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时间分辨光谱法研究氟比洛芬中碳α键均裂介导的新型光脱羧反应。

Time-resolved spectroscopic characterization of a novel photodecarboxylation reaction mediated by homolysis of a carbon α-bond in flurbiprofen.

机构信息

Department of Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong, PR China.

出版信息

J Phys Chem B. 2013 Jul 18;117(28):8347-59. doi: 10.1021/jp403053f. Epub 2013 Jul 2.

Abstract

Flurbiprofen (Fp), a nonsteroidal anti-inflammatory drug (NSAID) currently in use for arthritis pain relief and in clinical trials for metastatic prostate cancer, can induce photosensitization and phototoxicity upon exposure to sunlight. The mechanisms responsible for Fp phototoxicity are poorly understood and deserve investigation. In this study, the photodecarboxylation reaction of Fp, which has been assumed to underpin its photoinduced side effects, was explored by femtosecond transient absorption (fs-TA), nanosecond transient absorption (ns-TA), and nanosecond time-resolved resonance Raman (ns-TR(3)) spectroscopic techniques in pure acetonitrile (MeCN) solvent. Density functional theory (DFT) calculations were also performed to facilitate the assignments of transient species. The resonance Raman and DFT calculation results reveal that the neutral form of Fp was the predominant species present in MeCN. Analysis of the ultraviolet/visible absorption spectrum and results from TD-DFT calculations indicate that the second excited singlet (S2) can be excited by 266 nm light. Due to its intrinsic instability, S2 rapidly underwent internal conversion (IC) to decay to the lowest lying excited singlet (S1), which was observed in the fs-TA spectra at very early delay times. Intriguingly, three distinct pathways for S1 decay seem to coexist. Specifically, other than fluorescence emission back to the ground state and transformation to the lowest triplet state T1 through intersystem crossing (ISC), the homolysis of the carbon α-bond decarboxylation reaction proceeded simultaneously to give rise to two radical species, one being carboxyl and another being the residual, denoted as FpR. The coexistence of the triplet Fp (T1) and FpR species was verified by means of TR(3) spectra along with ns-TA spectra. As a consequence of its apparent high reactivity, the FpR intermediate was observed to undergo oxidation under oxygen-saturated conditions to yield another radical species, denoted as FOR, which subsequently underwent intramolecular hydrogen transfer (IHT) and dehydroxylation (DHO) to form a final product, which could react with the carboxyl from the decarboxylation reaction to generate a minor final product. TD-DFT and transient state (TS) calculations for predicting the absorption bands and activation energies of the transient species produced in the photodecarboxylation reaction have provided valuable mechanistic insights for the assignment of the intermediate species observed in the time-resolved spectroscopy experiments reported here. The results of the time-resolved spectroscopy experiments and DFT calculations were used to elucidate the reaction mechanisms and intermediates involved in the photochemistry of Fp.

摘要

氟比洛芬(Fp)是一种非甾体抗炎药(NSAID),目前用于缓解关节炎疼痛,并在转移性前列腺癌的临床试验中使用,它在暴露于阳光下时会引起光致敏和光毒性。导致 Fp 光毒性的机制尚不清楚,值得研究。在这项研究中,通过飞秒瞬态吸收(fs-TA)、纳秒瞬态吸收(ns-TA)和纳秒时间分辨共振拉曼(ns-TR(3))光谱技术,在纯乙腈(MeCN)溶剂中探索了 Fp 的光脱羧反应,该反应被认为是其光诱导副作用的基础。还进行了密度泛函理论(DFT)计算,以促进瞬态物种的归属。共振拉曼和 DFT 计算结果表明,Fp 的中性形式是 MeCN 中存在的主要物种。对紫外/可见吸收光谱的分析和 TD-DFT 计算结果表明,S2 可以被 266nm 光激发。由于其内在的不稳定性,S2 迅速通过内转换(IC)衰减到最低激发态 S1,这在 fs-TA 光谱中在非常早的延迟时间观察到。有趣的是,似乎存在三种不同的 S1 衰减途径。具体而言,除了荧光发射回到基态和通过系间窜越(ISC)转化为最低三重态 T1 之外,碳α键的均裂脱羧反应同时进行,生成两种自由基物种,一种是羧基,另一种是残留的,称为 FpR。通过 TR(3)光谱和 ns-TA 光谱证实了三重态 Fp(T1)和 FpR 物种的共存。由于其明显的高反应性,在氧饱和条件下观察到 FpR 中间体被氧化,生成另一种自由基物种,称为 FOR,随后它经历分子内氢转移(IHT)和脱羟基(DHO),形成最终产物,它可以与脱羧反应生成的羧基反应,生成一个次要的最终产物。用于预测光脱羧反应中产生的瞬态物种的吸收带和活化能的 TD-DFT 和瞬态态(TS)计算为这里报道的时间分辨光谱实验中观察到的中间物种的归属提供了有价值的机制见解。时间分辨光谱实验和 DFT 计算的结果用于阐明 Fp 光化学中的反应机制和中间体。

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