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◆ Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy2026-09-07

Glycosylation reshapes coumarin recognition by β-lactoglobulin: Polar-contact-solvation trade-off revealed by multispectroscopy and molecular simulation.

Chennan Zheng, Jiahao Li, Yijin Chang, Dazhi Zhou, Changchun Hao

原始摘要(英文原文)· Original abstract
Ligand glycosylation is often assumed to enhance protein binding by increasing hydrogen-bonding capacity, but its actual role in coumarin-β-lactoglobulin (β-LG) recognition has not been clearly resolved. Here, fraxin (FXN) and its aglycone fraxetin (FXT) were used as a paired model to examine how a glucose moiety regulates β-LG binding through multispectroscopic analysis and molecular simulations. Both ligands associated with β-LG and quenched its intrinsic fluorescence, but FXT showed stronger quenching, higher apparent affinity, a shorter FRET-derived donor-acceptor distance, and a more pronounced reduction in fluorescence lifetime. Thermodynamic analysis indicated spontaneous, entropy-favored binding for both systems. Synchronous and three-dimensional fluorescence spectra further showed that FXT caused greater perturbation of the aromatic-residue microenvironment, whereas far-UV CD revealed only limited secondary-structure fluctuations without a consistent concentration-dependent trend. Docking, MD simulation, and MM/PBSA calculations indicated that the glucose group in FXN introduced additional polar contacts but also a larger polar-solvation penalty and possible steric constraints. In contrast, FXT achieved closer hydrophobic accommodation near the fluorescence-sensitive region of β-LG. These results suggest that glycosylation does not simply strengthen coumarin-β-LG binding, but reshapes molecular recognition through a trade-off among polar interactions, desolvation, and hydrophobic fitting.
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Glycosylation reshapes coumarin recognition by β-lactoglobulin: Polar-contact-solvation trade-off revealed by multispectroscopy and molecular simulation. — 科研速览 Science Skim