†Department of Chemical Sciences, University of Naples Federico II, Complesso Universitario Monte S.Angelo, via Cintia 4, I-80126 Napoli, Italy.
‡Department of Soil, Plant, Environmental, and Animal Production Sciences, University of Naples Federico II, via Università 100, I-80055 Portici, Italy.
Biomacromolecules. 2015 Jul 13;16(7):2237-45. doi: 10.1021/acs.biomac.5b00640. Epub 2015 Jul 2.
Chemical O-glycosylation of polysaccharides is an almost unexplored reaction. This is mainly due to the difficulties in derivatizing such complex biomacromolecules in a quantitative manner and with a fine control of the obtained structural parameters. In this work, chondroitin raw material from a microbial source was chemo- and regioselectively protected to give two polysaccharide intermediates, that acted in turn as glycosyl acceptors in fucosylation reactions. Further manipulations on the fucosylated polysaccharides, including multiple de-O-benzylation and sulfation, furnished for the first time nonanimal sourced fucosylated chondroitin sulfates (fCSs)-polysaccharides obtained so far exclusively from sea cucumbers (Echinoidea, Holothuroidea) and showing several very interesting biological activities. A semisynthetic fCS was characterized from a structural point of view by means of 2D-NMR techniques, and preliminarily assayed in an anticoagulant test.
多糖的化学 O-糖基化反应几乎尚未被探索。这主要是由于在定量和精细控制获得的结构参数方面,对如此复杂的生物大分子进行衍生化具有一定的难度。在这项工作中,从微生物来源的软骨素原料被选择性地进行化学和区域保护,得到两种多糖中间体,它们依次作为糖基化受体参与岩藻糖基化反应。对岩藻糖基化多糖进行进一步的操作,包括多次脱苄基和硫酸化,首次提供了非动物来源的岩藻糖基化硫酸软骨素(fCS)-多糖,这些多糖迄今为止仅从海参(棘皮动物,海参纲)中获得,并显示出多种非常有趣的生物活性。通过二维 NMR 技术,从结构角度对一种半合成的 fCS 进行了表征,并初步在抗凝试验中进行了检测。