首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >A polymer-free, biomimicry drug self-delivery system fabricated via a synergistic combination of bottom-up and top-down approaches
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A polymer-free, biomimicry drug self-delivery system fabricated via a synergistic combination of bottom-up and top-down approaches

机译:通过自下而下和自上而下的方法的协同组合制造无聚合物的生物化药物自输送系统

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摘要

Compared to conventional carrier-assistant drug delivery systems (DDSs), drug self-delivery systems (DSDSs) have advantages of unprecedented drug loading capacity, minimized carrier-related toxicity and ease of preparation. However, the colloidal stability and blood circulation time of DSDSs still need to be improved. Here we report on the development of a novel biomimicry drug self-delivery system by the integration of a top-down cell membrane complexing technique into our self-delivery multifunctional nano-platform made from the bottom-up approach that contains 100% active pharmaceutical ingredients (API) pheophorbide A and irinotecan conjugates (named PI). Compared to conventional cell membrane-coated nanoparticles with a polymer framework as the core and a relatively low drug loading capacity, this system consisting of red blood cell membrane vesicle complexed PI (RBC-PI) is polymer-free with up to 50% API loading. RBC-PI exhibited 10 times higher area under curve in a pharmacokinetic study and a much lower macrophage uptake compared with the parent PI nanoparticles. RBC-PI retained the excellent chemophototherapeutic effects of the PI nanoparticles, but possessed superior anti-cancer efficacy with prolonged blood circulation, improved tumor delivery, and enhanced photothermal effects in animal models. This system represents a novel example of using a cell membrane complexing technique for the effective surface modification of DSDSs. This is also an innovative study to form a polymer-free cell membrane nanoparticle complexing with positive surface-charged materials. This biomimicry DSDS takes advantage of the best features from both systems to make up for each other's shortcomings and provides all the critical features for an ideal drug delivery system.
机译:与常规载体辅助药物递送系统(DDSS)相比,药物自输送系统(DSDS)具有前所未有的药物负载能力,最小化载体相关毒性和易于制备的优点。然而,仍需要改善DSDS的胶体稳定性和血液循环时间。在这里,我们通过将自上而下的细胞膜络合技术与含有100%活性药物成分的自下而上的方法的自递送多功能纳米平台一体化,报告新型生物化药物自输送系统的开发。 (API)伯苯酚A和伊立替康偶联物(命名为PI)。与具有聚合物框架的常规细胞膜涂覆的纳米颗粒作为核心和相对低的药物负载能力相比,该系统由红细胞膜囊泡络合物络合物(RBC-PI)组成的该系统是无聚合物,高达50%API负载。在药代动力学研究中,RBC-PI在曲线下呈现了10倍的区域,与母体PI纳米粒子相比,巨噬细胞吸收得多。 RBC-PI保留了PI纳米粒子的优异的化学疗效,但具有较高的抗癌疗效,延长血液循环,改善肿瘤递送,增强动物模型的光热效应。该系统表示使用用于DSDS的有效表面改性的细胞膜络合技术的新颖实例。这也是一种创新性研究,形成与阳性表面带状物质的无聚合物细胞膜纳米粒子络合。这种生物化DSD利用了两个系统的最佳功能,以弥补彼此的缺点,并为理想的药物输送系统提供所有关键特征。

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    Zhejiang Univ Coll Biomed Engn &

    Instrument Sci Hangzhou 310027 Zhejiang Peoples R China;

    Univ Calif Davis UC Davis Comprehens Canc Ctr Dept Biochem &

    Mol Med Sacramento CA 95817 USA;

    Univ Calif Davis UC Davis Comprehens Canc Ctr Dept Biochem &

    Mol Med Sacramento CA 95817 USA;

    Univ Calif Davis UC Davis Comprehens Canc Ctr Dept Biochem &

    Mol Med Sacramento CA 95817 USA;

    Univ Calif Davis UC Davis Comprehens Canc Ctr Dept Biochem &

    Mol Med Sacramento CA 95817 USA;

    Zhejiang Acad Agr Sci Inst Anim Husb &

    Vet Sci Hangzhou 310021 Zhejiang Peoples R China;

    Univ Calif Davis UC Davis Comprehens Canc Ctr Dept Biochem &

    Mol Med Sacramento CA 95817 USA;

    Univ Calif Davis UC Davis Comprehens Canc Ctr Dept Biochem &

    Mol Med Sacramento CA 95817 USA;

    Zhejiang Univ Coll Biomed Engn &

    Instrument Sci Hangzhou 310027 Zhejiang Peoples R China;

    Univ Calif Davis Dept Internal Med Sacramento CA 95817 USA;

    Univ Calif Davis Dept Internal Med Sacramento CA 95817 USA;

    Univ Calif Davis Dept Internal Med Sacramento CA 95817 USA;

    Univ Calif Davis UC Davis Comprehens Canc Ctr Dept Biochem &

    Mol Med Sacramento CA 95817 USA;

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  • 正文语种 eng
  • 中图分类 分析化学;
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