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Integrative Diffusion-Weighted Imaging and Radiogenomic Network Analysis of Glioblastoma multiforme

机译:胶质母细胞瘤的扩散加权加权成像和放射基因组网络分析

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摘要

In the past, changes of the Apparent Diffusion Coefficient in glioblastoma multiforme have been shown to be related to specific genes and described as being associated with survival. The purpose of this study was to investigate diffusion imaging parameters in combination with genome-wide expression data in order to obtain a comprehensive characterisation of the transcriptomic changes indicated by diffusion imaging parameters. Diffusion-weighted imaging, molecular and clinical data were collected prospectively in 21 patients. Before surgery, MRI diffusion metrics such as axial (AD), radial (RD), mean diffusivity (MD) and fractional anisotropy (FA) were assessed from the contrast enhancing tumour regions. Intraoperatively, tissue was sampled from the same areas using neuronavigation. Transcriptional data of the tissue samples was analysed by Weighted Gene Co-Expression Network Analysis (WGCNA) thus classifying genes into modules based on their network-based affiliations. Subsequent Gene Set Enrichment Analysis (GSEA) identified biological functions or pathways of the expression modules. Network analysis showed a strong association between FA and epithelial-to-mesenchymal-transition (EMT) pathway activation. Also, patients with high FA had a worse clinical outcome. MD correlated with neural function related genes and patients with high MD values had longer overall survival. In conclusion, FA and MD are associated with distinct molecular patterns and opposed clinical outcomes.
机译:过去,已证明多形胶质母细胞瘤中表观扩散系数的变化与特定基因有关,并被描述为与生存有关。本研究的目的是结合全基因组表达数据研究扩散成像参数,以获得扩散成像参数指示的转录组变化的全面表征。前瞻性收集了21例患者的扩散加权成像,分子和临床数据。手术前,从增强造影剂的肿瘤区域评估了MRI扩散指标,例如轴向(AD),径向(RD),平均扩散率(MD)和分数各向异性(FA)。术中,使用神经导航从相同区域取样组织。通过加权基因共表达网络分析(WGCNA)分析组织样本的转录数据,从而根据基于网络的隶属关系将基因分类为模块。随后的基因集富集分析(GSEA)确定了表达模块的生物学功能或途径。网络分析显示FA与上皮间质转化(EMT)途径激活之间有很强的联系。此外,高FA患者的临床预后较差。 MD与神经功能相关基因相关,MD值高的患者总生存期更长。总之,FA和MD与不同的分子模式和相对的临床结果相关。

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