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Supramolecular Nanoparticles for Molecular Diagnostics and Therapeutics.

机译:用于分子诊断和治疗的超分子纳米颗粒。

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摘要

Over the past decades, significant efforts have been devoted to explore the use of various nanoparticle-based systems in the field of nanomedicine, including molecular imaging and therapy. Supramolecular synthetic approaches have attracted lots of attention due to their flexibility, convenience, and modularity for producing nanoparticles. In this dissertation, the developmental story of our size-controllable supramolecular nanoparticles (SNPs) will be discussed, as well as their use in specific biomedical applications. To achieve the self-assembly of SNPs, the well-characterized molecular recognition system (i.e., cyclodextrin/adamantane recognition) was employed. The resulting SNPs, which were assembled from three molecular building blocks, possess incredible stability in various physiological conditions, reversible size-controllability and dynamic disassembly that were exploited for various in vitro and in vivo applications. An advantage of using the supramolecular approach is that it enables the convenient incorporation of functional ligands onto SNP surface that confers functionality ( e.g., targeting, cell penetration) to SNPs. We utilized SNPs for molecular imaging such as magnetic resonance imaging (MRI) and positron emission tomography (PET) by introducing reporter systems (i.e., radio-isotopes, MR contrast agents, and fluorophores) into SNPs. On the other hand, the incorporation of various payloads, including drugs, genes and proteins, into SNPs showed improved delivery performance and enhanced therapeutic efficacy for these therapeutic agents. Leveraging the powers of (i) a combinatorial synthetic approach based on supramolecular assembly and (ii) a digital microreactor, a rapid developmental pathway was developed that is capable of screening SNP candidates for the ideal structural and functional properties that deliver optimal performance. Moreover, SNP-based theranostic delivery systems that combine reporter systems and therapeutic payloads into a single SNP for both diagnosis and therapy were generated. The results show that this type of theranostic SNPs may have a great contribution in the optimization of therapeutic efficacy for individual patients in clinical translation in the near future. It is anticipated that our supramolecular synthetic approach could be adopted to assemble various SNP-based delivery agents for molecular diagnostics and therapeutics that pave the way toward personalized medicine.
机译:在过去的几十年中,已经做出了巨大的努力来探索在纳米医学领域中各种基于纳米颗粒的系统的使用,包括分子成像和治疗。超分子合成方法因其生产纳米粒子的灵活性,便利性和模块化而备受关注。在本文中,我们将讨论尺寸可控的超分子纳米颗粒(SNP)的发展故事,以及它们在特定生物医学应用中的用途。为了实现SNP的自组装,使用了特征充分的分子识别系统(即,环糊精/金刚烷识别)。由三个分子构件组装而成的所得SNP,在各种生理条件下均具有令人难以置信的稳定性,可逆的大小可控制性和动态分解能力,可用于各种体外和体内应用。使用超分子方法的优点在于,它使得能够将功能性配体方便地掺入SNP表面,从而赋予SNP功能性(例如,靶向,细胞渗透)。通过将报告系统(即放射性同位素,MR造影剂和荧光团)引入SNP中,我们将SNP用于分子成像,例如磁共振成像(MRI)和正电子发射断层扫描(PET)。另一方面,将各种有效负载(包括药物,基因和蛋白质)并入SNP中显示出改善的递送性能和增强的治疗效果。利用(i)基于超分子组装的组合合成方法和(ii)数字微反应器的力量,开发了一种快速的开发途径,该途径能够筛选SNP候选物以提供最佳性能的理想结构和功能特性。此外,还产生了将报告系统和治疗有效载荷组合为单个SNP进行诊断和治疗的基于SNP的治疗疗法递送系统。结果表明,在不久的将来,这种类型的治疗性单核苷酸多态性可能在优化个别患者的临床翻译疗效方面具有重要作用。可以预期,我们的超分子合成方法可以被用来组装各种基于SNP的递质,用于分子诊断和治疗,从而为个性化医学铺平了道路。

著录项

  • 作者

    Chen, Kuan-Ju.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Biomedical.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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