From the Department of Structural and Molecular Biology, Division of Biosciences, University College London, London WC1E 6BT, United Kingdom and.
J Biol Chem. 2013 Sep 27;288(39):27737-51. doi: 10.1074/jbc.M113.492223. Epub 2013 Aug 6.
The highly sulfated polysaccharides heparin and heparan sulfate (HS) play key roles in the regulation of physiological and pathophysiological processes. Despite its importance, no molecular structures of free HS have been reported up to now. By combining analytical ultracentrifugation, small angle x-ray scattering, and constrained scattering modeling recently used for heparin, we have analyzed the solution structures for eight purified HS fragments dp6-dp24 corresponding to the predominantly unsulfated GlcA-GlcNAc domains of heparan sulfate. Unlike heparin, the sedimentation coefficient s20,w of HS dp6-dp24 showed a small rotor speed dependence, where similar s20,w values of 0.82-1.26 S (absorbance optics) and 1.05-1.34 S (interference optics) were determined. The corresponding x-ray scattering measurements of HS dp6-dp24 gave radii of gyration RG values from 1.03 to 2.82 nm, cross-sectional radii of gyration RXS values from 0.31 to 0.65 nm, and maximum lengths L from 3.0 to 10.0 nm. These data showed that HS has a longer and more bent structure than heparin. Constrained scattering modeling starting from 5,000 to 12,000 conformationally randomized HS structures gave best fit dp6-dp24 molecular structures that were longer and more bent than their equivalents in heparin. Alternative fits were obtained for HS dp18 and dp24, indicating their higher bending and flexibility. We conclude that HS displays bent conformations that are significantly distinct from that for heparin. The difference is attributed to the different predominant monosaccharide sequence and reduced sulfation of HS, indicating that HS may interact differently with proteins compared with heparin.
高度硫酸化的多糖肝素和硫酸乙酰肝素 (HS) 在调节生理和病理生理过程中起着关键作用。尽管其重要性不言而喻,但迄今为止尚未报道过游离 HS 的分子结构。通过结合最近用于肝素的分析超速离心、小角 X 射线散射和约束散射建模,我们分析了八个纯化的 HS 片段 dp6-dp24 的溶液结构,这些片段对应于硫酸乙酰肝素的主要非硫酸化 GlcA-GlcNAc 结构域。与肝素不同,HS dp6-dp24 的沉降系数 s20,w 表现出较小的转子转速依赖性,在相同的转子转速下,用吸光度光学法和干涉光学法分别确定了 0.82-1.26 S 和 1.05-1.34 S 的 s20,w 值。HS dp6-dp24 的相应 X 射线散射测量给出了从 1.03 到 2.82 nm 的回转半径 RG 值、从 0.31 到 0.65 nm 的回转半径 RX 值和从 3.0 到 10.0 nm 的最大长度 L。这些数据表明,HS 具有比肝素更长、更弯曲的结构。从 5000 到 12000 个构象随机化的 HS 结构开始的约束散射建模给出了与肝素中相应结构相比更长、更弯曲的 dp6-dp24 分子结构的最佳拟合。对于 HS dp18 和 dp24 ,还获得了替代拟合,表明它们具有更高的弯曲度和灵活性。我们得出结论,HS 呈现出明显不同于肝素的弯曲构象。这种差异归因于 HS 中不同的主要单糖序列和降低的硫酸化程度,表明与肝素相比,HS 可能与蛋白质的相互作用方式不同。