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Design and optimization of polymer nanoshuttles for nanomedicine

机译:纳米医生聚合物纳米型的设计与优化

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Current advances in nanotechnology hold the promises to greatly impact on current medical practice. Since nanometric materials interact with cells, tissue and organs at a molecular level, they may be used as probes for ultrasensitive molecular sensing and diagnostic imaging or carriers for drug and gene delivery. However, along with the excitement that has driven the development of novel nanocarriers, there have been increasing concerns regarding the risks these materials may generate. As these nanostructures are intentionally engineered to target specific cells or tissues, it is imperative to ensure their safety. The optimal design of safe and functional nanocarriers for medicine requires a better understanding of the interaction between the physical-chemistry properties of the nanoparticle surface with the complex protein machinery existing at the cell membrane. In particular the effect of the particles properties (charge, shape, protein coating) on the mechanism of cellular uptake is highly relevant both to assess the real biological risks coupled with the use of nanomaterial (nanopathology and nanotoxicology) and to engineer carriers able to improve the medical practice. The nanometric size and the surface molecular decoration may activate mechanisms of cellular uptake different from those commonly used by cells: these open the possibility to activated/modulated the membrane crossing by tuning chemical-physical properties of nanometric materials. In this work, the design and production of novel degradable polymeric nanocavities via layer-by-layer and temperature induced phase separation technology will be presented along with a detailed characterization of their in vitro performances. Furthermore, possible mechanisms of cellular uptake will be discussed and critically presented. The effect of surface bioconjugation on cell membrane crossing will be exploited and elucidated. Particular attention will be devoted to surface molecular decoration able to guide the nanoparticle throughout the cytosol.
机译:纳米技术的目前的进步使得承诺对当前的医疗实践产生大量影响。由于纳米材料以分子水平与细胞,组织和器官相互作用,因此它们可以用作用于药物和基因递送的超敏感分子传感和诊断成像或携带者的探针。然而,随着推动新型纳米载体的发展的兴奋,关于这些材料可能产生的风险,增加了问题。由于这些纳米结构被故意设计成靶向特异性细胞或组织,因此必须确保其安全性。用于医学的安全和功能纳米载体的最佳设计需要更好地理解纳米颗粒表面的物理化学性质与在细胞膜上存在的复杂蛋白质机械的相互作用。特别是颗粒性质(电荷,形状,蛋白质涂层)对细胞摄取机制的影响是高度相关的,以评估与使用纳米材料(纳米病理学和纳米毒理学)的真实生物学风险和能够改善的工程载体医疗实践。纳米尺寸和表面分子装饰可以激活与细胞常用的细胞摄取的机制不同:这些开放通过调节纳米材料的化学物理性质来激活/调节膜交的可能性。在这项工作中,将通过层 - 逐层和温度诱导的相分离技术的新型可降解聚合物纳米遗传学的设计和生产以及其体外性能的详细表征。此外,将讨论蜂窝摄取的可能机制并批判性地呈现。将利用和阐明表面生物缀合物对细胞膜交叉的影响。特别注意的是能够引导整个细胞溶质的纳米粒子的表面分子装饰。

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