Lamperti Marco, Giani Arianna Maria, Maspero Angelo, Vesco Guglielmo, Cimino Alessandro, Negri Roberto, Giovenzana Giovanni Battista, Palmisano Giovanni, Mella Massimo, Nardo Luca
Dipartimento di Scienza e Alta Tecnologia, Università degli Studi dell'Insubria, Via Valleggio 11, I-22100, Como, Italy.
Dipartimento di Scienze del Farmaco, Università degli Studi del Piemonte Orientale "A. Avogadro", Largo Donegani 2/3, I-28100, Novara, Italy.
J Fluoresc. 2019 Mar;29(2):495-504. doi: 10.1007/s10895-019-02361-9. Epub 2019 Mar 12.
Perimidines are a particularly versatile family of heterocyclic compounds, whose properties are exploited in several applications ranging from industrial to medicinal chemistry. The molecular structure of perimidine incorporates a well-known efficient fluorophore, i.e.: 1,8-diaminonaphthalene. The high fluorescence quantum yield shared by most naphthalene derivatives, has enabled their use as stains for bio-imaging and biophysical characterizations. However, fluorescence is dramatically depressed in perimidine as well as in the few of its derivatives analysed so far to this respect. The use of perimidine-like molecules in life sciences might be notably fostered by enhancement of their fluorescence emission. Even more excitingly, the concomitance of both biologically active moieties and a fluorophore in the same molecular structure virtually discloses application of perimidines as drug compounds in state-of-art theranostics protocols. However, somewhat surprisingly, relatively few attempts were made until now in the direction of increasing the performances of perimidines as fluorescent dyes. In this work we present the synthesis and spectroscopic characterization of four perimidine derivatives designed to this aim, two of which result to be endowed with fluorescence quantum yields comparable to 1,8-diaminonaphthalene. A rationalization for such improved behaviour has been attempted employing TD-DFT calculations, which have unravelled the interrelations among bond structure, lone pair conjugation, local electron density changes and fluorescence quantum yield.
苝啶是一类特别通用的杂环化合物,其性质在从工业化学到药物化学的多种应用中得到利用。苝啶的分子结构包含一种著名的高效荧光团,即1,8 - 二氨基萘。大多数萘衍生物具有高荧光量子产率,这使得它们能够用作生物成像和生物物理表征的染色剂。然而,在苝啶以及到目前为止在这方面分析的少数其衍生物中,荧光显著降低。增强苝啶类分子的荧光发射可能会显著促进它们在生命科学中的应用。更令人兴奋的是,在同一分子结构中同时存在生物活性部分和荧光团,实际上揭示了苝啶作为药物化合物在先进的诊疗方案中的应用。然而,令人有些惊讶的是,到目前为止,在提高苝啶作为荧光染料性能方面所做的尝试相对较少。在这项工作中,我们展示了为此目的设计的四种苝啶衍生物的合成和光谱表征,其中两种的荧光量子产率与1,8 - 二氨基萘相当。我们尝试用TD - DFT计算对这种改进的行为进行合理化解释,该计算揭示了键结构、孤对共轭、局部电子密度变化和荧光量子产率之间的相互关系。