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溶液中吡罗昔康结构的飞秒动力学

Femtosecond dynamics of piroxicam structures in solutions.

作者信息

Gil Michał, Douhal Abderrazzak

机构信息

Departamento de Química Física, Sección de Químicas, Facultad de Ciencias del Medio Ambiente, Universidad de Castilla-La Mancha, Avenida Carlos III, S.N., 45071, Toledo, Spain.

出版信息

J Phys Chem A. 2008 Sep 11;112(36):8231-7. doi: 10.1021/jp803457e. Epub 2008 Aug 15.

Abstract

We report on studies of femtosecond dynamics of a nonsteroidal anti-inflammatory drug, piroxicam (1), in water at three different pHs and for comparison in two aprotic solvents. An ultrafast excited-state proton-transfer (ESIPT) process takes place in neutral and cationic enol-type structures. Femtosecond emission and transient absorption experiments show that this reaction is barrierless, and the proton-transferred keto tautomer is formed in less than 100 fs in both organic solvents and acidic water. In neutral and alkaline water, the ESIPT is not present because of the prevalence of the anion structures at the ground state. For the excited anions (pH = 7, 11) and formed keto cations (pH approximately 3), an intramolecular charge-transfer process takes place in times shorter than 0.3 ps. The formed structures have a fluorescence lifetime of approximately 2-5 ps, depending on pH. In contrast, the internal twisting motion in organic solvents is slower (approximately 0.5-1 ps) and gives rotamers with lifetimes of tens of picoseconds. These results clearly show strong interactions of 1 with water, significantly distinct from those present in organic aprotic solvents. We believe that the results are important for a better understanding on short time interactions of drugs with their environment.

摘要

我们报告了对非甾体抗炎药吡罗昔康(1)在三种不同pH值的水中以及在两种非质子溶剂中进行比较的飞秒动力学研究。超快激发态质子转移(ESIPT)过程发生在中性和阳离子烯醇型结构中。飞秒发射和瞬态吸收实验表明,该反应无势垒,并且在有机溶剂和酸性水中,质子转移的酮式互变异构体在不到100飞秒的时间内形成。在中性和碱性水中,由于基态阴离子结构占主导,不存在ESIPT。对于激发态阴离子(pH = 7, 11)和形成的酮阳离子(pH约为3),分子内电荷转移过程在短于0.3皮秒的时间内发生。形成的结构根据pH值具有约2 - 5皮秒的荧光寿命。相比之下,有机溶剂中的内扭转运动较慢(约0.5 - 1皮秒),并产生寿命为几十皮秒的旋转异构体。这些结果清楚地表明1与水之间存在强烈的相互作用,与非质子有机溶剂中的相互作用明显不同。我们认为这些结果对于更好地理解药物与其环境的短时间相互作用很重要。

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