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本文引用的文献

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One-Pot/Sequential Native Chemical Ligation Using Photocaged Crypto-thioester.使用光笼化隐硫酯的一锅法/连续自然化学连接
Org Lett. 2016 Feb 5;18(3):596-9. doi: 10.1021/acs.orglett.5b03661. Epub 2016 Jan 12.
2
A facile one pot route for the synthesis of imide tethered peptidomimetics.一种简便的一锅法合成酰亚胺键连接的肽模拟物的方法。
Org Biomol Chem. 2016 Jan 14;14(2):556-563. doi: 10.1039/c5ob01708d.
3
Rapid additive-free selenocystine-selenoester peptide ligation.快速无添加剂硒代半胱氨酸-硒代酯肽连接。
J Am Chem Soc. 2015 Nov 11;137(44):14011-4. doi: 10.1021/jacs.5b07237. Epub 2015 Nov 3.
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Synthesis of cysteine-rich peptides by native chemical ligation without use of exogenous thiols.不使用外源硫醇通过天然化学连接法合成富含半胱氨酸的肽。
Org Lett. 2015 Apr 3;17(7):1806-9. doi: 10.1021/acs.orglett.5b00624. Epub 2015 Mar 19.
5
A novel post-ligation thioesterification device enables peptide ligation in the N to C direction: synthetic study of human glycodelin.一种新型的连接后硫酯化学方法可实现从 N 到 C 方向的肽键连接:人糖化蛋白的合成研究。
J Pept Sci. 2014 Jan;20(1):55-61. doi: 10.1002/psc.2592. Epub 2013 Dec 12.
6
Investigation of peptide thioester formation via N→Se acyl transfer.通过 N→Se 酰基转移研究肽硫酯的形成。
J Pept Sci. 2013 Feb;19(2):65-73. doi: 10.1002/psc.2469. Epub 2013 Jan 7.
7
Sequential native peptide ligation strategies for total chemical protein synthesis.用于全化学蛋白质合成的连续天然肽连接策略。
Chem Soc Rev. 2012 Nov 7;41(21):7001-15. doi: 10.1039/c2cs35147a.
8
2,2'-Dithiobis(5-nitropyridine) (DTNP) as an effective and gentle deprotectant for common cysteine protecting groups.2,2'-二硫代双(5-硝基吡啶)(DTNP)作为一种有效且温和的脱保护试剂,可用于常见的半胱氨酸保护基团。
J Pept Sci. 2012 Jan;18(1):1-9. doi: 10.1002/psc.1403. Epub 2011 Nov 14.
9
Ascorbate as an alternative to thiol additives in native chemical ligation.抗坏血酸盐作为天然化学连接中硫醇添加剂的替代物。
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10
Selenol protecting groups in organic chemistry: special emphasis on selenocysteine Se-protection in solid phase peptide synthesis.有机化学中的硒醇保护基:固相肽合成中硒代半胱氨酸 Se 保护的特别关注。
Molecules. 2011 Apr 18;16(4):3232-51. doi: 10.3390/molecules16043232.

通过抗坏血酸分解法从硒代半胱氨酸和半胱氨酸上去除5-硝基-2-吡啶基亚磺酰基保护基团。

Removal of the 5-nitro-2-pyridine-sulfenyl protecting group from selenocysteine and cysteine by ascorbolysis.

作者信息

Ste Marie Emma J, Ruggles Erik L, Hondal Robert J

机构信息

Department of Chemistry, Cook Physical Sciences Bldg, University of Vermont, 82 University Place, Burlington, VT, 05405, USA.

Department of Biochemistry, University of Vermont, 89 Beaumont Ave., Given Laboratory, Room B413, Burlington, VT, 05405, USA.

出版信息

J Pept Sci. 2016 Sep;22(9):571-6. doi: 10.1002/psc.2908. Epub 2016 Aug 2.

DOI:10.1002/psc.2908
PMID:27480992
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5098394/
Abstract

We previously reported on a method for the facile removal of 4-methoxybenzyl and acetamidomethyl protecting groups from cysteine (Cys) and selenocysteine (Sec) using 2,2'-dithiobis-5-nitropyridine dissolved in trifluoroacetic acid, with or without thioanisole. The use of this reaction mixture removes the protecting group and replaces it with a 2-thio(5-nitropyridyl) (5-Npys) group. This results in either a mixed selenosulfide bond or disulfide bond (depending on the use of Sec or Cys), which can subsequently be reduced by thiolysis. A major disadvantage of thiolysis is that excess thiol must be used to drive the reaction to completion and then removed before using the Cys-containing or Sec-containing peptide in further applications. Here, we report a further advancement of this method as we have found that ascorbate at pH 4.5 and 25 °C will reduce the selenosulfide to the selenol. Ascorbolysis of the mixed disulfide between Cys and 5-Npys is much less efficient but can be accomplished at higher concentrations of ascorbate at pH 7 and 37 °C with extended reaction times. We envision that our improved method will allow for in situ reactions with alkylating agents and electrophiles without the need for further purification, as well as a number of other applications. Copyright © 2016 European Peptide Society and John Wiley & Sons, Ltd.

摘要

我们之前报道了一种简便的方法,可使用溶解于三氟乙酸中的2,2'-二硫代双-5-硝基吡啶(无论有无苯甲硫醚)从半胱氨酸(Cys)和硒代半胱氨酸(Sec)上去除4-甲氧基苄基和乙酰氨基甲基保护基团。使用这种反应混合物可去除保护基团,并用2-硫代(5-硝基吡啶基)(5-Npys)基团取代。这会形成混合的硒硫键或二硫键(取决于使用的是Sec还是Cys),随后可通过硫解作用将其还原。硫解的一个主要缺点是必须使用过量的硫醇来推动反应完成,然后在进一步应用含Cys或含Sec的肽之前将其除去。在此,我们报道了该方法的进一步改进,因为我们发现,在pH 4.5和25°C条件下,抗坏血酸盐可将硒硫键还原为硒醇。Cys与5-Npys之间混合二硫键的抗坏血酸解效率要低得多,但在pH 7和37°C条件下,使用更高浓度的抗坏血酸盐并延长反应时间也可实现。我们设想,我们改进后的方法将允许与烷基化剂和亲电试剂进行原位反应,而无需进一步纯化,以及用于许多其他应用。版权所有© 2016欧洲肽协会和约翰·威利父子有限公司。