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使用 2,2'-二硫代双(5-硝基吡啶)(DTNP)对含保护硒半胱氨酸的肽进行脱保护和二硒醚形成。

The use of 2,2'-dithiobis(5-nitropyridine) (DTNP) for deprotection and diselenide formation in protected selenocysteine-containing peptides.

机构信息

Department of Chemistry, Saint Michael's College, One Winooski Park, Colchester, VT 05439, USA.

出版信息

J Pept Sci. 2012 Mar;18(3):155-62. doi: 10.1002/psc.1430. Epub 2012 Jan 16.

Abstract

In contrast to the large number of sidechain protecting groups available for cysteine derivatives in solid phase peptide synthesis, there is a striking paucity of analogous selenocysteine Se-protecting groups in the literature. However, the growing interest in selenocysteine-containing peptides and proteins requires a corresponding increase in availability of synthetic routes into these target molecules. It therefore becomes important to design new sidechain protection strategies for selenocysteine as well as multiple and novel deprotection chemistry for their removal. In this paper, we outline the synthesis of two new Fmoc selenocysteine derivatives [Fmoc-Sec(Meb) and Fmoc-Sec(Bzl)] to accompany the commercially available Fmoc-Sec(Mob) derivative and incorporate them into two model peptides. Sec-deprotection assays were carried out on these peptides using 2,2'-dithiobis(5-nitropyridine) (DTNP) conditions previously described by our group. The deprotective methodology was further evaluated as to its suitability towards mediating concurrent diselenide formation in oxytocin-templated target peptides. Sec(Mob) and Sec(Meb) were found to be extremely labile to the DTNP conditions whether in the presence or absence of thioanisole, whereas Sec(Bzl) was robust to DTNP in the absence of thioanisole but quite labile in its presence. In multiple Sec-containing model peptides, it was shown that bis-Sec(Mob)-containing systems spontaneously cyclize to the diselenide using 1 eq DTNP, whereas bis-Sec(Meb) and Sec(Bzl) models required additional manipulation to induce cyclization.

摘要

与固相肽合成中可用的大量半胱氨酸衍生物的侧链保护基相比,文献中类似的硒代半胱氨酸 Se 保护基数量明显较少。然而,对含硒代半胱氨酸的肽和蛋白质的兴趣日益增加,需要相应增加进入这些靶分子的合成途径。因此,设计新的硒代半胱氨酸侧链保护策略以及它们的去除的多种新的脱保护化学变得很重要。在本文中,我们概述了两种新的 Fmoc 硒代半胱氨酸衍生物 [Fmoc-Sec(Meb)和 Fmoc-Sec(Bzl)]的合成,以配合商业上可用的 Fmoc-Sec(Mob)衍生物,并将其纳入两种模型肽中。使用我们小组先前描述的 2,2'-二硫代双(5-硝基吡啶) (DTNP)条件对这些肽进行 Sec 脱保护实验。进一步评估了该脱保护方法在介导氧托肽模板化靶肽中同时形成二硒键的适用性。无论是存在还是不存在硫代茴香醚,Sec(Mob)和 Sec(Meb)都对 DTNP 条件极其不稳定,而 Sec(Bzl)在不存在硫代茴香醚的情况下对 DTNP 稳定,但在存在硫代茴香醚的情况下则不稳定。在多个含 Sec 的模型肽中,已经表明含有双 Sec(Mob)的系统在使用 1 eq DTNP 时会自发环化形成二硒键,而双 Sec(Meb)和 Sec(Bzl)模型需要额外的操作才能诱导环化。

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