Lawrence Roger, Kuberan Balagurunathan, Lech Miroslaw, Beeler David L, Rosenberg Robert D
Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Glycobiology. 2004 May;14(5):467-79. doi: 10.1093/glycob/cwh057. Epub 2004 Mar 19.
Heparan sulfate (HS) interacts with numerous proteins at the cell surface and orchestrates myriad biological events. Unraveling the mechanisms of these events at the molecular level calls for the structural analysis of these negatively charged and highly heterogeneous biopolymers. However, HS is often available only in small quantities, and the task of structural analysis necessitates the use of ultra-sensitive methods, such as mass spectrometry. Sequence heterogeneity within HS chains required us to identify critical functional groups and their spacing to determine structure-function relationships for HS. We carried out structural analysis of HS isolated from wild type, 3-OST-1, 3-OST-3A, or 3-OST-5 sulfotransferase-transduced Chinese hamster ovary cells and also from various tissues. In the context of tissue-specific HS, the data allowed us to map the biosynthetic pathways responsible for the placement of critical groups. As a means of determining the distance between critical groups within a motif, we determined the spacing of the rare GlcNAc-GlcA disaccharide sequence in the completely desulfated re-N-sulfated porcine intestinal heparin. These disaccharides are biosynthetic regulatory markers for 3-OST-1 modification and the partial structure of the antithrombin III binding site. They occur only at the distance of hexasaccharide, octasaccharide, decasaccharide, or dodecasaccharide. Thus this approach allowed us to map both the biosynthetic pathways for generating critical functional groups and their spacing within HS. Our new strategy removes two obstacles to rapid progress in this field of research.
硫酸乙酰肝素(HS)在细胞表面与众多蛋白质相互作用,并协调无数生物事件。在分子水平上揭示这些事件的机制需要对这些带负电荷且高度异质的生物聚合物进行结构分析。然而,HS通常仅少量可得,并且结构分析任务需要使用超灵敏方法,如质谱法。HS链内的序列异质性要求我们识别关键官能团及其间距,以确定HS的结构-功能关系。我们对从野生型、3-OST-1、3-OST-3A或3-OST-5硫酸转移酶转导的中国仓鼠卵巢细胞以及各种组织中分离出的HS进行了结构分析。在组织特异性HS的背景下,这些数据使我们能够描绘负责关键基团定位的生物合成途径。作为确定基序内关键基团之间距离的一种方法,我们确定了完全脱硫再N-硫酸化的猪肠肝素中罕见的GlcNAc-GlcA二糖序列的间距。这些二糖是3-OST-1修饰的生物合成调节标记物和抗凝血酶III结合位点的部分结构。它们仅以六糖、八糖、十糖或十二糖的距离出现。因此,这种方法使我们能够描绘生成关键官能团的生物合成途径及其在HS内的间距。我们的新策略消除了该研究领域快速进展的两个障碍。