Department of Chemistry, School of Science, Tokyo Institute of Technology, Tokyo 152-8551, Japan.
Molecules. 2023 Dec 6;28(24):7972. doi: 10.3390/molecules28247972.
Selenocysteine selenenic acids (Sec-SeOHs) and selenocysteine selenenyl iodides (Sec-SeIs) have long been recognized as crucial intermediates in the catalytic cycle of glutathione peroxidase (GPx) and iodothyronine deiodinase (Dio), respectively. However, the observation of these reactive species remained elusive until our recent study, where we successfully stabilized Sec-SeOHs and Sec-SeIs using a protective molecular cradle. Here, we report the first demonstration of the chemical transformation from a Sec-SeI to a Sec-SeOH through alkaline hydrolysis. A stable Sec-SeI derived from a selenocysteine methyl ester was synthesized using the protective cradle, and its structure was determined by crystallographic analysis. The alkaline hydrolysis of the Sec-SeI at -50 °C yielded the corresponding Sec-SeOH in an 89% NMR yield, the formation of which was further confirmed by its reaction with dimedone. The facile and nearly quantitative conversion of the Sec-SeI to the Sec-SeOH not only validates the potential involvement of this process in the catalytic mechanism of Dio, but also highlights its utility as a method for producing a Sec-SeOH.
硒代半胱氨酸亚硒酸(Sec-SeOHs)和硒代半胱氨酸硒代碘化物(Sec-SeIs)一直以来分别被认为是谷胱甘肽过氧化物酶(GPx)和甲状腺素脱碘酶(Dio)催化循环中的关键中间体。然而,直到我们最近的研究,这些活性物质才被观察到,在我们的研究中,我们成功地使用保护性分子摇篮来稳定 Sec-SeOHs 和 Sec-SeIs。在这里,我们首次证明了通过碱性水解从 Sec-SeI 到 Sec-SeOH 的化学转化。使用保护性摇篮合成了来源于硒代半胱氨酸甲酯的稳定的 Sec-SeI,并通过晶体学分析确定了其结构。在-50°C下,Sec-SeI 的碱性水解以 89%NMR 产率得到相应的 Sec-SeOH,其形成通过其与二亚甲基酮的反应进一步得到证实。Sec-SeI 到 Sec-SeOH 的这种易于发生且近乎定量的转化不仅验证了该过程在 Dio 催化机制中的潜在参与,而且还突出了其作为生成 Sec-SeOH 的方法的实用性。