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Intracellular delivery of nanomaterials for sub-cellular imaging and tracking of biomolecules.

机译:用于亚细胞成像和生物分子追踪的纳米材料的细胞内递送。

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摘要

Nanomaterials have many intriguing applications in biology and medicine. Unique properties such as enhanced electrical properties, increased chemical reactivity and resistance to degradation, novel optical properties and comparable size to that of biological systems have led to their use in various biomedical applications. The most important applications of nanomaterials for medicine are in drug delivery and imaging. This research focuses on utilizing the biocompatibility of single walled Carbon nanotubes (SWCNTs) and optical properties colloidal quantum dots (QDs) for cellular drug delivery and imaging of biomolecules.;The second part of the research is on colloidal quantum dots (QDs): nanometer sized semiconductor crystals typically between 1 nm to 20 nm in diameter. In addition to being size comparable with many biological systems, and having large surface area for multiple biomolecules attachment, they possess high resistance to chemical and photo degradation, tunable emission based on size and composition which makes them excellent candidates for cellular delivery and imaging. The main objectives of this research was to demonstrate the use of QDs for cellular imaging as well as targeted biomolecule delivery by conjugating the QDs with an antibody to a functional protein and delivery into live cells. Conventional techniques deliver QDs as aggregates, however, a major challenge in the use of QDs for cellular imaging and biomolecule delivery is achieving freely dispersed QDs inside the cells. In this research, a new technique to deliver monodispersed QDs inside live cells was developed. The approach combines osmosis driven fluid transport into cells achieved by creating hypotonic environment and reversible permeabilization using low concentrations of cell permeabilization agents like Saponin. The results confirm that highly efficient endocytosis-free intracellular delivery of QDs can be accomplished using this method. Confocal microscopy is used to image the QDs inside the cells and flow cytometry is used for quantifying the fluorescence. To demonstrate targeted delivery, QDs are conjugated to the antibody of a protein: the nuclear transcriptional factor, NFkB (Nuclear Factor kappa-light chain-enhancer of activated B cells) using EDC/sulfo NHS chemistry methods. NFkB is a family of proteins with 5 different subunits and is involved in a variety of biological processes such as immune and inflammatory responses and cellular developmental processes. In unstimulated cells, NFkB is inactive in cytoplasm and translocates to the nucleus upon stimulation using bacterial products, viruses, radiation, and the like. QDs fluorescence could be used to monitor NFKB activity over extended periods of time in live cells.;The first part of this research deals with single walled carbon nanotubes which are excellent candidates for targeted drug delivery applications due their unique structural and functional properties. However, prior to their use in therapeutics, their biocompatibility needs to be thoroughly investigated. The objectives of this research were to establish the biocompatibility of SWCNTs and demonstrate their use as drug delivery carriers into cells. Blood, a living tissue, is chosen as the biological system as it contains various cells which can potentially interact with SWCNTs during the delivery mechanism. The interactions of these cells in the blood (specifically white blood cells or leukocytes) with the SWCNTs provide vital information regarding the immune response of the host to the nanotubes. This research investigates the immune response of white blood cells due to SWCNTs via (a) direct interaction---presence of nanotubes in the blood and, (b) indirect interaction---presentation of nanotubes by antigen-presenting-cells to white blood cells. These two interactions recreate the innate and adaptive immune responses occurring in the body to any foreign substance. SWCNTs are functionalized with single stranded DNA (ss-DNA), which serves as a dispersant of nanotubes as well as a backbone for further attachment of other biomolecules of interest. Confocal microscopy and flow cytometric studies are performed to characterize the interactions. Results from this acute immune response study demonstrate the biocompatibility of SWCNTs in whole blood and also confirm the cellular delivery of single stranded DNA.
机译:纳米材料在生物学和医学中具有许多有趣的应用。独特的特性(例如增强的电特性,增强的化学反应性和抗降解性),新颖的光学特性以及与生物系统相当的尺寸,导致它们可用于各种生物医学应用中。纳米材料在医学上最重要的应用是在药物输送和成像中。这项研究的重点是利用单壁碳纳米管(SWCNTs)的生物相容性和光学特性胶体量子点(QDs)进行细胞药物递送和生物分子成像。第二部分研究是胶体量子点(QDs):纳米尺寸的半导体晶体通常直径在1纳米至20纳米之间。除了具有可与许多生物系统媲美的尺寸,并具有可连接多个生物分子的大表面积外,它们还具有很高的抗化学和光降解能力,基于尺寸和组成的可调发射性,使其成为细胞递送和成像的极佳候选者。这项研究的主要目的是通过将QD与功能蛋白抗体结合并递送到活细胞中,来证明QD在细胞成像以及靶向生物分子递送中的应用。常规技术以聚集体形式递送QD,但是,将QD用于细胞成像和生物分子递送的主要挑战是实现细胞内自由分散的QD。在这项研究中,开发了一种在活细胞内递送单分散QD的新技术。该方法将渗透作用驱动的液体转运到细胞中,方法是通过创建低渗环境和使用低浓度的细胞透化剂(如皂素)来实现可逆的透化作用。结果证实,使用该方法可以实现QD的高效无内吞作用的细胞内递送。共聚焦显微镜用于对细胞内部的量子点成像,流式细胞仪用于定量荧光。为了证明靶向递送,使用EDC /磺基NHS化学方法将QD与蛋白质抗体:核转录因子NFkB(活化的B细胞的核因子κ-轻链增强子)偶联。 NFkB是具有5个不同亚基的蛋白质家族,涉及多种生物学过程,例如免疫和炎症反应以及细胞发育过程。在未刺激的细胞中,NFkB在细胞质中是无活性的,并且在使用细菌产物,病毒,放射线等刺激后会迁移到核中。 QDs荧光可用于长时间监测活细胞中的NFKB活性。这项研究的第一部分涉及单壁碳纳米管,由于其独特的结构和功能特性,它们是靶向药物递送应用的极佳候选者。但是,在将其用于治疗之前,需要对其生物相容性进行彻底研究。这项研究的目的是建立单壁碳纳米管的生物相容性,并证明其作为药物传递载体进入细胞的用途。血液,一种活体组织,被选作生物系统,因为它包含各种在输送机制中可能与SWCNT相互作用的细胞。血液中这些细胞(特别是白细胞或白细胞)与SWCNT的相互作用提供了有关宿主对纳米管免疫反应的重要信息。这项研究通过(a)直接相互作用-血液中存在纳米管,以及(b)间接相互作用-抗原呈递细胞向白细胞呈递纳米管来研究SWCNTs对白细胞的免疫反应细胞。这两种相互作用可重现体内对任何异物的先天性和适应性免疫反应。 SWCNTs用单链DNA(ss-DNA)功能化,单链DNA用作纳米管的分散剂以及进一步附着其他感兴趣的生物分子的骨架。进行共聚焦显微镜和流式细胞术研究以表征相互作用。这项急性免疫反应研究的结果证明了SWCNT在全血中的生物相容性,也证实了单链DNA的细胞传递。

著录项

  • 作者

    Medepalli, Krishna Kiran.;

  • 作者单位

    University of Louisville.;

  • 授予单位 University of Louisville.;
  • 学科 Engineering Electronics and Electrical.;Engineering Biomedical.;Engineering Materials Science.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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