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Lactose Binding Induces Opposing Dynamics Changes in Human Galectins Revealed by NMR-Based Hydrogen–Deuterium Exchange

机译:乳糖结合诱导人类半乳糖凝集素的动态变化基于NMR的氢-氘交换显示

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摘要

Galectins are β-galactoside-binding proteins implicated in a myriad of biological functions. Despite their highly conserved carbohydrate binding motifs with essentially identical structures, their affinities for lactose, a common galectin inhibitor, vary significantly. Here, we aimed to examine the molecular basis of differential lactose affinities amongst galectins using solution-based techniques. Consistent dissociation constants of lactose binding were derived from nuclear magnetic resonance (NMR) spectroscopy, intrinsic tryptophan fluorescence, isothermal titration calorimetry and bio-layer interferometry for human galectin-1 (hGal1), galectin-7 (hGal7), and the N-terminal and C-terminal domains of galectin-8 (hGal8NTD and hGal8CTD, respectively). Furthermore, the dissociation rates of lactose binding were extracted from NMR lineshape analyses. Structural mapping of chemical shift perturbations revealed long-range perturbations upon lactose binding for hGal1 and hGal8NTD. We further demonstrated using the NMR-based hydrogen–deuterium exchange (HDX) that lactose binding increases the exchange rates of residues located on the opposite side of the ligand-binding pocket for hGal1 and hGal8NTD, indicative of allostery. Additionally, lactose binding induces significant stabilisation of hGal8CTD across the entire domain. Our results suggested that lactose binding reduced the internal dynamics of hGal8CTD on a very slow timescale (minutes and slower) at the expense of reduced binding affinity due to the unfavourable loss of conformational entropy.
机译:半乳凝素是β-半乳糖苷结合蛋白,与多种生物学功能有关。尽管它们具有基本相同结构的高度保守的碳水化合物结合基序,但它们对乳糖(一种常见的半乳凝素抑制剂)的亲和力却有很大差异。在这里,我们旨在使用基于溶液的技术检查半乳糖凝集素之间不同的乳糖亲和力的分子基础。乳糖结合的恒定解离常数来自核磁共振(NMR)光谱,固有色氨酸荧光,等温滴定热量法和人galectin-1(hGal1),galectin-7(hGal7)和N端生物层干涉法和半乳糖凝集素8的C端结构域(分别是hGal8 NTD 和hGal8 CTD )。此外,乳糖结合的解离速率是从NMR线形分析中提取的。化学位移扰动的结构图显示了乳糖与hGal1和hGal8 NTD 结合时的远距离扰动。我们进一步使用基于NMR的氢-氘交换(HDX)证明,乳糖结合可增加位于配体结合袋相对侧的残基对hGal1和hGal8 NTD 的交换速率,这表明变构。此外,乳糖结合在整个域中诱导hGal8 CTD 的显着稳定。我们的研究结果表明,由于不利的构象熵损失,乳糖结合在很慢的时间范围(数分钟或更慢)上降低了hGal8 CTD 的内部动力学,但代价是结合亲和力降低。

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