Saxon Eliana, Luchansky Sarah J, Hang Howard C, Yu Chong, Lee Sandy C, Bertozzi Carolyn R
Center for New Directions in Organic Synthesis, Department of Chemistry, University of California, Berkeley, CA 94720, USA.
J Am Chem Soc. 2002 Dec 18;124(50):14893-902. doi: 10.1021/ja027748x.
The structure of sialic acid on living cells can be modulated by metabolism of unnatural biosynthetic precursors. Here we investigate the conversion of a panel of azide-functionalized mannosamine and glucosamine derivatives into cell-surface sialosides. A key tool in this study is the Staudinger ligation, a highly selective reaction between modified triarylphosphines and azides that produces an amide-linked product. A preliminary study of the mechanism of this reaction, and refined conditions for its in vivo execution, are reported. The reaction provided a means to label the glycoconjugate-bound azidosugars with biochemical probes. Finally, we demonstrate that the cell-surface Staudinger ligation is compatible with hydrazone formation from metabolically introduced ketones. These two strategies provide a means to selectively modify cell-surface glycans with exogenous probes.
活细胞上唾液酸的结构可通过非天然生物合成前体的代谢进行调节。在此,我们研究了一系列叠氮基官能化的甘露糖胺和葡萄糖胺衍生物向细胞表面唾液酸苷的转化。本研究中的一个关键工具是施陶丁格连接反应,这是一种修饰的三芳基膦与叠氮化物之间的高度选择性反应,可产生酰胺连接的产物。本文报道了该反应机制的初步研究及其体内执行的优化条件。该反应提供了一种用生化探针标记糖缀合物结合的叠氮糖的方法。最后,我们证明细胞表面施陶丁格连接反应与代谢引入的酮形成腙的反应兼容。这两种策略提供了一种用外源探针选择性修饰细胞表面聚糖的方法。