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Synthesis and Study of a Persistent Selenenic Acid & Preliminary Studies of Thiol Oxidation.

机译:持久性硒酸的合成与研究及硫醇氧化的初步研究。

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摘要

Selenenic acids and other organoselenium compounds are important both in organic and biochemistry. In organic chemistry, syn-elemination of selenoxides is used to prepare alkenes, giving a selenenic acid by-product. In biochemistry, selenocysteine is catalytically active in a variety of selenoenzymes, which have antioxidant properties, and is oxidized to a selenenic acid intermediate. For example, glutathione peroxidase (GPx) plays a role in fighting oxidative damage by catalyzing the reduction of hydroperoxides.;The oxidation of thiols is important in cell signalling, leading to the disulfide bonds implicated in post-translational modification, among other biological roles. While this reaction is presumed to occur through the reaction of thiol with an oxidant that forms sulfenic acid, and from a subsequent reaction of sulfenic acid with another thiol, sulfenic acids are so reactive that they are not usually seen as intermediates. Given the stability of the 9-triptycenesulfenic acid previously synthesized, preliminary kinetic study of the oxidation of 9-triptycenethiol to its corresponding sulfenic acid is made possible.;Previous studies have shown that the lighter chalcogen analogue of selenenic acid, sulfenic acid, is a powerful antioxidant and that the known antioxidant activity of garlic is attributable to the 2-propenesulfenic acid derived from the compound allicin. This has prompted questions concerning the role of selenenic acid in the antioxidant activity of organoselenium compounds. In order to study the physiochemical properties of selenenic acids --a functional group about which little is known---and to evaluate their potential as antioxidants, a persistent selenenic acid is needed. Herein, the model compound, 9-triptyceneselenenic acid, is prepared by a previously reported procedure and a new pathway is designed, such that its properties and reactivity can be studied.
机译:亚硒酸和其他有机硒化合物在有机化学和生物化学中均很重要。在有机化学中,亚硒酸盐的同步消除反应用于制备烯烃,从而得到硒酸副产物。在生物化学中,硒代半胱氨酸在多种硒代酶中具有催化活性,这些硒代酶具有抗氧化特性,并被氧化为硒酸中间体。例如,谷胱甘肽过氧化物酶(GPx)通过催化氢过氧化物的还原来对抗氧化损伤。;巯基的氧化在细胞信号传导中很重要,导致翻译后修饰涉及的二硫键以及其他生物学作用。虽然该反应被认为是通过硫醇与形成亚磺酸的氧化剂的反应发生的,并且随后由亚磺酸与另一种硫醇的反应发生的,但亚磺酸是如此的活泼,以至于它们通常不被视为中间体。鉴于先前合成的9-三萜烯磺酸的稳定性,使9-三萜烯硫醇氧化为相应的亚磺酸的初步动力学研究成为可能。;先前的研究表明,硒酸亚硒酸的轻硫属类似物是一种强大的抗氧化剂,大蒜的已知抗氧化活性可归因于来自化合物大蒜素的2-丙烯亚磺酸。这引起了关于硒酸在有机硒化合物的抗氧化活性中的作用的疑问。为了研究硒酸的理化性质-对其了解甚少的官能团-并评估其作为抗氧化剂的潜力,需要持久性硒酸。在此,通过先前报道的方法制备了模型化合物9-三烯萜烯酸,并设计了新的途径,从而可以研究其性质和反应性。

著录项

  • 作者

    Presseau, Nathalie.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Chemistry General.
  • 学位 M.Sc.
  • 年度 2014
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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