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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Structural Photodynamic Behavior of Topotecan, a Potent Anticancer Drug, in Aqueous Solutions at Different pHs
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Structural Photodynamic Behavior of Topotecan, a Potent Anticancer Drug, in Aqueous Solutions at Different pHs

机译:拓扑替康(一种有效的抗癌药物)在不同pH值的水溶液中的结构光动力学行为

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摘要

In this work, we report on photophysical studies of the anticancer drug topotecan (TPT) in aqueous solutions at different pHs. We used steady-state (UV-visible absorption and emission) and time-resolved picosecond (ps) emission spectroscopies to investigate the role of the H-bonding interactions as well as the proton concentration (pH = 0.48-7.40) on the behavior of topotecan (TPT) in its ground- (S0) and electronically first (S1) excited-states. At physiological conditions (pH = 7.40), the drug exists at S0 in equilibrium between the enol (E), cation (C), and zwitterion (Z) forms. The photoformation of Z* (tz = 5.83 ns) occurs from directly excited (λ_(exc) = 371 nm) E as the two-step reaction: E*→C*→Z*. In this process, a very fast (less than 10 ps) protonation of E* leads to C*, which subsequently undergoes fast (580 ps) deprotonation to give Z* as the final photo-product. At higher proton concentrations (pH = 0.48-1.31), a ground-state equilibrium exists between three different cationic species (CI, C2, and C3). The proton motion from the acidic solution to the C forms of TPT to give the reactions C1*→C2*→C3* is governed by the proton diffusion. In these conditions, both dynamic and static quenching occurs. The rate constant values k*_(DPT1) and k*_(DPT2) for the direct protonation of C1* and C~(2+), respectively, depend on the pH of the surrounding. The number of protons implicated in the reaction changes from ~2 (pH = 0.48-0.78) to ~1 (pH = 0.78-1.31), thus indicating the existence of two different reactions and proton-transfer dynamics. These results evidence the conformational, structural, and dynamical changes of aqueous solutions of TPT with the pH of the environment. They should help to understand the molecular structure/activity of TPT at cellular level.
机译:在这项工作中,我们报告了在不同pH值的水溶液中抗癌药物拓扑替康(TPT)的光物理研究。我们使用稳态(UV-可见吸收和发射)和时间分辨皮秒(ps)发射光谱研究了H键相互作用以及质子浓度(pH = 0.48-7.40)对氢键行为的作用。拓扑替康(TPT)处于其基态(S0)和电子优先(S1)激发态。在生理条件下(pH = 7.40),药物在S0处于烯醇(E),阳离子(C)和两性离子(Z)形式之间的平衡状态。 Z *(tz = 5.83 ns)的光形成是通过直接激发(λ_(exc)= 371 nm)E作为两步反应而发生的:E *→C *→Z *。在此过程中,E *的快速质子化(小于10 ps)导致C *,随后进行快速的质子化(580 ps)去质子化,得到Z *作为最终的光产物。在较高的质子浓度下(pH = 0.48-1.31),三种不同阳离子物种(C1,C2和C3)之间存在基态平衡。质子从酸性溶液到C形式的TPT的质子运动产生反应C1 *→C2 *→C3 *取决于质子扩散。在这些条件下,会发生动态和静态淬火。 C1 *和C〜(2+)的直接质子化的速率常数值k * _(DPT1)和k * _(DPT2)取决于周围环境的pH。反应中涉及的质子数从〜2(pH = 0.48-0.78)变为〜1(pH = 0.78-1.31),从而表明存在两个不同的反应和质子转移动力学。这些结果证明了TPT水溶液的构象,结构和动力学随环境pH的变化。他们应该帮助了解TPT在细胞水平上的分子结构/活性。

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