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Untangling intercellular communication using optical manipulation in 3D models of tumor microenvironment.

机译:在肿瘤微环境的3D模型中使用光学操作解开细胞间的通讯。

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摘要

The tumor microenvironment is a tangled web of multiple cell types, extracellular matrix components, and a multitude of cell signaling pathways frequently contribute to poor outcomes, which make cancer the second leading killer in the United States. A better understanding of how these constituents interact will inevitably facilitate development of novel cancer therapeutics and diagnostics. To advance scientific discovery towards this goal, innovative experimental techniques are required. In this dissertation, new research methods for probing cell communication at a single to multi cell level within 3D models of the tumor microenvironment are presented.;Optical trapping, composite nanocapsules (i.e., gold-coated liposomes), and 3D cell culture models were the foundation for the development of these research tools. The first aim of this dissertation was to optimize our ability to optically manipulate gold-coated liposomes for the purpose of delivering molecular content to cells. The second aim was to apply optical manipulation of gold-coated liposomes to quantitatively deliver signaling molecules into a single cell to activate communication. The third aim was to develop a 3D model of the tumor microenvironment and demonstrate cell communication within this physiologically accurate architecture.;The basis for this work was gold-coated liposomes' strong plasmon resonance with visible to near infrared (NIR) wavelengths of light, which enabled photo-thermal conversion and optical trapping. To identify preferred conditions for optical manipulation of gold-coated liposomes for delivering content into cells, gold-coated liposomes made with different dielectric properties were optically trapped under various laser modulation schemes and thoroughly characterized, enabled by high speed (kHz) imaging. Application of this technique was realized by precise delivery of molecular agents into a single cell (i.e., optical injection). As a demonstration of optical injection, the NIR trapping beam was utilized to propel gold-coated liposomes encapsulating inositol trisphosphate (IP3) into a single cell to initiate calcium (Ca2+) signaling. In another method for intracellular delivery, cells were preloaded with similar gold-coated liposomes, internalized by macropinocytosis, and then exposed to on-resonant laser light to trigger on-demand release of IP3 to activate Ca2+ signaling. Lastly, a 3D cell culture model of ovarian cancer microenvironment was developed as a platform for interrogating cell signaling. The in vitro model comprised human ovarian cancerous epithelial cells grown upon a collagen and human fibroblast stroma recapitulating architecture of human tissue. Gold-coated liposomes encapsulating signaling molecules, optical manipulation, and a 3D model of ovarian cancer, a trio of versatile experimental tools opens new opportunities for studying the tumor microenvironment.
机译:肿瘤微环境是多种细胞类型,细胞外基质成分的错综复杂的网络,并且多种细胞信号通路经常导致不良结果,这使癌症成为美国的第二大杀手。对这些成分如何相互作用的更好的理解将不可避免地促进新型癌症治疗剂和诊断剂的开发。为了朝着这个目标推进科学发现,需要创新的实验技术。本文提出了在肿瘤微环境的3D模型中探测单细胞或多细胞水平细胞通讯的新研究方法。光学捕获,复合纳米胶囊(即金包膜脂质体)和3D细胞培养模型是目前研究的新方法。这些研究工具开发的基础。本论文的首要目的是优化我们对镀金脂质体进行光学操作以将分子内容传递至细胞的能力。第二个目的是对包金的脂质体进行光学操作,以将信号分子定量传递到单个细胞中以激活通讯。第三个目标是建立肿瘤微环境的3D模型,并在这种生理学准确的体系结构中证明细胞通讯。这项工作的基础是镀金脂质体的强烈等离子体共振,具有可见到近红外(NIR)波长的光,从而实现了光热转换和光阱。为了确定光学操作金包衣脂质体以将内容物递送到细胞中的优选条件,将具有不同介电性质的金包衣脂质体在各种激光调制方案下进行光学捕获,并通过高速(kHz)成像进行了全面表征。通过将分子试剂精确地递送到单个细胞中(即,光学注射)来实现该技术的应用。作为光学注射的演示,NIR捕获束用于将包裹肌醇三磷酸酯(IP3)的金包被脂质体推进单个细胞,以启动钙(Ca2 +)信号传导。在另一种用于细胞内递送的方法中,将细胞预装类似的金包衣脂质体,通过巨胞吞作用将其内在化,然后暴露于共振激光下以触发IP3的按需释放以激活Ca2 +信号传导。最后,开发了卵巢癌微环境的3D细胞培养模型作为询问细胞信号的平台。体外模型包括在胶原蛋白和人成纤维细胞基质重现人体组织结构时生长的人体卵巢癌上皮细胞。金包封的脂质体包封信号分子,光学操纵和卵巢癌的3D模型,三组多功能实验工具为研究肿瘤微环境提供了新的机会。

著录项

  • 作者

    Orsinger, Gabriel V.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Nanotechnology.;Cellular biology.;Biomedical engineering.;Oncology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 235 p.
  • 总页数 235
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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