首页> 外文期刊>Macromolecules >Dual Location, Dual Acidic pH/Reduction-Responsive Degradable Block Copolymer: Synthesis and Investigation of Ketal Linkage Instability under ATRP Conditions
【24h】

Dual Location, Dual Acidic pH/Reduction-Responsive Degradable Block Copolymer: Synthesis and Investigation of Ketal Linkage Instability under ATRP Conditions

机译:双酸性pH /还原可降解可降解嵌段共聚物:在ATRP条件下合成和调查缩酮旋转不稳定

获取原文
获取原文并翻译 | 示例
           

摘要

Stimuli-responsive degradation (SRD) undergoing chemical transition through the cleavage of labile linkages has been proved to dramatically increase the versatility of stimuli-responsive block copolymers. In particular, dual or multiple stimuli responsive degradable block copolymers that can be triggered by two endogenous stimuli of acidic pH and reduction are in high demand. Here, a new strategy utilizing atom transfer radical polymerization (ATRP) is reported to synthesize a dual acidic pH/reduction-responsive degradable block copolymer (DLDSRD) labeled with an acidic pH-labile ketal linkage at the block junction and pendant reductively cleavable disulfide groups in hydrophobic block at dual locations. A robust route With multiple steps utilizing carbamate chemistry to endow stability during protection/deprotection steps enables the synthesis of a novel poly(ethylene glycol)-based ATRP macroinitiator labeled with a ketal linkage (PEG-ketal-Br macroinitiator). Conducting ATRP allows for the synthesis of a series of DLDSRD diblock copolymers consisting of a hydrophilic poly(ethylene glycol) block covalently conjugated through a ketal linkage with a hydrophobic polymethacrylate block having multiple disulfide pendants. Analysis shows an unexpectedly high degree of polymerization of the hydrophobic polymethacrylate block that could be attributed to the instability of ketal linkages under ATRP conditions. The preliminary results from aqueous micellization and dual acidic pH/reduction-responsive cleavage of ketal and disulfide linkages suggest the feasibility of DLDSRD-based nanoassemblies toward effective drug delivery exhibiting precisely controlled release in response to dual stimuli at dual locations (core and interfaces).
机译:已经证明,经过不稳定键的切割进行化学过渡的刺激性降解(SRD)显着增加了刺激响应嵌段共聚物的多功能性。特别地,可以通过两个内源性酸性pH刺激和减少的两个内源刺激引发的双或多种刺激响应性可降解嵌段共聚物。这里,据报道,利用原子转移自由基聚合(ATRP)的新策略合成用嵌段结和侧链结垢可切割的二硫键标记的双酸性pH /还原响应可降解嵌段共聚物(DLDSRD)标记为酸性pH-不稳定的缩酮键在双位置的疏水块中。具有利用氨基甲酸酯化学的多个步骤的鲁棒路线在保护/脱保护步骤期间赋予稳定性,使得合成具有缩酮键(PEG-Ketal-Br大型引发剂)标记的基于丙二酸的ATRP大型内引发剂。进行ATRP允许合成一系列的DLDSRD二嵌段共聚物,该系列DLDSRD二嵌段共聚物组成,该系列通过与具有多种二硫键的疏水性聚甲基丙烯酸酯嵌段共价缀合的亲水性聚(乙二醇)嵌段组成。分析表明,疏水性聚甲基丙烯酸酯嵌段的意外高度聚合,其可归因于ATRP条件下的缩酮键的不稳定性。氯化物和二硫化物键的水性纤维化水溶液和双酸性pH /还原响应性切割的初步结果表明DLDSRD基纳米组织朝向有效药物递送的可行性,其响应于双位置(核心和界面)的双重刺激而表现出精确控制的释放。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号