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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >High throughput assessment of cells and tissues: Bayesian classification of spectral metrics from infrared vibrational spectroscopic imaging data
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High throughput assessment of cells and tissues: Bayesian classification of spectral metrics from infrared vibrational spectroscopic imaging data

机译:细胞和组织的高通量评估:来自红外振动光谱成像数据的光谱指标的贝叶斯分类

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摘要

Vibrational spectroscopy allows a visualization of tissue constituents based on intrinsic chemical composition and provides a potential route to obtaining diagnostic markers of diseases. Characterizations utilizing infrared vibrational spectroscopy, in particular, are conventionally low throughput in data acquisition, generally lacking in spatial resolution with the resulting data requiring intensive numerical computations to extract information. These factors impair the ability of infrared spectroscopic measurements to represent accurately the spatial heterogeneity in tissue, to incorporate robustly the diversity introduced by patient cohorts or preparative artifacts and to validate developed protocols in large population studies. In this manuscript, we demonstrate a combination of Fourier transform infrared (FTIR) spectroscopic imaging, tissue microarrays (TMAs) and fast numerical analysis as a paradigm for the rapid analysis, development and validation of high throughput spectroscopic characterization protocols. We provide an extended description of the data treatment algorithm and a discussion of various factors that may influence decision-making using this approach. Finally, a number of prostate tissue biopsies, arranged in an array modality, are employed to examine the efficacy of this approach in histologic recognition of epithelial cell polarization in patients displaying a variety of normal, malignant and hyperplastic conditions. An index of epithelial cell polarization, derived from a combined spectral and morphological analysis, is determined to be a potentially useful diagnostic marker. (c) 2006 Elsevier B.V. All rights reserved.
机译:振动光谱法允许根据内在化学成分对组织成分进行可视化,并提供了获得疾病诊断标记的潜在途径。特别地,利用红外振动光谱法的表征通常是数据采集中的常规低通量,通常缺乏空间分辨率,所得到的数据需要大量的数值计算来提取信息。这些因素削弱了红外光谱测量准确表示组织中空间异质性,稳固地纳入患者队列或制备人工制品所引入的多样性并验证在大型人群研究中开发的方案的能力。在此手稿中,我们展示了傅里叶变换红外(FTIR)光谱成像,组织微阵列(TMA)和快速数值分析的组合,可作为对高通量光谱表征协议进行快速分析,开发和验证的范例。我们提供了数据处理算法的扩展说明,并讨论了可能影响使用此方法进行决策的各种因素。最后,以阵列形式排列的许多前列腺组织活检被用来检查这种方法在组织学上识别表现出各种正常,恶性和增生状况的患者中上皮细胞极化的功效。由光谱和形态分析相结合得出的上皮细胞极化指数被确定为潜在有用的诊断标记。 (c)2006 Elsevier B.V.保留所有权利。

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