School of Pharmacy, University of East Anglia, Norwich, UK.
Org Biomol Chem. 2013 Oct 7;11(37):6357-71. doi: 10.1039/c3ob40485d.
Derivatives of UMP (uridine monophosphate) with a fluorogenic substituent in position 5 represent a small but unique class of fluorophores, which has found important applications in chemical biology and biomolecular chemistry. In this study, we have synthesised a series of derivatives of the uracil nucleotides UMP, UDP and UTP with different aromatic and heteroaromatic substituents in position 5, in order to systematically investigate the influence of the 5-substituent on fluorescence emission. We have determined relevant photophysical parameters for all derivatives in this series, including quantum yields for the best fluorophores. The strongest fluorescence emission was observed with a 5-formylthien-2-yl substituent in position 5 of the uracil base, while the corresponding 3-formylthien-2-yl-substituted regioisomer was significantly less fluorescent. The 5-(5-formylthien-2-yl) uracil fluorophore was studied further in solvents of different polarity and proticity. In conjunction with results from a conformational analysis based on NMR data and computational experiments, these findings provide insights into the steric and electronic factors that govern fluorescence emission in this class of fluorophores. In particular, they highlight the interplay between fluorescence emission and conformation in this series. Finally, we carried out ligand-binding experiments with the 5-(5-formylthien-2-yl) uracil fluorophore and a UDP-sugar-dependent glycosyltransferase, demonstrating its utility for biological applications. The results from our photophysical and biological studies suggest, for the first time, a structural explanation for the fluorescence quenching effect that is observed upon binding of these fluorophores to a target protein.
UMP(尿嘧啶核苷酸)的 5 位取代的荧光衍生物代表了一类较小但独特的荧光团,在化学生物学和生物分子化学中有着重要的应用。在这项研究中,我们合成了一系列尿嘧啶核苷酸 UMP、UDP 和 UTP 的衍生物,它们在 5 位具有不同的芳香族和杂环芳香族取代基,以便系统地研究 5-取代基对荧光发射的影响。我们确定了该系列中所有衍生物的相关光物理参数,包括最佳荧光团的量子产率。在尿嘧啶碱基的 5 位带有 5-甲酰基噻吩-2-基取代基时,观察到最强的荧光发射,而相应的 3-甲酰基噻吩-2-基取代的区域异构体的荧光强度则显著降低。进一步研究了 5-(5-甲酰基噻吩-2-基)尿嘧啶荧光团在不同极性和质子性溶剂中的性质。结合基于 NMR 数据和计算实验的构象分析结果,这些发现为控制这类荧光团荧光发射的立体和电子因素提供了深入的了解。特别是,它们突出了该系列中荧光发射和构象之间的相互作用。最后,我们用 5-(5-甲酰基噻吩-2-基)尿嘧啶荧光团和一个 UDP-糖依赖性糖基转移酶进行了配体结合实验,证明了它在生物应用中的实用性。我们的光物理和生物学研究结果首次为这些荧光团与靶蛋白结合时观察到的荧光猝灭效应提供了结构解释。