扩展糖辅助糖联结:发展,范围和应用
Richard J Payne1, Simon Ficht, Sishi Tang
1Departments of Chemistry and Molecular Biology, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, CA 92037, USA.
Journal of the American Chemical Society
|October 16, 2007
概括
扩展糖辅助结合 (SAL) 克服了糖合成的局限性,在95%的O结合糖化位上实现了高效的结合. 这一进步显著扩大了创建复杂糖蛋白质的范围.
科学领域:
- 生物化学 生物化学
- 有机化学 有机化学
- 葡萄糖科学 (Glycoscience) 是一种科学.
背景情况:
- 糖辅助结合 (SAL) 是一种合成糖的新方法.
- 很大一部分 (53%) 的O-糖化位与标准SAL不相容.
- 这种限制阻碍了各种天然存在的糖的合成.
研究的目的:
- 开发一种扩展的SAL方法,以克服原始SAL技术的局限性.
- 扩大SAL的适用性,用于合成更广泛的糖.
- 为了提高糖合成的效率和范围.
主要方法:
- 对糖蛋白数据库进行选,以确定SAL的限制.
- 开发和应用扩展的SAL方法与N端氨基酸扩展.
- 动力分析和分子动力学模拟 (AMBER9) 了解反应机制.
- 测试扩展SAL对各种氨基酸组合的耐受性.
主要成果:
- 扩展的SAL促进与基的结合反应,产生产品在良好的产量.
- 糖延伸减缓了结合率,由反应部位之间的距离增加而合理化.
- 扩展的SAL方法在结合连接处显示出广泛的氨基酸耐受性.
- 改进的方法允许利用95%的O-链接糖化位点.
结论:
- 扩展SAL显著扩大了SAL用于合成各种糖和糖蛋白的实用性.
- 该方法对于生产天然存在的葡萄糖具有价值,包括在癌症相关的葡萄糖蛋白中发现的葡萄糖,如MUC1.
- 这一进步为糖和糖蛋白合成提供了一个强大的工具.
更多相关视频
15:33Microwave-assisted Functionalization of Poly(ethylene glycol) and On-resin Peptides for Use in Chain Polymerizations and Hydrogel Formation
Published on: October 29, 2013
11:09Constructing Thioether/Vinyl Sulfide-tethered Helical Peptides Via Photo-induced Thiol-ene/yne Hydrothiolation
Published on: August 1, 2018
相关概念视频
Inhibitors of Gram-positive Cell Wall Synthesis
Bacterial cell walls are typically rigid structures composed mainly of peptidoglycan, a mesh-like polymer that provides mechanical strength and maintains cell shape. The synthesis of peptidoglycan is a crucial process in bacterial growth and serves as a primary target for many antibiotics.Mechanism of Action of Beta-Lactam AntibioticsBeta-lactam antibiotics, such as penicillin, inhibit peptidoglycan synthesis in actively growing cells. These antibiotics share a characteristic four-membered...
Peptidoglycan Synthesis
Structure of PeptidoglycanPeptidoglycan is a vital structural component of the bacterial cell wall, providing mechanical strength and shape to the cell. It consists of repeating units of two sugars—N-acetylglucosamine (NAG) and N-acetylmuramic acid (NAM)—linked by β-1,4 glycosidic bonds. These sugar chains are cross-linked by short peptide chains, forming a mesh-like polymer that surrounds the bacterial plasma membrane.Cytoplasmic Phase – Precursor SynthesisPeptidoglycan biosynthesis begins in...
Protein Glycosylation
Glycosylation, the most common post-translational modification for proteins, serves diverse functions. Adding sugars to proteins makes the proteins more resistant to proteolytic digestion. Glycosylated proteins can act as markers and receptors to promote cell-cell adhesion. Additionally, they have many essential quality control functions in the cell, such as correct protein folding and facilitating transport of misfolded proteins to the cytosol, which can be degraded.
Glycosylation occurs in...
Glycosylation occurs in...
Oligosaccharide Assembly
Protein glycosylation starts in the ER lumen and continues in the Golgi apparatus. Glycosyltransferases catalyze the addition of sugar molecules or glycosylation of proteins. Usually, these enzymes add sugars to the hydroxyl groups of selected serine or threonine residues to form O-linked glycans or the amino groups of asparagine residues to form N-linked glycans. Different positions on the same polypeptide chain can contain differently linked glycans.
Multiple sugar molecules that may or may...
Multiple sugar molecules that may or may...
Proteoglycans
Glycans, a class of complex heterogeneous molecules, can be covalently attached to proteins to form glycosylated proteins that regulate various physiological and pathological processes. Glycosylated proteins or glycoproteins comprise N-linked and O-linked oligosaccharides. O-glycosylation is the most common type of protein glycosylation. Here, glycans attach to the oxygen atom of the hydroxyl groups of Serine or Threonine residues. O-linked glycosylation occurs later in protein processing,...
