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首页> 外文期刊>Biomacromolecules >Reversible Dimerization of Polymeric Amphiphiles Acts as a Molecular Switch of Enzymatic Degradability
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Reversible Dimerization of Polymeric Amphiphiles Acts as a Molecular Switch of Enzymatic Degradability

机译:聚合物两亲物的可逆二聚化用作酶促可降解性的分子开关

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摘要

Enzyme-responsive polymeric micelles have great potential as drug delivery systems due to the high selectivity and overexpression of disease-associated enzymes, which could be utilized to trigger the release of active drugs only at the target site. We previously demonstrated that enzymatic degradation rates of amphiphilic PEG-dendron hybrids could be precisely tuned by gradually increasing the hydrophobic to hydrophilic ratio. However, with the increase in hydrophobicity, the micelles rapidly became too stable and could not be degraded, as often encountered for many other amphiphilic assemblies. Here we address the challenge to balance between stability and reactivity of enzymatically degradable assemblies by utilizing reversible dimerization of diblock polymeric amphiphiles to yield jemini amphiphiles. This molecular transformation serves as a tool to control the critical micelle concentration of the amphiphiles in order to tune their micellar stability and enzymatic degradability. To demonstrate this approach, we show that simple dimerization of two polymeric amphiphiles through a single reversible disulfide bond significantly increased the stability of their micellar assemblies toward enzymatic degradation, although the hydrophilic to hydrophobic ratio was not changed. Reduction of the disulfide bond led to dedimerization of the polymeric hybrids and allowed their degradation by the activating enzyme. The generality of the approach is demonstrated by designing both esterase- and amidase-responsive micellar systems. This new molecular design can serve as a simple tool to increase the stability of polymeric micelles without impairing their enzymatic degradability.
机译:酶响应性聚合物胶束由于疾病相关酶的选择性和过表达而具有巨大的药物递送系统,这可用于引发仅在靶位点处释放活性药物。我们以前证明,通过逐渐增加疏水性与亲水性比例,可以精确地调整两亲性PEG-树状红细胞杂种的酶促降解速率。然而,随着疏水性的增加,胶束迅速变得太稳定并且不能降解,经常遇到许多其他两亲组件。在这里,我们通过利用DIBlock聚合物两亲层的可逆二聚化来解决酶促降二聚化以产生Jemini两亲物质的稳定性和反应性之间的挑战。该分子转化用作控制两亲物的临界胶束浓度的工具,以便调谐其胶束稳定性和酶促可降解性。为了证明这种方法,我们表明,通过单一可逆二硫键的两种聚合物两亲键的简单二聚化显着提高了胶束组件朝向酶促降解的稳定性,尽管不改变疏水比的亲水性。减少二硫键导致聚合物杂交物的用途,并通过活化酶允许其降解。通过设计酯酶和酰胺酶响应胶束系统来证明该方法的一般性。这种新的分子设计可以作为一种简单的工具,以增加聚合物胶束的稳定性而不损害其酶促可降解性。

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  • 来源
    《Biomacromolecules》 |2017年第10期|共12页
  • 作者单位

    Tel Aviv Univ Sch Chem Fac Exact Sci Dept Organ Chem IL-6997801 Tel Aviv Israel;

    Tel Aviv Univ Ctr Nanosci &

    Nanotechnol IL-6997801 Tel Aviv Israel;

    Tel Aviv Univ Sch Chem Fac Exact Sci Dept Organ Chem IL-6997801 Tel Aviv Israel;

    Tel Aviv Univ Sch Chem Fac Exact Sci Dept Organ Chem IL-6997801 Tel Aviv Israel;

    Tel Aviv Univ Ctr Nanosci &

    Nanotechnol IL-6997801 Tel Aviv Israel;

    Tel Aviv Univ Ctr Nanosci &

    Nanotechnol IL-6997801 Tel Aviv Israel;

    Tel Aviv Univ Ctr Nanosci &

    Nanotechnol IL-6997801 Tel Aviv Israel;

    Tel Aviv Univ Sch Chem Fac Exact Sci Dept Organ Chem IL-6997801 Tel Aviv Israel;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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