Reducing the Formation of Toxic Byproducts During the Photochemical Release of Epinephrine.

IF 4.4 Q1 TOXICOLOGY Journal of Xenobiotics Pub Date : 2025-01-08 DOI:10.3390/jox15010008
Mikhail A Panfilov, Ezhena S Starodubtseva, Tatyana Yu Karogodina, Alexey Yu Vorob'ev, Alexander E Moskalensky
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Abstract

Engineered light-sensitive molecules offer a sophisticated toolkit for the manipulation of biological systems with both spatial and temporal precision. Notably, artificial "caged" compounds can activate specific receptors solely in response to light exposure. However, the uncaging process can lead to the formation of potentially harmful byproducts. For example, the photochemical release of adrenaline (epinephrine) is accompanied by the formation of adrenochrome, which has neuro- and cardiotoxic effects. To investigate this effect in detail, we synthesized and compared two "caged" epinephrine analogs. The first was a classical compound featuring an ortho-nitrobenzyl protecting group attached to the amino group of epinephrine. The second analog retained the ortho-nitrobenzyl group but included an additional carbamate linker. The photolysis of both compounds was conducted under identical conditions, and the resulting products were analyzed using UV-Vis spectroscopy, chromatography, and NMR techniques. Surprisingly, while the classical compound led to the formation of adrenochrome, the carbamate-type caged epinephrine did not produce this byproduct, resulting in the clean release of the active substance. Subsequently, we assessed the novel compound in an in vitro platelet activation assay. The results demonstrated that the uncaging of epinephrine significantly enhances platelet activation, making it a valuable tool for advanced signaling studies.

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减少肾上腺素光化学释放过程中有毒副产物的形成。
工程光敏分子为操纵生物系统提供了一个复杂的工具箱,具有空间和时间精度。值得注意的是,人工“笼”化合物可以激活特定的受体,仅在光照下响应。然而,脱壳过程可能导致潜在有害副产品的形成。例如,肾上腺素(肾上腺素)的光化学释放伴随着肾上腺素色素的形成,它具有神经和心脏毒性作用。为了详细研究这种效应,我们合成并比较了两种“笼子”肾上腺素类似物。第一个是典型的化合物,其特征是一个邻硝基苯保护基团与肾上腺素的氨基相连。第二种类似物保留了对硝基苯基,但包含了一个额外的氨基甲酸酯连接物。两种化合物在相同的条件下进行光解,并使用紫外可见光谱,色谱和核磁共振技术分析所得产物。令人惊讶的是,当经典化合物导致肾上腺素色素的形成时,氨基甲酸酯型笼型肾上腺素不会产生这种副产物,导致活性物质的干净释放。随后,我们在体外血小板活化试验中评估了这种新化合物。结果表明,肾上腺素的释放显著增强血小板活化,使其成为高级信号研究的有价值的工具。
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来源期刊
CiteScore
5.30
自引率
1.70%
发文量
21
审稿时长
10 weeks
期刊介绍: The Journal of Xenobiotics publishes original studies concerning the beneficial (pharmacology) and detrimental effects (toxicology) of xenobiotics in all organisms. A xenobiotic (“stranger to life”) is defined as a chemical that is not usually found at significant concentrations or expected to reside for long periods in organisms. In addition to man-made chemicals, natural products could also be of interest if they have potent biological properties, special medicinal properties or that a given organism is at risk of exposure in the environment. Topics dealing with abiotic- and biotic-based transformations in various media (xenobiochemistry) and environmental toxicology are also of interest. Areas of interests include the identification of key physical and chemical properties of molecules that predict biological effects and persistence in the environment; the molecular mode of action of xenobiotics; biochemical and physiological interactions leading to change in organism health; pathophysiological interactions of natural and synthetic chemicals; development of biochemical indicators including new “-omics” approaches to identify biomarkers of exposure or effects for xenobiotics.
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