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首页> 外文期刊>Biopolymers: Original Research on Biomolecules and Biomolecular Assemblies >Adsorption of 6-mercaptopurine and 6-mercaptopurine-riboside on silver colloid: A pH-dependent surface-enhanced Raman spectroscopy and density functional theory study. II. 6-Mercaptopurine-riboside
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Adsorption of 6-mercaptopurine and 6-mercaptopurine-riboside on silver colloid: A pH-dependent surface-enhanced Raman spectroscopy and density functional theory study. II. 6-Mercaptopurine-riboside

机译:银胶体上6-巯基嘌呤和6-巯基嘌呤核糖的吸附:pH依赖的表面增强拉曼光谱和密度泛函理论研究。二。 6-巯基嘌呤核糖

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Slit-face-enhanced Raman spectroscopy (SERS) has been applied to characterize the interaction of 6-mercaptopurine-ribose (6MPR), an active drug used in chemotherapy of acute lymphoblastic leukemia, with a model biological substrate at therapeutic concentrations and as function of the pH value. Therefore, a detailed vibrational analysis of crystalline and solvated (6MPR) based on Density Functional Theory (DFT) calculations of the thion and thiol tautotners has been performed. 6MPR adopts the thion tautomeric form in the polycrystalline state. The SERS spectra of 6MPR and 6-mercaptopurine (6MP) recorded on silver colloid provided evidence that the ribose derivative shows different adsorption behavior compared with the free base. Under acidic conditions, the adsorption of 6MPR on the metal surface via the N7 and possibly S atoms was proposed to have a perpendicular orientation, while 6MP is probably adsorbed through the N9 and N3 atoms. Under basic conditions both molecules are adsorbed through the N1 and possibly S atoms, but 6MP has a more tilted orientation on the silver colloidal surface while 6MPR adopts a perpendicular orientation. The reorientation of the 6MPR molecule on the surface starts at PH 8 while in the case of 6MP the reorientation starts around pH 6. Under basic conditions, the presence of the anionic molecular species for both molecules is suggested. The deprotonation of 6MP is completed at pH 8 while the deprotonation of the riboside is finished at pH 10. For low drug concentrations under neutral conditions and for pH values 8 and 9, 6MPR interacts with the substrate through both N7 and NI atoms, possibly forming two differently adsorbed species, while for 6MP only one species adsorbed via N1 was evidenced. (c) 2005 Wiley Periodicals, Inc. Biopolymers 78: 298-310, 2005.
机译:狭缝增强拉曼光谱法(SERS)已用于表征6-巯基嘌呤-核糖(6MPR)(一种用于急性淋巴细胞白血病化疗的活性药物)与模型生物底物在治疗浓度下的相互作用以及其功能。 pH值。因此,基于硫和互变异构体的密度泛函理论(DFT)计算,对晶体和溶剂化物(6MPR)进行了详细的振动分析。 6MPR在多晶状态下采用硫杂互变异构形式。在银胶体上记录的6MPR和6-巯基嘌呤(6MP)的SERS光谱提供了核糖衍生物与游离碱相比表现出不同吸附性能的证据。在酸性条件下,提议通过N7和可能的S原子在金属表面吸附6MPR具有垂直方向,而6MP可能通过N9和N3原子吸附。在碱性条件下,两个分子都通过N1和S原子被吸收,但是6MPR在银胶体表面上的取向更倾斜,而6MPR则采用垂直取向。 6MPR分子在表面上的重新定向始于PH 8,而6MPR分子的重新定向始于pH6。在碱性条件下,建议两个分子均存在阴离子分子物质。 6MP的去质子化在pH 8时完成,核糖体的去质子化在pH 10时完成。对于中性条件下的低药物浓度和pH值8和9,6MPR通过N7和NI原子与底物相互作用,可能形成两种不同的吸附物种,而对于6MP,只有一种通过N1吸附的物种被证明。 (c)2005 Wiley Periodicals,Inc.生物聚合物78:298-310,2005。

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