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Semi-Automated Curation Allows Causal Network Model Building for the Quantification of Age-Dependent Plaque Progression in ApoE–/– Mouse

机译:半自动管理允许因果网络模型的建立,以量化ApoE – / –小鼠的年龄依赖性斑块进展

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The cellular and molecular mechanisms behind the process of atherosclerotic plaque destabilization are complex, and molecular data from aortic plaques are difficult to interpret. Biological network models may overcome these difficulties and precisely quantify the molecular mechanisms impacted during disease progression. The atherosclerosis plaque destabilization biological network model was constructed with the semiautomated curation pipeline, BELIEF. Cellular and molecular mechanisms promoting plaque destabilization or rupture were captured in the network model. Public transcriptomic data sets were used to demonstrate the specificity of the network model and to capture the different mechanisms that were impacted in ApoE–/– mouse aorta at 6 and 32 weeks. We concluded that network models combined with the network perturbation amplitude algorithm provide a sensitive, quantitative method to follow disease progression at the molecular level. This approach can be used to investigate and quantify molecular mechanisms during plaque progression.
机译:动脉粥样硬化斑块失稳过程背后的细胞和分子机制很复杂,并且难以解释来自主动脉斑块的分子数据。生物网络模型可以克服这些困难,并精确地量化疾病进展过程中影响的分子机制。利用半自动管理管道BELIEF构建了动脉粥样硬化斑块失稳生物网络模型。在网络模型中捕获了促进斑块失稳或破裂的细胞和分子机制。公共转录组数据集用于证明网络模型的特异性,并捕获在6周和32周时对ApoE – / –小鼠主动脉产生影响的不同机制。我们得出的结论是,网络模型与网络摄动幅度算法相结合,提供了一种敏感,定量的方法来在分子水平上跟踪疾病的进展。这种方法可用于调查和量化斑块进展过程中的分子机制。

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