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PROSPECTIVE EXPLORATION OF BIOCHEMICAL TISSUE COMPOSITION VIA IMAGING MASS SPECTROMETRY GUIDED BY PRINCIPAL COMPONENT ANALYSIS

机译:通过主成分分析引导的成像质谱法对生物化学组织组合物的预期探测

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MALDI-based Imaging Mass Spectrometry (IMS) is an analytical technique that provides the opportunity to study the spatial distribution of biomolecules including proteins and peptides in organic tissue. IMS measures a large collection of mass spectra spread out over an organic tissue section and retains the absolute spatial location of these measurements for analysis and imaging. The classical approach to IMS imaging, producing univariate ion images, is not well suited as a first step in a prospective study where no a priori molecular target mass can be formulated. The main reasons for this are the size and the multivariate nature of IMS data. In this paper we describe the use of principal component analysis as a multivariate pre-analysis tool, to identify the major spatial and mass-related trends in the data and to guide further analysis downstream. First, a conceptual overview of principal component analysis for IMS is given. Then, we demonstrate the approach on an IMS data set collected from a transversal section of the spinal cord of a standard control rat.
机译:基于MALDI的成像质谱(IMS)是一种分析技术,其提供了研究生物分子的空间分布,包括有机组织中的蛋白质和肽。 IMS测量大量的质谱集,在有机组织部分上展开,并保留这些测量的绝对空间位置以进行分析和成像。 IMS成像的经典方法,产生单变量离子图像,并不适合于在未来研究中的第一步,其中不能配制优先的分子靶质量。这是IMS数据的大小和多元性的主要原因。在本文中,我们描述了主要成分分析作为多变量预分析工具的使用,以确定数据中的主要空间和质量相关趋势,并指导下游进一步分析。首先,给出了IMS主成分分析的概念概述。然后,我们展示了从标准对照RAT的脊髓的横向部分收集的IMS数据集上的方法。

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