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Pentavalent Bismuth-Mediated Glycosylation Methods to Activate Sialic and Uronic Acids and the Incorporation of Sialic Acids Into Insulin

机译:五价铋介导的糖基化方法可活化唾液酸和糖醛酸以及将唾液酸掺入胰岛素

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摘要

The negative charge at physiological pH of carboxylic acid-containing monosaccharides modulate the properties of many natural biomolecules such as oligosaccharides and glycoconjugates. Unfortunately, these altered electronic properties also make the incorporation of such acidic sugars more challenging as compared to the more commonly studied neutral sugars. Herein are reported the first demonstration of glycosylation reactions mediated by triphenylbis(1,1,1-trifluoromethanesulfonato)-bismuth with thioglycosides containing carboxylic acid substituents protected as esters. Unlike with many neutral sugar substrates, the addition of 1-propanethiol to the reactions proved critical to obtaining good yields of the desired glycosylation products using sialic acid, galacturonic acid, and glucuronic acid. The protocol was demonstrated to be amenable to automation using a liquid-handling platform. The consequences of artificially incorporating carboxylic-acid-containing sugars into proteins were tested by the design of a linker containing 1 to 4 sialic acids---a sugar found in many human proteins and brain tissues---that was attached via reductive amination of trityl thiopropylaldehyde at the phenyl alanine terminal end of the protein insulin produced through solid-phase peptide synthesis. Removal of the trityl group with neat trifluoroacetic acid furnished the thiol-free modified insulin that was ligated via a disulfide bond to the peptide scaffold bearing acetyl protected sialic acids. A 14-15% ammonium hydroxide solution was found to be effective in deprotecting the acetyl groups without degradation of the disulfide bond. In addition to maintaining the potency and bioactivity of insulin, the sialic acid-containing linker rendered insulin more resistant to aggregation due to heat and mechanical agitation compared to the unmodified protein.
机译:含羧酸的单糖在生理pH值上的负电荷可调节许多天然生物分子的特性,例如寡糖和糖结合物。不幸的是,与更普遍研究的中性糖相比,这些改变的电子性质也使掺入这种酸性糖更具挑战性。本文报道了由三苯基双(1,1,1-三氟甲烷磺酰氨基)-铋与含有被酯保护的羧酸取代基的硫糖苷介导的糖基化反应的首次证明。与许多中性糖底物不同,向反应中添加1-丙硫醇证明对于使用唾液酸,半乳糖醛酸和葡糖醛酸获得所需糖基化产物的良好收率至关重要。该协议被证明可以使用液体处理平台实现自动化。通过设计含有1-4个唾液酸的连接子(一种在许多人类蛋白质和脑组织中发现的糖)的连接子的设计,测试了将含羧酸的糖人工掺入蛋白质的后果,该连接子通过还原胺化而连接通过固相肽合成产生的蛋白质胰岛素的苯基丙氨酸末端的三苯甲基硫代丙醛。用纯净的三氟乙酸除去三苯甲基,得到了无硫醇的修饰胰岛素,该胰岛素通过二硫键连接到带有乙酰基保护的唾液酸的肽支架上。发现14-15%的氢氧化铵溶液可有效地使乙酰基脱保护而不降解二硫键。除了维持胰岛素的效力和生物活性外,与未修饰的蛋白质相比,含唾液酸的接头由于加热和机械搅动而使胰岛素更耐聚集。

著录项

  • 作者单位

    Indiana University.;

  • 授予单位 Indiana University.;
  • 学科 Organic chemistry.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 351 p.
  • 总页数 351
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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