Department of Chemistry, Boston University, Boston, Massachusetts 02215, USA.
J Am Chem Soc. 2012 Oct 3;134(39):16255-64. doi: 10.1021/ja305900r. Epub 2012 Sep 21.
Enantiopure poly-amido-saccharides (PASs) with a defined molecular weight and narrow dispersity are synthesized using an anionic ring-opening polymerization of a β-lactam sugar monomer. The PASs have a previously unreported main chain structure that is composed of pyranose rings linked through the 1- and 2-positions by an amide with α-stereochemistry. The monomer is synthesized in one-step from benzyl-protected D-glucal and polymerized using mild reaction conditions to give degrees of polymerization ranging from 25 to >120 in high yield. Computational modeling reveals how the monomer's structure and steric bulk affect the thermodynamics and kinetics of polymerization. Protected and deprotected polymers and model compounds are characterized using a variety of methods (NMR, GPC, IR, DLS, etc.). On the basis of circular dichroism, the deprotected polymer possesses a regular secondary structure in aqueous solution, which agrees favorably with the prediction of a helical structure using molecular modeling. Furthermore, we provide evidence suggesting that the polymers bind the lectin concanavalin A at the same site as natural carbohydrates, showing the potential of these polymers to mimic natural polysaccharides. PASs offer the advantages associated with synthetic polymers, such as greater control over structure and derivitization. At the same time, they preserve many of the structural features of natural polysaccharides, such as a stereochemically regular, rigid pyranose backbone, that make natural carbohydrate polymers important materials both for their unique properties and useful applications.
使用β-内酰胺糖单体的阴离子开环聚合反应合成具有确定分子量和较窄分散度的对映纯聚酰胺多糖 (PAS)。PAS 具有以前未报道过的主链结构,该结构由吡喃糖环通过酰胺连接在 1-和 2-位置组成,具有 α-立体化学。单体通过一步法从苄基保护的 D-葡萄糖醛酸合成,并在温和的反应条件下聚合,得到聚合度从 25 到 >120 的高分子量,产率高。计算模型揭示了单体的结构和空间位阻如何影响聚合的热力学和动力学。使用各种方法(NMR、GPC、IR、DLS 等)对保护和脱保护的聚合物和模型化合物进行了表征。基于圆二色性,脱保护的聚合物在水溶液中具有规则的二级结构,这与使用分子建模预测的螺旋结构非常吻合。此外,我们提供的证据表明,这些聚合物在与天然碳水化合物相同的位点结合凝集素伴刀豆球蛋白 A,表明这些聚合物具有模拟天然多糖的潜力。PAS 提供了与合成聚合物相关的优点,例如对结构和衍生化的更好控制。同时,它们保留了天然多糖的许多结构特征,例如立体化学规则、刚性的吡喃糖主链,这些特征使天然碳水化合物聚合物成为具有独特性质和有用应用的重要材料。