural modeling identified the closed conformation of the Venus flytrap domain (VFT) as optimal for ligand engagement. Modeling revealed a stable binding interface characterized by electrostatic complementarity and van der Waals interactions, characterized by interfacial contacts of receptors and hydrogen bonding networks. Residue-level energy decomposition highlighted key residues (W418 and E422 of T1R2; S59 of T1R3) and thaumatin residues (K67, R82, and K137) that contribute substantially to complex stabilization, consistent with experimentally reported sweetness determinants. These findings provide molecular-level insight into sweet protein recognition and establish a structural framework for rational engineering of protein-based sweeteners with enhanced potency and selectivity.

MeSH

Amino Acid SequenceBinding SitesHumansHydrogen BondingModels, MolecularMolecular Docking SimulationMolecular Dynamics SimulationPlant ProteinsProtein BindingProtein ConformationReceptors, G-Protein-CoupledSweetening Agents

DOI 10.3390/ijms27094119

PMID 42123697

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