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Chemical amplification accelerates reactive oxygen species triggered polymeric degradation

机译:化学扩增加速反应性氧物种触发的聚合物降解

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摘要

Chemical amplification is a known strategy for improving the sensitivity of stimuli-responsive polymers. However, the chemical amplification effect has never been fully examined. Many questions remain about its mechanism and efficacy, obstructing its further implementation. Here, we design and demonstrate a reactive oxygen species (ROS) responsive polymer (ROS-ARP) with a chemical amplification strategy to dismiss these concerns. The ROS-ARP is designed to change the hydrophilicity by ROS, revealing a carboxylic acid, which also catalyzes ketal hydrolysis along the polymer backbone. The chemical amplification strategy of ROS-ARP accelerated the polymer degradation up to 17 fold compared to a previously reported ROS-responsive polymer. To investigate the mechanism behind this increased acceleration, we compared the degradation kinetics in various environments. Additionally, other effects such as hydrophilicity changes were excluded. The accelerated degradation of ROS-ARP is evaluated as a potential drug delivery system, demonstrating on-demand cargo release from the formulated polymeric particles.
机译:化学扩增是改善刺激响应聚合物敏感性的已知策略。但是,从未完全检查过化学扩增效果。许多问题仍然是其机制和功效,阻碍了其进一步的实施。在此,我们设计并证明具有化学放大策略的反应性氧物种(ROS)响应性聚合物(ROS-ARP),以解除这些问题。 ROS-ARP旨在通过ROS改变亲水性,露出羧酸,其涉及沿着聚合物主链催化缩酮水解。与先前报道的ROS响应性聚合物相比,ROS-ARP的化学扩增策略加速了高达17倍的聚合物劣化。为了研究这种增加的加速背后的机制,我们将降解动力学与各种环境进行比较。另外,排除了其他效果,例如亲水性变化。 ROS-ARP的加速降解被评估为潜在的药物递送系统,从配制的聚合物颗粒中展示按需货物释放。

著录项

  • 来源
    《Biomaterials Science》 |2018年第1期|共8页
  • 作者单位

    UCSD Center of Excellence in Nanomedicine and Engineering University of California San Diego 9500 Gilman Dr. La Jolla California 92093 USA;

    UCSD Center of Excellence in Nanomedicine and Engineering University of California San Diego 9500 Gilman Dr. La Jolla California 92093 USA;

    UCSD Center of Excellence in Nanomedicine and Engineering University of California San Diego 9500 Gilman Dr. La Jolla California 92093 USA;

    III. Institute of Physics Georg August University Goettingen Friedrich-Hund-Platz 1 D-37077 Goettingen Germany;

    UCSD Center of Excellence in Nanomedicine and Engineering University of California San Diego 9500 Gilman Dr. La Jolla California 92093 USA;

    UCSD Center of Excellence in Nanomedicine and Engineering University of California San Diego 9500 Gilman Dr. La Jolla California 92093 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计量学;
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