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氨基酸基聚电解质的一锅法合成及纳米粒子的合成。

One-Pot Synthesis of Amino Acid-Based Polyelectrolytes and Nanoparticle Synthesis.

机构信息

Institute of Technical and Macromolecular Chemistry and DWI - Leibniz Institute for Interactive Materials, RWTH Aachen University , Forckenbeckstraße 50, 52056 Aachen, Germany.

出版信息

Biomacromolecules. 2017 Jan 9;18(1):159-168. doi: 10.1021/acs.biomac.6b01420. Epub 2016 Dec 2.

Abstract

In this manuscript, a biscyclic monomer with an epoxide and a thiolactone ring connected by a urethane bond is used for the synthesis of amino acid-functional polyelectrolytes. In a first step, lithium salts of amino acids react selectively with the thiolactone ring by ring-opening, formation of an amide bond, and a thiol group. In a second step and in the presence of a base a polymeric building block is formed by polyaddition of the thiolate to the epoxide ring. The reaction occurs at room temperature in water as solvent. The resulting polymeric building block has a poly(thioether urethane) backbone, with hydroxyl- and amino acid side groups; the connection of the amino acid to the backbone occurs by an amide bond. As proof of concept, a selected series of amino acids and derivatives of such is used: glycine, alanine, tyrosine, glutamic acid, ε-amino caproic acid (as a lysine surrogate), BOC-lysine-O-methyl ester, BOC-lysine, and the dipeptide carnosine. The resulting polymer building blocks with molecular weights of M = 1830-9590 g/mol are entirely based on both bio-based and biodegradable components. Exemplarily, using the lithium salts of glycine and lysine methyl ester, anionic and cationic polyelectrolyte building blocks are obtained. A mixture of the two polyelectrolyte solutions results in the formation of polyelectrolyte complexes (PECs). With decreasing concentration of the polyelectrolyte solutions, the radii of PECs decrease.

摘要

在本文中,使用了一种双环单体,其具有通过氨酯键连接的环氧化物和硫内酯环,用于合成氨基酸官能化聚电解质。在第一步中,氨基酸的锂盐通过开环选择性地与硫内酯环反应,形成酰胺键和巯基。在第二步中,在碱的存在下,通过硫醇盐与环氧化物环的加成聚合形成聚合结构单元。反应在室温下在水中进行作为溶剂。所得聚合结构单元具有聚(硫醚氨酯)主链,带有羟基和氨基酸侧基;氨基酸与主链的连接通过酰胺键发生。作为概念验证,使用了一系列选定的氨基酸及其衍生物:甘氨酸、丙氨酸、酪氨酸、谷氨酸、ε-氨基己酸(作为赖氨酸的替代品)、BOC-赖氨酸-O-甲酯、BOC-赖氨酸和二肽肌肽。所得聚合物结构单元的分子量为 M = 1830-9590 g/mol,完全基于生物基和可生物降解的成分。例如,使用甘氨酸和赖氨酸甲酯的锂盐,得到阴离子和阳离子聚电解质结构单元。两种聚电解质溶液的混合物形成聚电解质复合物(PECs)。随着聚电解质溶液浓度的降低,PECs 的半径减小。

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