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重原子取代的碱基在光动力治疗中的应用:在 6-硫代鸟嘌呤中用硒取代硫可显著提高 6-硒代鸟嘌呤三重态的衰减速率。

Heavy-Atom-Substituted Nucleobases in Photodynamic Applications: Substitution of Sulfur with Selenium in 6-Thioguanine Induces a Remarkable Increase in the Rate of Triplet Decay in 6-Selenoguanine.

机构信息

Department of Chemistry , Case Western Reserve University , 10900 Euclid Avenue , Cleveland , Ohio 44106 , United States.

Department of Chemistry , University of Copenhagen , Universitetsparken 5 , DK-2100 Copenhagen , Denmark.

出版信息

J Am Chem Soc. 2018 Sep 12;140(36):11214-11218. doi: 10.1021/jacs.8b07665. Epub 2018 Aug 28.

Abstract

Sulfur substitution of carbonyl oxygen atoms of DNA/RNA nucleobases promotes ultrafast intersystem crossing and near-unity triplet yields that are being used for photodynamic therapy and structural-biology applications. Replacement of sulfur with selenium or tellurium should significantly red-shift the absorption spectra of the nucleobases without sacrificing the high triplet yields. Consequently, selenium/tellurium-substituted nucleobases are thought to facilitate treatment of deeper tissue carcinomas relative to the sulfur-substituted analogues, but their photodynamics are yet unexplored. In this contribution, the photochemical relaxation mechanism of 6-selenoguanine is elucidated and compared to that of the 6-thioguanine prodrug. Selenium substitution leads to a remarkable enhancement of the intersystem crossing lifetime both to and from the triplet manifold, resulting in an efficiently populated, yet short-lived triplet state. Surprisingly, the rate of triplet decay in 6-selenoguanine increases by 835-fold compared to that in 6-thioguanine. This appears to be an extreme manifestation of the classical heavy-atom effect in organic photochemistry, which challenges conventional wisdom.

摘要

硫原子取代 DNA/RNA 碱基中羰基氧原子可以促进超快的系间窜越,并产生近乎完整的三重态产率,这使其在光动力疗法和结构生物学应用中得到广泛应用。用硒或碲取代硫原子应该会显著红移碱基的吸收光谱,而不会牺牲高三重态产率。因此,与硫取代类似物相比,硒/碲取代的碱基被认为更有利于治疗深层组织的癌,但其光动力学特性尚未得到探索。在本研究中,阐明了 6-硒代鸟嘌呤的光化学弛豫机制,并将其与 6-巯基鸟嘌呤前药进行了比较。硒取代导致从三重态到系间窜越的寿命以及从系间窜越到三重态的寿命显著延长,从而产生了一个高效占据但寿命较短的三重态。令人惊讶的是,与 6-巯基鸟嘌呤相比,6-硒代鸟嘌呤中三重态的衰减速率增加了 835 倍。这似乎是有机光化学中经典重原子效应的极端表现,这挑战了传统观念。

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