4.7 Article

Substituted 9-Diethylaminobenzo[a]phenoxazin-5-ones (Nile Red Analogues): Synthesis and Photophysical Properties

Journal

JOURNAL OF ORGANIC CHEMISTRY
Volume 86, Issue 2, Pages 1471-1488

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.joc.0c02346

Keywords

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Funding

  1. Independent Research Fund Denmark
  2. Natural Sciences (DFF-FNU) [DFF-7014-00050B]

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Nile Red is a popular histological stain with unrivaled fluorescent properties for cellular membranes and lipid droplets, and has been utilized for chemical decoration to optimize its attributes. By synthesizing a series of monosubstituted Nile Red derivatives, researchers have found strong candidates for reporting the polarity of their local environment, with the spectroscopic features finely tuned by introducing substituents of distinct electronic character.
Nile Red is a benzo[a]phenoxazone dye containing a diethylamino substituent at the 9-position. In recent years, it has become a popular histological stain for cellular membranes and lipid droplets due to its unrivaled fluorescent properties in lipophilic environments. This makes it an attractive lead for chemical decoration to tweak its attributes and optimize it for more specialized microscopy techniques, e.g., fluorescence lifetime imaging or two-photon excited fluorescence microscopy, to which Nile Red has never been optimized. Herein, we present synthesis approaches to a series of monosubstituted Nile Red derivatives (9-diethylbenzo[a]phenoxazin-5-ones) starting from 1-naphthols or 1,3-naphthalenediols. The solvatochromic responsiveness of these fluorophores is reported with focus on how the substituents affect the absorption and emission spectra, luminosity, fluorescence lifetimes, and two-photon absorptivity. Several of the analogues emerge as strong candidates for reporting the polarity of their local environment. Specifically, the one- and two-photon excited fluorescence of Nile Red turns out to be very responsive to substitution, and the spectroscopic features can be finely tuned by judiciously introducing substituents of distinct electronic character at specific positions. This new toolkit of 9-diethylbenzo[a]phenoxazine-5-ones constitutes a step toward the next generation of optical molecular probes for advancing the understanding of lipid structures and cellular processes.

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