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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Controlled aggregation of adenine by sugars: physicochemical studies, molecular modelling simulations of sugar-aromatic CH-π stacking interactions, and biological significance
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Controlled aggregation of adenine by sugars: physicochemical studies, molecular modelling simulations of sugar-aromatic CH-π stacking interactions, and biological significance

机译:糖控制腺嘌呤的聚集:物理化学研究,糖-芳香族CH-π堆积相互作用的分子建模模拟及其生物学意义

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摘要

CH-Pi stacking interactions between carbohydrates and aromatic compounds play a central role in biomolecular recognition, especially in lectin-sugar and protein-glycolipid systems. In the present study, we have measured the solubility of the sparingly soluble aromatic base adenine in presence of various saccharides as an approach to investigate the interaction between adenine and sugars. Above 82.5 mM, adenine solutions gradually formed a crystalline precipitate which could be quantified by spectrophotometric turbidity measurements. Precipitation of adenine was increased by salts (NaCl and NaF) whereas it was prevented by DMSO, in agreement with the involvement of hydrophobic interactions (π-π stacking) in the vertical stacking of adenine molecules. Several monosaccharides and disaccharides were found to increase adenine solubility, with the following order: D-galactose = D-lactose > D-sucrose > D-glucose = D-maltose > D-ribose > D-fructose. Molecular mechanics simulations indicated that the potent cosolvent effect ofβ-D-galactopyranose was probably mediated by CH-π stacking interactions between its apolar surface and the aromatic structure of adenine. The polar OH groups of the sugars interacted with surrounding water molecules, ensuring the solubility of sugar-adenine complexes. In contrast, β-D-fructofuranose, which has two polar faces, did not stack onto adenine and had a weak cosolvent effect. CH-π stacking interactions were also demonstrated between 6-methylpurine and the sugar head group of glycolipids (glucosyl-, galactosyl- and lactosylceramide) but not with the charged head group of phosphatidylinositol-4,5-diphosphate. These data indicate that galactose-containing molecules have a high stacking propensity for aromatic compounds such as adenine, due to the specific structure of the galactose cycle.
机译:碳水化合物与芳香族化合物之间的CH-Pi堆积相互作用在生物分子识别中起着核心作用,尤其是在凝集素糖和蛋白质-糖脂系统中。在本研究中,我们测量了在各种糖类存在下微溶的芳香族碱性腺嘌呤的溶解度,作为研究腺嘌呤和糖之间相互作用的一种方法。高于82.5 mM,腺嘌呤溶液逐渐形成结晶沉淀,可通过分光光度浊度测量法对其进行定量。盐(NaCl和NaF)可增加腺嘌呤的沉淀,而DMSO可以阻止腺嘌呤的沉淀,这与腺嘌呤分子的垂直堆积中疏水相互作用(π-π堆积)有关。发现几种单糖和二糖以下列顺序增加腺嘌呤溶解度:D-半乳糖= D-乳糖> D-蔗糖> D-葡萄糖= D-麦芽糖> D-核糖> D-果糖。分子力学模拟表明,β-D-吡喃半乳糖的强助溶剂作用可能是由其非极性表面与腺嘌呤的芳香结构之间的CH-π堆积相互作用所介导的。糖的极性OH基团与周围的水分子相互作用,从而确保了糖-腺嘌呤配合物的溶解性。相反,具有两个极性面的β-D-果糖呋喃糖没有堆积在腺嘌呤上并且具有弱的助溶剂作用。在6-甲基嘌呤和糖脂的糖首基(葡糖基-,半乳糖基-和乳糖基神经酰胺)之间也证实了CH-π堆积相互作用,但未与磷脂酰肌醇-4,5-二磷酸的带电首基结合。这些数据表明,由于半乳糖循环的特定结构,含半乳糖的分子对芳族化合物如腺嘌呤具有高的堆积倾向。

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