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电化学合成苯并噻嗪酮作为荧光团及其在生物成像中的应用。

Electrochemical Synthesis of Phenothiazinone as Fluorophore and Its Application in Bioimaging.

机构信息

School of Pharmaceutical Sciences, Wenzhou Medical University, Wenzhou, 325035, P. R. China.

School & Hospital of Stomatology, Wenzhou Medical University, Wenzhou, 325027, P. R. China.

出版信息

Chemistry. 2023 Nov 21;29(65):e202302124. doi: 10.1002/chem.202302124. Epub 2023 Oct 12.

Abstract

Phenothiazinone is a promising yet underutilized fluorophore, possibly due to the lack of a general accessibility. This study reports a robust and scalable TEMPO-mediated electrochemical method to access a variety of phenothiazinones from 2-aminothiophenols and quinones. The electrosynthesis proceeds in a simple cell architecture under mild condition, and notably carbon-halogen bond in quinones remains compared to conventional methods, enabling orthogonal downstream functionalization. Mechanistic studies corroborate that TEMPO exerts a protective effect in avoiding product decomposition at the cathode. In particular, benzophenothiazinones show intriguing luminescence in both solid and solution state, and thus their photophysical properties are scrutinized in detail. Further bio-imaging of the lipid droplets in living cells highlights the considerable promise of benzophenothiazinones as fluorescent dye in the biomedical fields.

摘要

吩噻嗪酮是一种很有前途但尚未得到充分利用的荧光团,可能是因为其通用性较差。本研究报道了一种强大且可扩展的 TEMPO 介导的电化学方法,可从 2-氨基噻吩酚和醌类化合物中获得各种吩噻嗪酮。该电合成在温和条件下在简单的电池结构中进行,与传统方法相比,醌类化合物中的碳卤键得以保留,从而实现了正交的下游官能化。机理研究证实 TEMPO 发挥了保护作用,可避免在阴极发生产物分解。特别地,二苯并吩噻嗪酮在固态和溶液态均表现出有趣的发光,因此对其光物理性质进行了详细研究。进一步对活细胞中的脂滴进行生物成像,突出了二苯并吩噻嗪酮作为生物医学领域荧光染料的巨大应用潜力。

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