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Surface-adaptive zwitterionic nanoparticles for prolonged blood circulation time and enhanced cellular uptake in tumor cells

机译:用于延长血液循环时间的表面适应性两性离子纳米颗粒和肿瘤细胞增强的蜂窝摄取

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摘要

Graphical abstract Display Omitted Abstract Recently, zwitterionic materials have been developed as alternatives to PEG for prolonging the circulation time of nanoparticles without triggering immune responses. However, zwitterionic coatings also hindered the interactions between nanoparticles and tumor cells, leading to less efficient uptake of nanoparticles by cancer cells. Such effect significantly limited the applications of zwitterionic materials for the purposes of drug delivery and the development to novel therapeutic agents. To overcome these issues, surface-adaptive mixed-shell micelles (MSMs) with poly(2-methacryloyloxyethyl phosphorylcholine) (PMPC)/poly( β -amino ester) (PAE) heterogeneous surfaces were constructed. Owing to the synergistic effect of zwitterionic coatings and micro-phase-separated surfaces, PMPC mixed-shell micelles exhibited the improved blood circulation time compared to single-PEG-shell micelles (PEGSMs) and single-PMPC-shell micelles (PMPCSMs). Moreover, such MSMs can convert their surface to positively charged ones in response to the acidic tumor microenvironment, leading to a significant enhancement in cellular uptake of MSMs by tumor cells. This strategy demonstrated a general approach to enhance the cellular uptake of zwitterionic nanoparticles without compromising their long circulating capability, providing a practical method for improving the tumor-targeting efficiency of particulate drug delivery systems. Statement of Significance Herein we demonstrate a general strategy to integrate non-fouling zwitterionic surface on the nanoparticles without compromising their capability of tumor accumulation, by constructing a surface-adaptive mixed-shell micelles (MSMs) with poly(2-methacryloyloxyethyl phosphorylcholine) (PMPC)/poly( β -amino ester) (PAE) heterogeneous surfaces. At the blood pH (7.4), PAE chains collapsed to the inner of the shell due to the deprotonation, and the forming micro-phase separation structure was synergistic with zwitterionic surface to prolong the circulation time of MSMs in the blood. While at the tumor sites, PAE was protonated, and the positively charged surface of MSMs enhanced cellular uptake. This self-assembly-based strategy is compatible to other zwitterionic materials, endowing a great flexibility for the construction of responsive drug delivery systems particularly to the novel chemotherapeutic agents.
机译:摘要摘要摘要摘要摘要摘要由于佩格的替代品被开发为延长纳米颗粒的循环时间而不引发免疫应答的替代品。然而,两性离子涂层也阻碍了纳米颗粒和肿瘤细胞之间的相互作用,导致癌细胞纳米颗粒的较低吸收。这种效果显着限制了两性离子材料的应用,以便给药和新型治疗剂的发育。为了克服这些问题,构建了具有聚(2-甲基丙烯酰氧基乙基磷胆碱)(PMPC)/聚(β-氨基酯)(PAE)异质表面的表面适应性混合壳胶束(MSM)。由于两性离子涂层和微相分离表面的协同作用,与单PEG壳胶束(PEGSMS)和单PMPC-壳胶束(PMPCSMS)相比,PMPC混合壳胶束表现出改善的血液循环时间。此外,这种MSM可以响应于酸性肿瘤微环境转化为正电荷的表面,导致肿瘤细胞对MSM的细胞摄取的显着增强。该策略表明了一种普遍的方法来增强两性离子纳米颗粒的细胞摄取而不损害其长循环能力,提供了改善颗粒药物递送系统的肿瘤靶向效率的实用方法。本文的重要性我们证明了一种通过构建具有聚(2-甲基丙烯酰氧基乙基磷胆碱)(PMPC)的表面适应性混合 - 壳胶束(MSM)而不损害其肿瘤积聚能力的一般策略而不损害其肿瘤积聚能力。 )/聚(β-氨基酯)(PAE)异质表面。在血液pH(7.4)中,由于去质子化引起的PAE链塌陷到壳体的内部,并且形成微相分离结构与两性离子表面协同,以延长血液中MSMS的循环时间。虽然在肿瘤部位,PAE被质子化,并且具有带正电荷的MSMS的表面增强了蜂窝摄取。这种基于自组装的策略与其他两性离子材料兼容,赋予了响应药物递送系统的浓度,特别是新的化学治疗剂的浓度。

著录项

  • 来源
    《Acta biomaterialia》 |2018年第2018期|共10页
  • 作者单位

    State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Functional Polymer Materials;

    State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Functional Polymer Materials;

    Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine Institute of Radiation;

    Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine Institute of Radiation;

    State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Functional Polymer Materials;

    State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Functional Polymer Materials;

    College of Medicine The Affiliated Hospital Hebei University;

    College of Medicine The Affiliated Hospital Hebei University;

    College of Medicine The Affiliated Hospital Hebei University;

    College of Medicine The Affiliated Hospital Hebei University;

    Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine Institute of Radiation;

    State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Functional Polymer Materials;

    State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Functional Polymer Materials;

    State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Functional Polymer Materials;

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

    Zwitterionic; Self-assembly; Prolonged blood circulation; Enhanced cellular uptake; Charge conversion;

    机译:十二年离子;自组装;长期血液循环;增强的蜂窝摄取;电荷转换;

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