Department of Chemistry, Case Western Reserve University, Cleveland, OH.
Photochem Photobiol. 2019 Jan;95(1):33-58. doi: 10.1111/php.12975. Epub 2018 Sep 9.
Sulfur-substituted nucleobases (a.k.a., thiobases) are among the world's leading prescriptions for chemotherapy and immunosuppression. Long-term treatment with azathioprine, 6-mercaptopurine and 6-thioguanine has been correlated with the photoinduced formation of carcinomas. Establishing an in-depth understanding of the photochemical properties of these prodrugs may provide a route to overcoming these carcinogenic side effects, or, alternatively, a basis for developing effective compounds for targeted phototherapy. In this review, a broad examination is undertaken, surveying the basic photochemical properties and excited-state dynamics of sulfur-substituted analogs of the canonical DNA and RNA nucleobases. A molecular-level understanding of how sulfur substitution so remarkably perturbs the photochemical properties of the nucleobases is presented by combining experimental results with quantum-chemical calculations. Structure-property relationships demonstrate the impact of site-specific sulfur substitution on the photochemical properties, particularly on the population of the reactive triplet state. The value of fundamental photochemical investigations for driving the development of ultraviolet-A chemotherapeutics is showcased. The most promising photodynamic agents identified thus far have been investigated in various carcinoma cell lines and shown to decrease cell proliferation upon exposure to ultraviolet-A radiation. Overarching principles have been elucidated for the impact that sulfur substitution of the carbonyl oxygen has on the photochemical properties of the nucleobases.
硫代碱基(又名硫碱基)是世界上主要的化疗和免疫抑制药物之一。长期使用硫唑嘌呤、巯嘌呤和 6-硫代鸟嘌呤与光诱导的癌症形成有关。深入了解这些前药的光化学性质可能为克服这些致癌副作用提供途径,或者为开发针对光疗的有效化合物提供基础。在这篇综述中,我们广泛考察了经典 DNA 和 RNA 碱基的硫代类似物的基本光化学性质和激发态动力学。通过将实验结果与量子化学计算相结合,提出了硫取代如何显著改变碱基光化学性质的分子水平理解。结构-性质关系表明,硫的位置特异性取代对光化学性质,特别是对反应性三重态的分布有显著影响。基本光化学研究对推动紫外线 A 化疗药物的发展具有重要意义。迄今为止,已经在各种癌细胞系中研究了最有前途的光动力剂,并发现它们在暴露于紫外线 A 辐射下会降低细胞增殖。阐明了羰基氧的硫取代对碱基光化学性质的影响的基本原则。