First-principles design of heavy-atom-free singlet oxygen photosensitizers for photodynamic therapy

Arun K. Pal, Ayan Datta
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Abstract

In photodynamic therapy (PDT) treatment, heavy-atom-free photosensitizers (PSs) are a great source of singlet oxygen photosensitizer. Reactive oxygen species (ROS) are produced by an energy transfer from the lowest energy triplet excited state to the molecular oxygen of cancer cells. To clarify the photophysical characteristics in the excited states of a few experimentally identified thionated (>C=S) molecules and their oxygenated congeners (>C=O), a quantum chemical study is conducted. This study illustrates the properties of the excited states in oxygen congeners that render them unsuitable for PDT treatment. Concurrently, a hierarchy is presented based on the utility of the lowest-energy triplet excitons of thionated compounds. Their non-radiative decay rates are calculated for reverse-ISC and inter-system crossover (ISC) processes. In addition, the vibronic importance of C=O and C=S bonds is clarified by the computation of the Huang–Rhys factor, effective vibrational mode, and reorganization energy inside the Marcus–Levich–Jörtner system. ROS generation in thionated PSs exceeds their oxygen congeners as kf ≪ kISC, where radiative decay rate is designated as kf. As a result, the current work offers a calculated strategy for analyzing the effectiveness of thionated photosensitizers in PDT.
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用于光动力疗法的无重原子单线态氧光敏剂的第一原理设计
在光动力疗法(PDT)治疗中,不含重原子的光敏剂(PSs)是单线态氧光敏剂的重要来源。活性氧(ROS)是由最低能量的三重激发态向癌细胞的分子氧进行能量转移而产生的。为了阐明一些实验确定的亚硫酸盐(>C=S)分子及其含氧同系物(>C=O)激发态的光物理特性,我们进行了一项量子化学研究。这项研究说明了氧同系物中激发态的特性,这些特性使它们不适合用于光致发射过渡疗法。同时,根据亚硫酸盐化合物中能量最低的三重激子的效用,提出了一个层次结构。计算了它们在反向-ISC 和系统间交叉 (ISC) 过程中的非辐射衰变率。此外,通过计算 Huang-Rhys 因子、有效振动模式和 Marcus-Levich-Jörtner 系统内的重组能,阐明了 C=O 和 C=S 键的振动重要性。当 kf ≪ kISC 时,硫代 PS 中产生的 ROS 超过其氧同系物,其中辐射衰减速率被指定为 kf。因此,目前的研究工作为分析硫代光敏剂在局部放疗中的有效性提供了一种计算策略。
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