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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Structural Spectroscopy and Dynamics of Inter- and Intramolecular H-Bonding Interactions of Topotecan, a Potent Anticancer Drug, in Organic Solvents and in Aqueous Solution
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Structural Spectroscopy and Dynamics of Inter- and Intramolecular H-Bonding Interactions of Topotecan, a Potent Anticancer Drug, in Organic Solvents and in Aqueous Solution

机译:拓扑替康(一种有效的抗癌药)在有机溶剂和水溶液中的结构光谱和分子间和分子内氢键相互作用的动力学

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We report on the role of H-bonding interactions on the UV-visible absorption and emission (steady-state and time-resolved) spectroscopy of topotecan (TPT) in solution. In aprotic solvents, a very fast (less than 10 ps) excited-state intramolecular pro ton-transfer reaction occurs in the absorbing enol (E) form to give a zwitterion (Z) form, emitting with a large Stokes shift. In protic solvents like methanol, the time constant of Z~* formation is longer (32 ps) due to the participation of solvent molecules in the proton-transfer reaction. In aqueous solution at near-neutral pH (6.24), a ground-state equilibrium is established between E, cation (C), and Z forms. Direct excitation of E leads to Z~* through two channels: a very fast one (less than 10 ps) involving an intramolecular proton-tranfer and a slower one (680 ps) with the C~* intermediate formation and reaction. A fast (42 ps) deprotonation of E~* to give the excited anion (A~*) also competes with the photoformation of Z~* at the S1 state. At pH =12.15, the A structures are the principal emitting species (τ_A ~ 0.41 ns), showing the largest Stokes shift, In aqueous solutions, we cannot exclude the existence of an equilibrium between the lactone and carboxylate forms of TPT, whose spectroscopic (absorption and emission spectra) and dynamical behaviors should not be very different. Time-resolved emission anisotropy measurements in solvents of different viscosities suggest that the rotational relaxation time (φ) of TPT is mainly governed by the viscosity of the medium, increasing from 104 ps (in tetrahydrofuran, THF) to 156 ps (in water) and 338 ps (in dimethyl sulfoxide, DMSO), These results give spectroscopic and dynamical information on the structures, stability, and dynamics (picosecond to nanosecond time scale) of TPT in solution. They provide insights on the role of the intermolecular H-bonding surrounding medium on the ground- and excited-state structure and reaction of TPT. The finding should contribute to a better understanding of the relationship between the structures of the drug and its surroundings.
机译:我们报告了溶液中拓扑替康(TPT)的氢键相互作用对紫外可见吸收和发射光谱(稳态和时间分辨)的作用。在非质子溶剂中,吸收性烯醇(E)形式发生非常快速(小于10 ps)的激发态分子内质子转移反应,从而形成两性离子(Z)形式,并以大的斯托克斯位移发射。在质子传递溶剂(如甲醇)中,由于溶剂分子参与质子转移反应,Z〜*形成的时间常数较长(32 ps)。在接近中性pH(6.24)的水溶液中,在E,阳离子(C)和Z形式之间建立了基态平衡。 E的直接激发通过两个通道导致Z〜*:一个非常快的通道(小于10 ps)涉及分子内质子转移,一个较慢的通道(680 ps)与C〜*中间体的形成和反应有关。 E〜*的快速(42 ps)去质子化得到激发的阴离子(A〜*)在S1状态下也与Z〜*的光形成竞争。在pH = 12.15时,A结构是主要的发射物种(τ_A〜0.41 ns),显示出最大的斯托克斯位移。在水溶液中,我们不能排除TPT的内酯和羧酸盐形式之间存在平衡,其光谱范围为(吸收光谱和发射光谱)和动力学行为不应有太大区别。在不同粘度的溶剂中进行时间分辨的发射各向异性测量表明,TPT的旋转弛豫时间(φ)主要取决于介质的粘度,从104 ps(在四氢呋喃,THF中)增加到156 ps(在水中),并且338 ps(在二甲基亚砜中,在DMSO中),这些结果给出了溶液中TPT的结构,稳定性和动力学(皮秒至纳秒级)的光谱和动力学信息。他们提供了分子间氢键周围介质对基态和激发态结构以及TPT反应的作用的见解。该发现应有助于更好地理解药物结构与其周围环境之间的关系。

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