Department of Chemical Biology and Drug Discovery, Utrecht Institute for Pharmaceutical Sciences, and Bijvoet Center for Biomolecular Research, Utrecht University , Universiteitsweg 99, 3584 CG Utrecht, The Netherlands.
J Am Chem Soc. 2016 Oct 5;138(39):13059-13067. doi: 10.1021/jacs.6b08161. Epub 2016 Sep 27.
An integrated methodology is described to establish ligand requirements for heparan sulfate (HS) binding proteins based on a workflow in which HS octasaccharides are produced by partial enzymatic degradation of natural HS followed by size exclusion purification, affinity enrichment using an immobilized HS-binding protein of interest, putative structure determination of isolated compounds by a hydrophilic interaction chromatography-high-resolution mass spectrometry platform, and chemical synthesis of well-defined HS oligosaccharides for structure-activity relationship studies. The methodology was used to establish the ligand requirements of human Roundabout receptor 1 (Robo1), which is involved in a number of developmental processes. Mass spectrometric analysis of the starting octasaccharide mixture and the Robo1-bound fraction indicated that Robo1 has a preference for a specific set of structures. Further analysis was performed by sequential permethylation, desulfation, and pertrideuteroacetylation followed by online separation and structural analysis by MS/MS. Sequences of tetrasaccharides could be deduced from the data, and by combining the compositional and sequence data, a putative octasaccharide ligand could be proposed (GlA-GlcNS6S-IdoA-GlcNS-IdoA2S-GlcNS6S-IdoA-GlcNAc6S). A modular synthetic approach was employed to prepare the target compound, and binding studies by surface plasmon resonance (SPR) confirmed it to be a high affinity ligand for Robo1. Further studies with a number of tetrasaccharides confirmed that sulfate esters at C-6 are critical for binding, whereas such functionalities at C-2 substantially reduce binding. High affinity ligands were able to reverse a reduction in endothelial cell migration induced by Slit2-Robo1 signaling.
描述了一种综合方法,用于根据工作流程建立肝素硫酸(HS)结合蛋白的配体要求,该流程中通过部分酶解天然 HS 产生 HS 八糖,然后通过大小排阻纯化、使用感兴趣的固定化 HS 结合蛋白进行亲和富集、通过亲水相互作用色谱-高分辨率质谱平台对分离化合物进行假定结构测定,以及对具有明确 HS 寡糖的化学合成用于结构-活性关系研究。该方法用于建立人类回避受体 1(Robo1)的配体要求,Robo1 参与许多发育过程。起始八糖混合物和 Robo1 结合部分的质谱分析表明,Robo1 对特定结构具有偏好。通过顺序甲基化、脱硫酸和全三氘乙酰化,然后在线分离和通过 MS/MS 进行结构分析进行进一步分析。可以从数据中推断出四糖序列,并通过结合组成和序列数据,可以提出一个假设的八糖配体(GlA-GlcNS6S-IdoA-GlcNS-IdoA2S-GlcNS6S-IdoA-GlcNAc6S)。采用模块化合成方法制备目标化合物,并通过表面等离子体共振(SPR)结合研究证实其为 Robo1 的高亲和力配体。进一步对一系列四糖的研究证实,C-6 上的硫酸酯对结合至关重要,而 C-2 上的此类功能基会大大降低结合。高亲和力配体能够逆转 Slit2-Robo1 信号诱导的内皮细胞迁移减少。