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Study of cells and tissue: Live cells microspectroscopy and multivariate data analysis.

机译:细胞和组织的研究:活细胞显微光谱法和多元数据分析。

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摘要

The first part of this thesis focuses on in vivo infrared (IR) spectroscopic methods for detection of spectral changes in live cells during the division cycle. Detecting these changes is of prime importance for the development of spectroscopic methods of diagnosis.; The second part deals with coupling infrared spectral imaging, multivariate data analysis, such as hierarchical cluster analysis (HCA), and classification by artificial neural networks (ANN). These methods promise to be a powerful tool for the detection and identification of cancer cells within lymph nodes.; HeLa cells were grown either in a specially designed liquid cell or deposited on IR microscope slides and sealed in a custom made IR cell. Perkin-Elmer Spotlight 300 and Smiths Detection IlluminatIR FT-IR microspectrometers were used for data acquisition.; Sections of lymph nodes, approximately 5 mum thick, were placed onto IR microscope slides for infrared analysis. Data acquisition was performed on an FT-IR imaging system, Perkin-Elmer Spotlight 300. IR spectra were imported to CytoSpecRTM software to execute data preprocessing for subsequent ANN data analysis, which was performed using NeuroDeveloper RTM software.; The author demonstrates that it is feasible to collect IR spectral data from live cells in an aqueous environment. This opens a wide variety of experiments on subjects such as drug uptake, drug mechanism and apoptosis.; The second part of the thesis indicates that IR spectral imaging, in conjunction with hierarchical cluster analysis and ANN data classification, offers potential for a quick, automated screening and diagnosis of cancer in lymph nodes.
机译:本文的第一部分着重于体内红外光谱法,用于检测分裂周期中活细胞的光谱变化。检测这些变化对于开发光谱诊断方法至关重要。第二部分涉及耦合红外光谱成像,多元数据分析(例如层次聚类分析(HCA))和通过人工神经网络(ANN)进行分类。这些方法有望成为检测和识别淋巴结内癌细胞的有力工具。 HeLa细胞可以在专门设计的液体细胞中生长或沉积在IR显微镜载玻片上,并密封在定制的IR细胞中。 Perkin-Elmer Spotlight 300和Smiths Detection IlluminatIR FT-IR显微光谱仪用于数据采集。将大约5微米厚的淋巴结切片放在IR显微镜载玻片上进行红外分析。数据采集​​是在FT-IR成像系统Perkin-Elmer Spotlight 300上进行的。将红外光谱导入CytoSpecRTM软件,以进行数据预处理,以进行后续的ANN数据分析,该过程使用NeuroDeveloper RTM软件进行。作者证明在含水环境中从活细胞收集红外光谱数据是可行的。这开启了关于受试者的各种实验,例如药物吸收,药物机制和细胞凋亡。论文的第二部分表明,红外光谱成像结合层次聚类分析和人工神经网络数据分类,为快速,自动筛查和诊断淋巴结癌提供了潜力。

著录项

  • 作者

    Miljkovic, Milos.;

  • 作者单位

    City University of New York.;

  • 授予单位 City University of New York.;
  • 学科 Chemistry Analytical.; Biology Cell.; Health Sciences Oncology.; Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;细胞生物学;肿瘤学;生物医学工程;
  • 关键词

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