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Applications of Nanotechnology to the Central Nervous System.

机译:纳米技术在中枢神经系统中的应用。

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摘要

Nanotechnology and nanomaterials, in general, have become prominent areas of academic research. The ability to engineer at the nano scale is critical to the advancement of the physical and medical sciences. In the realm of physical sciences, the applications are clear: smaller circuitry, more powerful computers, higher resolution intruments. However, the potential impact in the fields of biology and medicine are perhaps even grander. The implementation of novel nanodevices is of paramount importance to the advancement of drug delivery, molecular detection, and cellular manipulation.;The work presented in this thesis focuses on the development of nanotechnology for applications in neuroscience. The nervous system provides unique challenges and opportunities for nanoscale research. This thesis discusses some background in nanotechnological applications to the central nervous system and details:;(1) The development of a novel calcium nanosenser for use in neurons and astrocytes. We implemented the calcium responsive component of Dr. Roger Tsien's Cameleon sensor, a calmodulin-M13 fusion, in the first quantum dot-based calcium sensor.;(2) The exploration of cell-penetrating peptides as a delivery mechanism for nanoparticles to cells of the nervous system. We investigated the application of polyarginine sequences to rat primary cortical astrocytes in order to assess their efficacy in a terminally differentiated neural cell line.;(3) The development of a cheap, biocompatible alternative to quantum dots for nanosensor and imaging applications. We utilized a positively charged co-matrix to promote the encapsulation of free sulforhodamine B in silica nanoparticles, a departure from conventional reactive dye coupling to silica matrices. While other methods have been invoked to trap dye not directly coupled to silica, they rely on positively charged dyes that typically have a low quantum yield and are not extensively tested biologically, or they implement reactive dyes bound to larger encapsulated molecules.
机译:通常,纳米技术和纳米材料已成为学术研究的突出领域。纳米级工程设计的能力对于物理和医学科学的进步至关重要。在物理科学领域,应用很明显:更小的电路,更强大的计算机,更高分辨率的仪器。但是,在生物学和医学领域的潜在影响可能更大。新型纳米器件的实现对药物递送,分子检测和细胞操纵的发展至关重要。本论文的工作重点是纳米技术在神经科学中的应用发展。神经系统为纳米研究提供了独特的挑战和机遇。本文讨论了中枢神经系统纳米技术应用的一些背景,并详细介绍了以下内容:(1)新型用于神经元和星形胶质细胞的钙纳米传感器的开发。我们在第一个基于量子点的钙传感器中实现了Roger Tsien博士的Cameleon传感器的钙响应成分,即钙调蛋白-M13融合。;(2)探索细胞穿透肽作为纳米粒子向细胞表面的传递机制。神经系统。我们研究了聚精氨酸序列在大鼠原代皮质星形胶质细胞中的应用,以评估其在终末分化神经细胞系中的功效。;(3)开发了一种廉价,生物相容的量子点替代物,用于纳米传感器和成像应用。我们利用带正电荷的共基质来促进游离磺基罗丹明B在二氧化硅纳米颗粒中的包封,这是从传统的反应性染料偶联到二氧化硅基质上的转变。尽管已采用其他方法来捕获未与二氧化硅直接偶联的染料,但它们依赖于带正电荷的染料,这些染料通常具有较低的量子产率,并且未经生物学广泛测试,或者它们实现了与较大封装分子结合的活性染料。

著录项

  • 作者

    Blumling, James P., II.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Nanotechnology.;Biophysics General.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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