Colliec-Jouault Sylvia, Esposito Fabiana, Ledru Hélène, Sinquin Corinne, Marchand Laetitia, Fillaudeau Arnaud, Routier Sylvain, Buron Frédéric, Lopin-Bon Chrystel, Cuenot Stéphane, Bedini Emiliano, Zykwinska Agata
Ifremer, MASAE Microbiologie Aliment Santé Environnement, F-44000Nantes, France.
Department of Chemical Sciences, University of Naples Federico II, Complesso Universitario Monte S.Angelo, via Cintia 4, I-80126Napoli, Italy.
Biomacromolecules. 2023 Jan 9;24(1):462-470. doi: 10.1021/acs.biomac.2c01277. Epub 2022 Dec 23.
Sulfated glycosaminoglycans (GAGs) are fundamental constituents of both the cell surface and extracellular matrix. By playing a key role in cell-cell and cell-matrix interactions, GAGs are involved in many physiological and pathological processes. To design GAG mimetics with similar therapeutic potential as the natural ones, the specific structural features, among them sulfate content, sulfation pattern, and chain length, should be considered. In the present study, we describe a sulfation method based on microwave radiation to obtain highly sulfated derivatives as GAG mimetics. The starting low-molecular-weight (LMW) derivative was prepared from the infernan exopolysaccharide, a highly branched naturally slightly sulfated heteropolysaccharide synthesized by the deep-sea hydrothermal vent bacterium . LMW highly sulfated infernan derivatives obtained by conventional heating sulfation have already been shown to display GAG-mimetic properties. Here, the potential of microwave-assisted sulfation versus that of the conventional method to obtain GAG mimetics was explored. Structural analysis by NMR revealed that highly sulfated derivatives from the two methods shared similar structural features, emphasizing that microwave-assisted sulfation with a 12-fold shorter reaction time is as efficient as the classical one.
硫酸化糖胺聚糖(GAGs)是细胞表面和细胞外基质的基本组成成分。通过在细胞间和细胞与基质相互作用中发挥关键作用,GAGs参与了许多生理和病理过程。为了设计出具有与天然GAGs相似治疗潜力的GAG模拟物,应考虑其特定的结构特征,包括硫酸根含量、硫酸化模式和链长。在本研究中,我们描述了一种基于微波辐射的硫酸化方法,以获得作为GAG模拟物的高度硫酸化衍生物。起始的低分子量(LMW)衍生物由深海热液喷口细菌合成的高度分支的天然轻度硫酸化杂多糖infernan胞外多糖制备而成。通过传统加热硫酸化获得的LMW高度硫酸化infernan衍生物已显示出具有GAG模拟特性。在此,探索了微波辅助硫酸化与传统方法相比在获得GAG模拟物方面的潜力。核磁共振(NMR)结构分析表明,两种方法得到的高度硫酸化衍生物具有相似的结构特征,强调了反应时间缩短12倍的微波辅助硫酸化与传统方法一样有效。