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首页> 外文期刊>Journal of the American Chemical Society >Rapid and Versatile Construction of Diverse and Functional Nanostructures Derived from a Polyphosphoester-Based Biomimetic Block Copolymer System
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Rapid and Versatile Construction of Diverse and Functional Nanostructures Derived from a Polyphosphoester-Based Biomimetic Block Copolymer System

机译:快速,通用的多元和功能性纳米结构的构建,从基于磷酸酯的仿生嵌段共聚物系统。

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摘要

A rapid and efficient approach for the preparation and modification of a versatile class of functional polymer nanoparticles has been developed, for which the entire engineering process from small molecules to polymers to nanoparticles bypasses typical slow and inefficient procedures and rather employs a series of steps that capture fully the "click" chemistry concepts that have greatly facilitated the preparation of complex polymer materials over the past decade. The construction of various nanoparticles with functional complexity from a versatile platform is a challenging aim to provide materials for fundamental studies and also optimization toward a diverse range of applications. In this paper, we demonstrate the rapid and facile preparation of a family of nanoparticles with different surface charges and functionalities based on a biodegradable polyphosphoester block copolymer system. From a retrosynthetic point of view, the nonionic, anionic, cationic, and zwitterionic micelles with hydrodynamic diameters between 13 and 21 nm and great size uniformity were quickly formed by suspending, independently, four amphiphilic diblock polyphosphoesters into water, which were functionalized from the same parental hydrophobic-functional AB diblock polyphosphoester by click-type thiol-yne reactions. The well-defined (PDI < 1.2) hydrophobic-functional AB diblock polyphosphoester was synthesized by an ultrafast (<5 min) organocatalyzed ring-opening polymerization in a two-step, one-pot manner with the quantitative conversions of two kinds of cyclic phospholane monomers. The whole programmable process starting from small molecules to nanoparticles could be completed within 6 h, as the most rapid approach for the anionic and nonionic nanoparticles, although the cationic and zwitterionic nanoparticles required ca. 2 days due to purification by dialysis. The micelles showed high biocompatibility, with even the cationic micelles exhibiting a 6-fold lower cytotoxicity toward RAW 264.7 mouse macrophage cells, as compared to the commercial transfection agent Lipofectamine.
机译:已经开发了一种快速有效的方法来制备和修饰通用的功能性聚合物纳米颗粒,从小分子到聚合物再到纳米颗粒的整个工程过程都绕过了典型的缓慢而低效的过程,而是采用了一系列捕获步骤在过去十年中,“点击”化学概念得到了极大的发展,极大地促进了复杂聚合物材料的制备。从通用平台构建具有功能复杂性的各种纳米粒子是一项具有挑战性的目标,旨在为基础研究提供材料,并针对各种应用进行优化。在本文中,我们演示了基于可生物降解的聚磷酸酯嵌段共聚物体系,快速而简便地制备具有不同表面电荷和功能的纳米颗粒家族。从逆合成的观点来看,通过将四种两亲性的两嵌段二嵌段聚磷酸酯独立地悬浮于水中,可以快速形成流体动力学直径在13到21 nm之间且尺寸均匀性极好的非离子,阴离子,阳离子和两性离子胶束。母体疏水性功能性AB二嵌段聚磷酸酯通过点击型硫醇-炔反应。通过超快(<5分钟)有机催化开环聚合反应,以两步一锅法,并定量转换两种环状磷杂环戊烷,合成了定义明确(PDI <1.2)的疏水性AB双嵌段聚磷酸酯。单体。作为阳离子和非离子纳米粒子的最快方法,从阳离子到两性离子的纳米粒子大约需要6个小时,从小分子到纳米粒子的整个可编程过程可以在6小时内完成。 2天由于通过透析纯化。与市售转染剂Lipofectamine相比,这些胶束具有很高的生物相容性,甚至阳离子胶束对RAW 264.7小鼠巨噬细胞的细胞毒性也低6倍。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第44期|18467-18474|共8页
  • 作者单位

    Department of Chemistry, Department of Chemical Engineering, Laboratory for Synthetic-Biologic Interactions, Texas A&M University, P.O. Box 30012, 3255 TAMU, College Station, Texas 77842, United States,Department of Chemistry, Washington University in St. Louis, St. Louis, Missouri 63130, United States;

    Department of Chemistry, Department of Chemical Engineering, Laboratory for Synthetic-Biologic Interactions, Texas A&M University, P.O. Box 30012, 3255 TAMU, College Station, Texas 77842, United States;

    Department of Chemistry, Department of Chemical Engineering, Laboratory for Synthetic-Biologic Interactions, Texas A&M University, P.O. Box 30012, 3255 TAMU, College Station, Texas 77842, United States;

    Department of Chemistry, Department of Chemical Engineering, Laboratory for Synthetic-Biologic Interactions, Texas A&M University, P.O. Box 30012, 3255 TAMU, College Station, Texas 77842, United States,Department of Pharmaceutics, Faculty of Pharmacy, Assiut University, Assiut, Egypt;

    Department of Chemistry, Department of Chemical Engineering, Laboratory for Synthetic-Biologic Interactions, Texas A&M University, P.O. Box 30012, 3255 TAMU, College Station, Texas 77842, United States;

    Department of Materials Science and Engineering, University of Delaware, Newark, Delaware 19716, United States;

    Department of Materials Science and Engineering, University of Delaware, Newark, Delaware 19716, United States;

    Department of Chemistry, Department of Chemical Engineering, Laboratory for Synthetic-Biologic Interactions, Texas A&M University, P.O. Box 30012, 3255 TAMU, College Station, Texas 77842, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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