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通过甲酰胺去甲酰化作用实现的过氧亚硝酸盐生物成像的简便、通用且高效策略。

A Facile, Versatile, and Highly Efficient Strategy for Peroxynitrite Bioimaging Enabled by Formamide Deformylation.

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Key Laboratory of Molecular and Nano Probes, Ministry of Education, Collaborative Innovation Center of Functionalized Probes for Chemical Imaging in Universities of Shandong , Shandong Normal University , Jinan 250014 , People's Republic of China.

出版信息

Anal Chem. 2019 May 21;91(10):6872-6879. doi: 10.1021/acs.analchem.9b01175. Epub 2019 Apr 29.

Abstract

Peroxynitrite (ONOO) is attracting increasing attention due to its involvement in multiple facets of pathophysiological processes. However, ONOO bioimaging is still challenging due to (1) the lack of highly specific reaction triggers, (2) the tedious and low-yielding synthesis of current sophisticated probes, and (3) the lack of availability of a versatile chemical strategy. To address these challenges, on the basis of amine formylation/deformylation chemistry, we have developed a novel strategy for ONOO bioimaging. As proof of principle, we designed, synthesized, and evaluated four novel fluorescent probes equipped with the formamide functionality. Although they feature distinctly different fluorophore classes, all probes can be synthesized in one step in high yields and exhibit particularly specific, highly sensitive, and rapid responses to ONOO. The bioimaging capability is well demonstrated by successfully visualizing ONOO fluctuation in live cells and major organs of mice suffering from paraquat poisoning. The proposed strategy has proved to be a facile, versatile, and highly efficient methodology for ONOO visualization, which will greatly facilitate ONOO biochemistry and pathophysiology.

摘要

过氧亚硝酸盐 (ONOO) 由于参与多种病理生理过程而受到越来越多的关注。然而,由于 (1) 缺乏高度特异性的反应触发物,(2) 当前复杂探针的繁琐和低产合成,以及 (3) 缺乏多功能化学策略,因此 ONOO 的生物成像仍然具有挑战性。为了解决这些挑战,我们基于胺甲酰化/脱甲酰化化学,开发了一种用于 ONOO 生物成像的新策略。作为原理的证明,我们设计、合成并评估了带有甲酰胺官能团的四个新型荧光探针。尽管它们具有明显不同的荧光团类别,但所有探针都可以一步以高产率合成,并对 ONOO 表现出特别特异性、高灵敏度和快速响应。通过成功观察到遭受百草枯中毒的活细胞和小鼠主要器官中 ONOO 的波动,证明了该生物成像能力。所提出的策略已被证明是一种简便、通用且高效的 ONOO 可视化方法,这将极大地促进 ONOO 的生物化学和病理生理学研究。

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