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2,4-Dithiothymine as a Potent UVA Chemotherapeutic Agent

机译:2,4-二硫代胸腺嘧啶作为有效的UVA化学治疗剂

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摘要

Substitution of both oxygen atoms in the exocyclic carbonyl groups of the thymine chromophore by sulfur atoms results in a remarkable redshift of its absorption spectrum from an absorption maximum at 267 nm in thymidine to 363 nm in 2,4-dithiothymine (ΔE= 9905 cm~(-1)). A single sulfur substitution of a carbonyl group in the thymine chromophore at position 2 or 4 results in a significantly smaller redshift in the absorption maximum, which depends sensitively on the position at which the sulfur atom is substituted, varying from 275 nm in 2-thiothymine to 335 nm in 4-thiothymidine. Femtosecond transient absorption spectroscopy reveals that excitation of 2,4-dithiothymine at 335 or 360 nm leads to the ultrafast population of the triplet state, with an intersystem crossing lifetime of 180 ± 40 fs-the shortest intersystem crossing lifetime of any DNA base derivative studied so far in aqueous solution. Surprisingly, the degree and position at which the sulfur atom is substituted have important effects on the magnitude of the intersystem crossing rate constant, showing a 1.2-, 3.2-, and 4.2-fold rate increases for 2-thiothymine, 4-thiothymidine, and 2,4-dithiothymine, respectively, relative to that of thymidine, whereas the triplet yield increases 60-fold to near unity, independent of the site of sulfur atom substitution. While the natural thymine monomers owe their high degree of photostability to ultrafast internal conversion to the ground state and low triplet yields, the near-unity triplet yields in the thiothymine series account for their potent photosensitization properties. Nanosecond time-resolved luminescence spectroscopy shows that 4-thiothymidine and 2,4-dithiothymine are efficient singlet oxygen generators, with singlet oxygen quantum yields of 0.42 ± 0.02 and 0.46 ± 0.02, respectively, in O_2-saturated acetonitrile solution. Taken together, these photophysical measurements strongly suggest that 2,4-dithiothymine can act as a more effective UVA chemotherapeutic agent than the currently used 4-thiothymidine, especially in deeper-tissue chemotherapeutic applications.
机译:硫原子取代胸腺嘧啶发色团的环外羰基中的两个氧原子,导致其吸收光谱发生显着红移,从胸苷的267 nm处的最大吸收跃迁至2,4-二硫代胸腺嘧啶的363 nm(ΔE= 9905 cm〜 (-1))。胸腺嘧啶发色团中位置2或4的羰基的单硫取代导致最大吸收的红移明显较小,这主要取决于硫原子被取代的位置,其变化范围是2-硫代胸腺嘧啶中的275 nm在4-硫代胸苷中至335nm。飞秒瞬态吸收光谱表明,在335或360 nm处激发2,4-二硫胸腺嘧啶可导致三重态超快填充,系统间交叉寿命为180±40 fs,这是研究的任何DNA碱基衍生物中最短的系统间交叉寿命到目前为止在水溶液中。令人惊讶地,硫原子被取代的程度和位置对系统间交叉速率常数的大小具有重要影响,表明2-硫代胸腺嘧啶,4-硫代胸腺嘧啶核苷和2-硫代胸腺嘧啶核苷的速率增加了1.2-,3.2-和4.2-倍。相对于胸苷,分别具有2,4-二硫代胸腺嘧啶,而三重态产量增加了60倍,几乎达到统一,与硫原子取代位点无关。天然胸腺嘧啶单体由于具有高度的光稳定性,可实现超快的内部转化为基态,并且三重态产量较低,而硫代胸腺嘧啶系列中的近三重态产量则说明了其强大的光敏特性。纳秒时间分辨发光光谱表明,4-硫代胸苷和2,4-二硫代胸腺嘧啶是有效的单线态氧产生剂,在O_2饱和的乙腈溶液中,单线态氧量子产率分别为0.42±0.02和0.46±0.02。综上所述,这些光物理测量结果强烈表明,2,4-二硫代胸腺嘧啶可以比目前使用的4-硫代胸腺嘧啶核苷更有效地用作UVA化疗剂,尤其是在较深层组织的化疗应用中。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2014年第52期|17930-17933|共4页
  • 作者单位

    Department of Chemistry and Center for Chemical Dynamics, Case Western Reserve University, Cleveland, Ohio 44106, United States;

    Department of Chemistry, Columbia University, New York, New York 10027, United States;

    Department of Chemistry and Center for Chemical Dynamics, Case Western Reserve University, Cleveland, Ohio 44106, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:11:28

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