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一种基于福尔马林固定石蜡包埋组织样本采集的 MALDI 成像质谱数据的新型分类方法。

A new classification method for MALDI imaging mass spectrometry data acquired on formalin-fixed paraffin-embedded tissue samples.

机构信息

Center for Industrial Mathematics, University of Bremen, Bremen, Germany; SCiLS GmbH, Bremen, Germany.

Center for Industrial Mathematics, University of Bremen, Bremen, Germany.

出版信息

Biochim Biophys Acta Proteins Proteom. 2017 Jul;1865(7):916-926. doi: 10.1016/j.bbapap.2016.11.003. Epub 2016 Nov 9.

DOI:10.1016/j.bbapap.2016.11.003
PMID:27836618
Abstract

Matrix-assisted laser desorption/ionization imaging mass spectrometry (MALDI IMS) shows a high potential for applications in histopathological diagnosis, and in particular for supporting tumor typing and subtyping. The development of such applications requires the extraction of spectral fingerprints that are relevant for the given tissue and the identification of biomarkers associated with these spectral patterns. We propose a novel data analysis method based on the extraction of characteristic spectral patterns (CSPs) that allow automated generation of classification models for spectral data. Formalin-fixed paraffin embedded (FFPE) tissue samples from N=445 patients assembled on 12 tissue microarrays were analyzed. The method was applied to discriminate primary lung and pancreatic cancer, as well as adenocarcinoma and squamous cell carcinoma of the lung. A classification accuracy of 100% and 82.8%, resp., could be achieved on core level, assessed by cross-validation. The method outperformed the more conventional classification method based on the extraction of individual m/z values in the first application, while achieving a comparable accuracy in the second. LC-MS/MS peptide identification demonstrated that the spectral features present in selected CSPs correspond to peptides relevant for the respective classification. This article is part of a Special Issue entitled: MALDI Imaging, edited by Dr. Corinna Henkel and Prof. Peter Hoffmann.

摘要

基质辅助激光解吸/电离成像质谱(MALDI IMS)在组织病理学诊断中具有很高的应用潜力,特别是在支持肿瘤分型和亚型方面。此类应用的开发需要提取与给定组织相关的光谱指纹,并识别与这些光谱模式相关的生物标志物。我们提出了一种基于特征光谱模式(CSP)提取的新型数据分析方法,该方法允许自动生成光谱数据的分类模型。对来自 N=445 名患者的 12 个组织微阵列的福尔马林固定石蜡包埋(FFPE)组织样本进行了分析。该方法用于区分原发性肺癌和胰腺癌,以及肺腺癌和肺鳞癌。通过交叉验证评估,在核心水平上分别达到了 100%和 82.8%的分类准确性。在第一个应用中,该方法优于更传统的基于提取单个 m/z 值的分类方法,而在第二个应用中达到了可比的准确性。LC-MS/MS 肽鉴定表明,所选 CSP 中存在的光谱特征与相应分类相关的肽相对应。本文是由 Corinna Henkel 博士和 Peter Hoffmann 教授编辑的特刊“MALDI 成像”的一部分。

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