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Gold nanorods: Applications in chemical sensing, biological imaging and effects on 3-dimensional tissue culture

机译:金纳米棒:在化学传感,生物成像和对三维组织培养的影响中的应用

摘要

Gold nanoparticles have attracted great interest in the last decade for applications in biochemical detection, imaging, and therapeutics, due to their useful optoelectronic properties. Interest in this area has recently focused on engineering the surface of the nanoparticles, because of the ease in which the charge, functionality, and reactivity of the surface can be altered. This dissertation will focus on the applications of surface-engineered gold nanoparticles in chemical detection and biomedical imaging, and look at the effects surface modified gold nanorods have on the behavior of cardiac fibroblasts in tissue culture.As an alternative to solution-based techniques in Raman spectroscopy, we have found that a sandwich architecture in which a surface assembled monolayer (SAM) of 4-mercaptobenzoic acid (4-MBA) is sandwiched between a 100 nm thick gold substrate and electrostaticaly immobilized gold nanocubes allows for more reproducible data as well as enhancement factors up to 1013. The sandwich architecture creates a large electromagnetic field in the area where the 4-MBA molecules reside causing the characteristic vibrational modes of 4-MBA to appear. We have also moved out of the realm of chemical sensing and have used our gold nanorods as point sensors to monitor the mechanical properties associated with mechanotransduction.Cell behavior in the presence of nanomaterials is typically explored through simple viability assays, but there is mounting evidence that nanomaterials can have more subtle effects on a variety of cell functions. Numerous studies have documented the cellular uptake and cytotoxicity of gold nanoparticles in different cell types, but very little is known about how nanoparticles affect cellular function. We have shown that gold nanorods in a collagen thin film can be used to measure the local mechanical fields near and between living cells as they assess, adapt, and rearrange their environment. We have also found that gold nanorods in 3-D tissue culture interfere with the cardiac fibroblast-mediated remodeling of a collagen tissue construct. We have found several factors associated with the dose dependent decrease in cell-mediated collagen remodeling including the alteration of fibroblast phenotype, adsorption of cellular proteins needed for cell mediated remodeling, as well as a change in the mechanical properties of the tissue construct. The following chapters will detail the use of our gold nanomaterials as both biochemical and imaging agents, and discuss cell behavior in the presence of surface modified gold nanorods.
机译:金纳米颗粒由于其有用的光电特性,在过去的十年中吸引了巨大的兴趣,用于生化检测,成像和治疗。由于可以容易地改变表面的电荷,官能度和反应性,因此对该领域的关注最近集中在对纳米颗粒的表面进行工程设计上。本文将重点研究表面工程化的金纳米粒子在化学检测和生物医学成像中的应用,并研究表面修饰的金纳米棒对组织培养中心脏成纤维细胞行为的影响。作为拉曼光谱中基于溶液的技术的替代方法,我们发现了一种夹心结构,其中4-巯基苯甲酸(4-MBA)的表面组装单层(SAM)夹在100 nm厚的金基底之间并静电固定金纳米立方体可以提供更多可重现的数据以及高达1013的增强因子。三明治结构在4-MBA分子所处的区域中产生了一个大电磁场,从而导致出现了4-MBA的特征振动模式。我们也已经脱离化学传感领域,并使用金纳米棒作为点传感器来监测与机械转导相关的机械性能。通常通过简单的活力测定来探讨存在纳米材料的细胞行为,但越来越多的证据表明,纳米材料可以对多种细胞功能产生更微妙的影响。大量研究已经证明了金纳米颗粒在不同细胞类型中的细胞摄取和细胞毒性,但对纳米颗粒如何影响细胞功能的了解还很少。我们已经表明,胶原蛋白薄膜中的金纳米棒可用于评估活细胞附近,之间的局部机械场,从而评估,适应和重新布置其环境。我们还发现3-D组织培养物中的金纳米棒会干扰心脏成纤维细胞介导的胶原组织构建体的重塑。我们已经发现与细胞介导的胶原重塑的剂量依赖性降低相关的几个因素,包括成纤维细胞表型的改变,细胞介导的重塑所需的细胞蛋白的吸附以及组织构建体的机械性质的变化。以下各章将详细介绍我们的金纳米材料既用作生化剂又用作成像剂,并讨论在存在表面修饰的金纳米棒的情况下的细胞行为。

著录项

  • 作者

    Sisco Patrick N.;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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