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Large-scale gene network analysis reveals the significance of extracellular matrix pathway and homeobox genes in acute myeloid leukemia: an introduction to the Pigengene package and its applications

机译:大规模基因网络分析揭示了急性髓性白血病中细胞外基质途径和同源异型框基因的重要性:Pigengene软件包及其应用简介

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Background The distinct types of hematological malignancies have different biological mechanisms and prognoses. For instance, myelodysplastic syndrome (MDS) is generally indolent and low risk; however, it may transform into acute myeloid leukemia (AML), which is much more aggressive. Methods We develop a novel network analysis approach that uses expression of eigengenes to delineate the biological differences between these two diseases. Results We find that specific genes in the extracellular matrix pathway are underexpressed in AML. We validate this finding in three ways: (a) We train our model on a microarray dataset of 364 cases and test it on an RNA Seq dataset of 74 cases. Our model showed 95% sensitivity and 86% specificity in the training dataset and showed 98% sensitivity and 91% specificity in the test dataset. This confirms that the identified biological signatures are independent from the expression profiling technology and independent from the training dataset. (b) Immunocytochemistry confirms that MMP9 , an exemplar protein in the extracellular matrix, is underexpressed in AML. (c) MMP9 is hypermethylated in the majority of AML cases ( n =194, Welch’s t-test p -value ?138), which complies with its low expression in AML. Our novel network analysis approach is generalizable and useful in studying other complex diseases (e.g., breast cancer prognosis). We implement our methodology in the Pigengene software package, which is publicly available through Bioconductor. Conclusions Eigengenes define informative biological signatures that are robust with respect to expression profiling technology. These signatures provide valuable information about the underlying biology of diseases, and they are useful in predicting diagnosis and prognosis.
机译:背景不同类型的血液系统恶性肿瘤具有不同的生物学机制和预后。例如,骨髓增生异常综合症(MDS)通常是惰性的且风险低;但是,它可能转变为更具侵略性的急性髓细胞性白血病(AML)。方法我们开发了一种新颖的网络分析方法,该方法使用本征基因的表达来描述这两种疾病之间的生物学差异。结果我们发现细胞外基质途径中的特定基因在AML中表达不足。我们以三种方式验证这一发现:(a)我们在364例微阵列数据集上训练模型,并在74例RNA Seq数据集上对其进行测试。我们的模型在训练数据集中显示95%的敏感性和86%的特异性,在测试数据集中显示98%的敏感性和91%的特异性。这证实了所识别的生物学特征独立于表达谱分析技术并且独立于训练数据集。 (b)免疫细胞化学证实,MMP9是细胞外基质中的一种典型蛋白,在AML中表达不足。 (c)MMP9在大多数AML病例中都是甲基化程度较高(n = 194,Welch的t检验p值?138 ),这与其在AML中的低表达相符。我们新颖的网络分析方法具有普遍性,可用于研究其他复杂疾病(例如乳腺癌的预后)。我们在Pigengene软件包中实施我们的方法,该软件包可通过Bioconductor公开获得。结论Eigengenes定义了信息丰富的生物学特征,这些特征相对于表达谱分析技术是可靠的。这些签名提供了有关疾病潜在生物学的有价值的信息,它们可用于预测诊断和预后。

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