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Improved De Novo Sequencing of Heparin/Heparan Sulfate Oligosaccharides by Propionylation of Sites of Sulfation

机译:肝素/乙酰肝素硫酸盐寡糖的磺酰化改进了从头测序

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摘要

The structure of heparin and heparan sulfate (Hep/HS) oligosaccharides, as determined by the length and the pattern of sulfation, acetylation, and uronic acid epimerization, dictates their biological function through modulating interactions with protein targets. But fine structural determination is a very challenging task due to the lability of the sulfate modifications and difficulties in separating isomeric HS chains. Previously, we reported a strategy for chemical derivatization involving permethylation, desulfation, and trideuteroperacetylation, combined with standard reverse phase LC-MS/MS that enables the structural sequencing for heparin/HS oligosaccharides of sizes up to dodecasaccharide by positionally replacing all sulfates with more stable trideuteroacetyl groups, allowing for robust MS/MS sequencing. However, isomeric oligosaccharides that contain both N-sulfation and N-acetylation become isotopomers after labeling, differing only in the sites of deuteration. This prevents chromatographic separation of these different mixed domain sequences post-derivatization, and makes sequencing by MS/MS difficult due to co-fragmentation of the isotopomers leading to chimeric product ion spectra. In order to improve chromatographic separation of mixed domain oligosaccharides, we have introduced a propionylation step in place of trideuteroacetylation for labeling of sites of sulfation. HS standard disaccharides have been used to evaluate the efficiency of this improved chemical derivatization. The results show that we can quantitatively replace sulfation with propionyl groups with the same high efficiency as the previously reported trideuteroacetylation. After derivatization, we demonstrate the ability to chromatographically separate two mixed domain tetrasaccharide isomers differing solely by the order of N-sulfation and N-acetylation, allowing for full sequencing of each by MS/MS. These results represent a marked improvement in the ability of our previously reported derivatization strategy to analyze complex mixtures of Hep/HS oligosaccharides without a decrease in sensitivity.
机译:肝素和硫酸乙酰肝素(Hep / HS)寡糖的结构由硫酸化,乙酰化和糖醛酸差向异构作用的长度和模式决定,通过调节与蛋白质靶标的相互作用来决定其生物学功能。但是,由于硫酸盐修饰的不稳定性以及分离异构HS链的困难,精细的结构确定是一项非常具有挑战性的任务。以前,我们报道了一种化学衍生化策略,包括全甲基化,脱硫和三氘过乙酰化,与标准反相LC-MS / MS结合使用,通过以更稳定的位置取代所有硫酸盐,可对大小高达十二碳的肝素/ HS寡糖进行结构测序三氘乙酰基,可实现可靠的MS / MS测序。但是,同时包含N-硫酸化和N-乙酰化的异构寡糖在标记后变为同位异构体,仅在氘代位点不同。这防止了衍生化后这些不同的混合域序列的色谱分离,并且由于异位异构体的共片段化导致嵌合产物离子光谱,使得通过MS / MS进行测序变得困难。为了改善混合域寡糖的色谱分离,我们引入了丙酰化步骤来代替三氘乙酰化,以标记硫酸化位点。 HS标准二糖已用于评估这种改进的化学衍生作用的效率。结果表明,我们可以用丙酰基定量取代硫酸盐,其效率与先前报道的三氘代乙酰化相同。衍生化后,我们展示了色谱分离两个混合域四糖异构体的能力,这些异构体仅因N-硫酸化和N-乙酰化的顺序而不同,从而可以通过MS / MS对其进行完全测序。这些结果代表了我们先前报道的衍生化策略分析Hep / HS寡糖的复杂混合物而不降低灵敏度的能力的显着提高。

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