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用于亚磷酰胺化学的最佳原子转移自由基聚合制备的可溶性聚合物载体

Optimal ATRP-Made Soluble Polymer Supports for Phosphoramidite Chemistry.

作者信息

Oswald Laurence, Al Ouahabi Abdelaziz, Charles Laurence, Lutz Jean-François

机构信息

Precision Macromolecular Chemistry, Institut Charles Sadron, UPR-22 CNRS, 23 rue du Loess, 67034, Strasbourg, France.

Institute of Radical Chemistry, UMR 7273, Aix-Marseille Université, 23 avenue Escadrille Normandie-Niemen, 13397, Marseille, France.

出版信息

Chemistry. 2016 Mar 1;22(10):3462-3469. doi: 10.1002/chem.201504619. Epub 2016 Feb 2.

DOI:10.1002/chem.201504619
PMID:26833742
Abstract

Soluble polystyrene supports with optimal molecular structures for iterative phosphoramidite chemistry were prepared by atom-transfer radical polymerization (ATRP) and subsequent chain-end modification steps. The controlled radical polymerization of styrene was first performed in the presence of an 9-fluorenylmethoxycarbonyl (Fmoc)-protected amino-functional ATRP initiator. Soluble supports of different molecular weight were prepared. Size-exclusion chromatography and NMR analysis indicated formation of well-defined polymers with controlled chain lengths and narrow dispersity. After synthesis, the bromo ω end group of the ATRP polymer was removed by dehalogenation in the presence of tributyltin hydride, and the Fmoc protecting group of the α moiety was subsequently cleaved with piperidine. The resulting α-primary amine was afterwards treated with a linker containing a carboxyl group, a cleavable ester site, and a dimethoxytrityl-protected hydroxyl group to afford ideal soluble supports for phosphoramidite chemistry. NMR analysis indicated that these chain-end modifications were quantitative. The supports were tested for the synthesis of a non-natural sequence-defined oligophosphates. High-resolution ESI-MS analysis of the cleaved oligomers indicated formation of uniform species, and thus confirmed the efficiency of the ATRP-made soluble polymer supports. In addition, the synthesis of a thymidine-loaded soluble support was achieved.

摘要

通过原子转移自由基聚合(ATRP)和后续的链端修饰步骤,制备了具有用于迭代亚磷酰胺化学的最佳分子结构的可溶性聚苯乙烯载体。首先在9-芴甲氧羰基(Fmoc)保护的氨基官能化ATRP引发剂存在下进行苯乙烯的可控自由基聚合。制备了不同分子量的可溶性载体。尺寸排阻色谱和NMR分析表明形成了具有可控链长和窄分散度的明确聚合物。合成后,在三丁基氢化锡存在下通过脱卤去除ATRP聚合物的溴代ω端基,随后用哌啶裂解α部分的Fmoc保护基。然后将所得的α-伯胺用含有羧基、可裂解酯位点和二甲氧基三苯甲基保护的羟基的连接子处理,以提供用于亚磷酰胺化学的理想可溶性载体。NMR分析表明这些链端修饰是定量的。测试了这些载体用于合成非天然序列定义的寡磷酸盐。对裂解的寡聚物的高分辨率ESI-MS分析表明形成了均匀的物种,从而证实了由ATRP制备的可溶性聚合物载体的效率。此外,还实现了负载胸苷的可溶性载体的合成。

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