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Conjugated polymer nanoparticles for biological labeling and delivery.

机译:共轭聚合物纳米粒子,用于生物标记和递送。

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摘要

Cancer remains one of the world's most devastating diseases, with more than 10 million new cases every year. However, traditional treatments have proven insufficient for successful medical management of cancer due to the chemotherapeutics' difficulty in achieving therapeutic concentrations at the target site, non-specific cytotoxicity to normal tissues, and limited systemic circulation lifetime. Although, a concerted effort has been placed in developing and successfully employing nanoparticle(NP)-based drug delivery vehicles successfully mitigate the physiochemical and pharmacological limitations of chemotherapeutics, work towards controlling the subcellular fate of the carrier, and ultimately its payload, has been limited. Because efficient therapeutic action requires drug delivery to specific organelles, the subcellular barrier remains critical obstacle to maximize the full potential of NP-based delivery vehicles. The aim of my dissertation work is to better understand how NP-delivery vehicles' structural, chemical, and physical properties affect the internalization method and subcellular localization of the nanocarrier.;In this work we explored how side-chain and backbone modifications affect the conjugated polymer nanoparticle (CPN) toxicity and subcellular localization. We discovered how subtle chemical modifications had profound consequences on the polymer's accumulation inside the cell and cellular retention. We also examined how complexation of CPN with polysaccharides affects uptake efficiency and subcellular localization.;This work also presents how changes to CPN backbone biodegradability can significantly affect the subcellular localization of the material. A series of triphenyl phosphonium-containing CPNs were synthesized and the effect of backbone modifications have on the cellular toxicity and intracellular fate of the material. A mitochondrial-specific polymer exhibiting time-dependent release is reported. Finally, we present a novel polymerization technique which allows for the controlled incorporation of electron-accepting benzothiadiazole units onto the polymer chain. This facilitates tuning CPN emission towards red emission.;The work presented here, specifically, the effect that side-chain and structure, polysaccharide formulation and CPN degradability have on material's uptake behavior, can help maximize the full potential of NP-based delivery vehicles for improved chemotherapeutic drug delivery.
机译:癌症仍然是世界上最具破坏力的疾病之一,每年有超过一千万的新病例。然而,由于化学疗法难以达到靶部位的治疗浓度,对正常组织的非特异性细胞毒性以及有限的全身循环寿命,传统疗法已证明不足以成功地对癌症进行医学治疗。尽管在开发和成功使用基于纳米颗粒(NP)的药物输送工具方面已做出了共同努力,但成功减轻了化学疗法的生理化学和药理学局限,控制载体的亚细胞命运以及最终控制其有效载荷的工作受到了限制。因为有效的治疗作用需要将药物输送到特定的细胞器,所以亚细胞屏障仍然是最大限度地发挥基于NP的运载工具潜力的关键障碍。本文的目的是为了更好地理解NP传递载体的结构,化学和物理性质如何影响纳米载体的内在化方法和亚细胞定位。在本工作中,我们探讨了侧链和骨架修饰如何影响共轭物。聚合物纳米粒子(CPN)毒性和亚细胞定位。我们发现微妙的化学修饰如何对聚合物在细胞内的积累和细胞滞留产生深远的影响。我们还研究了CPN与多糖的复合如何影响摄取效率和亚细胞定位。这项工作还提出了CPN骨架可生物降解性的变化如何显着影响材料的亚细胞定位。合成了一系列含三苯基phospho的CPN,主链修饰对材料的细胞毒性和细胞内命运有影响。据报道线粒体特异性聚合物表现出时间依赖性释放。最后,我们提出了一种新颖的聚合技术,该技术可将电子接受的苯并噻二唑单元受控地结合到聚合物链上。这有助于将CPN发射调整为红色发射。;此处介绍的工作,特别是侧链和结构,多糖配方和CPN降解性对材料吸收行为的影响,可以帮助最大程度地利用基于NP的运载工具的潜力。改善化疗药物的递送。

著录项

  • 作者

    Mendez, Eladio.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Organic chemistry.;Nanotechnology.;Chemistry.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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