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Zwitterionic nanoparticles constructed from bioreducible RAFT-ROP double head agent for shell shedding triggered intracellular drug delivery

机译:由生物生产筏 - ROP双头剂构成的两性离子纳米粒子用于壳脱落的触发细胞内药物递送

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摘要

Nanomedicines have emerged as indispensable platforms for cancer theranostics, however, the therapeutic outcomes were often compromised not only by the multiple biological barriers during the itinerary from the initial injection site to the intracellular action site but also the insufficient drug release at the pathological site. Herein, novel bioreducible double head agent, combining reversible addition-fragmentation chain transfer agent and ring opening polymerization initiator through disulfide linkage, was firstly prepared. Well-defined cRGDfk-polycarboxybetaine methacrylate-SS-polycaprolactone block copolymers (termed as cRGD-PCSSL) were facilely synthesized using this initiator. Subsequently, shell sheddable and drug encapsulated zwitterionic nanoparticles were constructed by one-step self-assembly with doxorubicin (DOX) (termed as cRGD-PCSSL/DOX NPs). The reduction-responsive shedding of PCB shells resulted in the rapid loss of cRGD-PCSSL/DOX NPs stability in the presence of giutathione, facilitating the rapid DOX release. Results of flow cytometry and fluorescence microscopy demonstrated that cRGD-PCSSL/DOX NPs could be internalized by HepG2 cells via receptor-mediated endocytosis with fast intracellular drug release, leading to considerable cytotoxicity in comparison with free DOX. Importantly, the low protein adsorption and excellent serum stability properties of cRGD-PCSSL/DOX NPs translated into prolonged systemic circulation and enhanced tumor accumulation. Furthermore, intravenous injection of cRGD-PCSSL/ DOX NPs in tumor-bearing mice exhibited significantly higher antitumor efficiency and lower systemic toxicity compared to free DOX. Consequently, the novel zwitterionic NPs, which facilely overcome the dilemma between multifunctionality and complexity by programmatically circumventing the multiple biological barriers, would represent a promising platform for enhanced anticancer drug delivery.
机译:Nanomedicines已经出现为癌症治疗的不可缺少平台,然而,治疗结果通常不仅受到从初始注射部位到细胞内作用位点的传导过程中的多种生物屏障,而且在病理遗址上的药物释放不足。在此,首先制备新的生物能力双头剂,将可逆添加 - 碎片链转移剂和环开口聚合引发剂组合通过二硫化物键合。利用该引发剂,甲基丙烯酸酯-SS-聚碳酸甲酯嵌体(称为CRGD-PCSSL)的甲基丙烯酸酯-SS-聚碳酸甲酯嵌段共聚物。随后,通过用多柔比星(DOX)的单步自组装(称为CRGD-PCSSL / DOX NPS)构建壳脱筛和药物包封的两性离子纳米颗粒。 PCB壳的响应响应性抗响应缩小导致CRGD-PCSSL / DOX NPS NPS NPS NPS NPS NPS稳定性的快速丧失,促进了快速DOX释放。流式细胞术和荧光显微镜的结果证明CRGD-PCSSL / DOX NPS可以通过受体介导的内吞作用通过具有快速细胞内药物释放的受体介导的内吞作物内化,导致与游离DOX相比具有相当大的细胞毒性。重要的是,CRGD-PCSSL / DOX NPS的低蛋白质吸附和优异的血清稳定性,转化为延长的全身循环和增强的肿瘤积累。此外,与自由DOX相比,静脉注射肿瘤小鼠中的CRGD-PCSSL / DOX NPS显着更高的抗肿瘤效率和较低的全身毒性。因此,新型两性离子NPS通过以编程方式避难多种生物屏障,克服多功能性和复杂性之间的困境将代表增强抗癌药物递送的有希望的平台。

著录项

  • 来源
    《Acta biomaterialia》 |2016年第null期|共10页
  • 作者单位

    Tianjin Univ Sch Chem Engn &

    Technol Minist Educ Dept Polymer Sci &

    Technol Tianjin 300072;

    Chinese Acad Med Sci Inst Radiat Med Tianjin Key Lab Radiat Med &

    Mol Nucl Med Tianjin 300192;

    Peking Union Med Coll Tianjin 300192 Peoples R China;

    Chinese Acad Med Sci Inst Radiat Med Tianjin Key Lab Radiat Med &

    Mol Nucl Med Tianjin 300192;

    Tianjin Univ Sch Chem Engn &

    Technol Minist Educ Dept Polymer Sci &

    Technol Tianjin 300072;

    Peking Union Med Coll Tianjin 300192 Peoples R China;

    Chinese Acad Med Sci Inst Radiat Med Tianjin Key Lab Radiat Med &

    Mol Nucl Med Tianjin 300192;

    Tianjin Univ Sch Chem Engn &

    Technol Minist Educ Dept Polymer Sci &

    Technol Tianjin 300072;

  • 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

    Reduction-responsive; Zwitterionic; Nanoparticles; Tumor targeting; Doxorubicin;

    机译:减少响应;两性离子;纳米颗粒;肿瘤靶向;多柔比星;

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