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通过萘二甲酰亚胺核心的取代扩展4-氨基-1,8-萘二甲酰亚胺光物理性质的广度

Expanding the Breadth of 4-Amino-1,8-naphthalimide Photophysical Properties through Substitution of the Naphthalimide Core.

作者信息

Leslie Kathryn G, Jacquemin Denis, New Elizabeth J, Jolliffe Katrina A

机构信息

School of Chemistry, The University of Sydney, 2006, NSW, Australia.

Laboratoire CEISAM, UMR CNRS 6230, Université de Nantes, 2 Rue de la Houssinière, BP 92208, 44322, Nantes Cedex 3, France.

出版信息

Chemistry. 2018 Apr 11;24(21):5569-5573. doi: 10.1002/chem.201705546. Epub 2018 Mar 6.

DOI:10.1002/chem.201705546
PMID:29423968
Abstract

Fluorescent sensors that illuminate specific molecules and chemical events allow the selective and sensitive study of the cellular environment. At the centre of this technology lies the fluorescent reporter molecule, and it is therefore crucial to provide a breadth of fluorophores with varying photophysical and biological behaviour. 4-Amino-1,8-naphthalimides are commonly employed in fluorescent sensors, but the narrow range of structural derivatives limits versatility of application. Here we report the synthesis and investigation of a set of twelve 4-amino-1,8-naphthalimides bearing an additional substituent on the aromatic core. Photophysical characterisation and time-dependent density functional theory studies provided insights into the structure-photophysical property relationships of these derivatives, which show an expanded range of emission wavelengths and other photophysical properties. These compounds could all be visualised within cells by confocal microscopy, showing cytoplasmic or lipid droplet localisation. Our studies have demonstrated that simple structural modification of 4-amino-1,8-naphthalimides provides derivatives with considerable breadth of behaviour that lend valuable versatility to the design of fluorescent sensors.

摘要

能够照亮特定分子和化学事件的荧光传感器可实现对细胞环境的选择性和灵敏性研究。该技术的核心是荧光报告分子,因此提供一系列具有不同光物理和生物学行为的荧光团至关重要。4-氨基-1,8-萘二甲酰亚胺常用于荧光传感器中,但结构衍生物的范围狭窄限制了其应用的通用性。在此,我们报告了一组十二个在芳环核心带有额外取代基的4-氨基-1,8-萘二甲酰亚胺的合成与研究。光物理表征和含时密度泛函理论研究揭示了这些衍生物的结构-光物理性质关系,这些衍生物展现出更广泛的发射波长范围和其他光物理性质。通过共聚焦显微镜观察,所有这些化合物均可在细胞内可视化,显示出细胞质或脂滴定位。我们的研究表明,对4-氨基-1,8-萘二甲酰亚胺进行简单的结构修饰可提供具有相当广泛行为的衍生物,这为荧光传感器的设计赋予了宝贵的通用性。

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