Ortiz-Rodríguez Luis A, Fang Ye-Guang, Niogret Germain, Hadidi Kaivin, Hoehn Sean J, Folkwein Heather J, Jockusch Steffen, Tor Yitzhak, Cui Ganglong, Levi Liraz, Crespo-Hernández Carlos E
Department of Chemistry, Case Western Reserve University Cleveland OH 44106 USA
Key Lab of Theoretical and Computational Photochemistry, Ministry of Education, Chemistry College, Beijing Normal University Beijing 100875 China.
Chem Sci. 2023 Jul 25;14(33):8831-8841. doi: 10.1039/d3sc02592f. eCollection 2023 Aug 23.
All-organic, heavy-atom-free photosensitizers based on thionation of nucleobases are receiving increased attention because they are easy to make, noncytotoxic, work both in the presence and absence of molecular oxygen, and can be readily incorporated into DNA and RNA. In this contribution, the DNA and RNA fluorescent probe, thieno[3,4-]pyrimidin-4(1)-one, has been thionated to develop thieno[3,4-]pyrimidin-4(3)-thione, which is nonfluorescent and absorbs near-visible radiation with about 60% higher efficiency. Steady-state absorption and emission spectra are combined with transient absorption spectroscopy and CASPT2 calculations to delineate the electronic relaxation mechanisms of both pyrimidine derivatives in aqueous and acetonitrile solutions. It is demonstrated that thieno[3,4-]pyrimidin-4(3)-thione efficiently populates the long-lived and reactive triplet state generating singlet oxygen with a quantum yield of about 80% independent of solvent. It is further shown that thieno[3,4-]pyrimidin-4(3)-thione exhibits high photodynamic efficacy against monolayer melanoma cells and cervical cancer cells both under normoxic and hypoxic conditions. Our combined spectroscopic, computational, and data demonstrate the excellent potential of thieno[3,4-]pyrimidin-4(1)-thione as a heavy-atom-free PDT agent and paves the way for further development of photosensitizers based on the thionation of thieno[3,4-]pyrimidine derivatives. Collectively, the experimental and computational results demonstrate that thieno[3,4-]pyrimidine-4(3)-thione stands out as the most promising thiobase photosensitizer developed to this date.
基于核碱基硫代化的全有机、无重原子光敏剂正受到越来越多的关注,因为它们易于制备、无细胞毒性,在有氧和无氧条件下均能发挥作用,并且可以很容易地整合到DNA和RNA中。在本研究中,DNA和RNA荧光探针噻吩并[3,4-]嘧啶-4(1)-酮已被硫代化,以开发出噻吩并[3,4-]嘧啶-4(3)-硫酮,该物质无荧光,吸收近可见光的效率提高了约60%。稳态吸收和发射光谱与瞬态吸收光谱以及CASPT2计算相结合,以描绘这两种嘧啶衍生物在水溶液和乙腈溶液中的电子弛豫机制。结果表明,噻吩并[3,4-]嘧啶-4(3)-硫酮能有效地填充长寿命且具有反应活性的三重态,产生单线态氧,量子产率约为80%,与溶剂无关。进一步表明,噻吩并[3,4-]嘧啶-4(3)-硫酮在常氧和低氧条件下对单层黑色素瘤细胞和宫颈癌细胞均表现出高光动力疗效。我们综合的光谱、计算和实验数据证明了噻吩并[3,4-]嘧啶-4(1)-硫酮作为无重原子光动力治疗剂的巨大潜力,并为基于噻吩并[3,4-]嘧啶衍生物硫代化的光敏剂的进一步开发铺平了道路。总的来说,实验和计算结果表明,噻吩并[3,4-]嘧啶-4(3)-硫酮是迄今为止开发的最有前途的硫代碱基光敏剂。