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A Nasal Brush-based Classifier of Asthma Identified by Machine Learning Analysis of Nasal RNA Sequence Data

机译:通过鼻RNA序列数据的机器学习分析确定基于鼻刷的哮喘分类器

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摘要

Asthma is a common, under-diagnosed disease affecting all ages. We sought to identify a nasal brush-based classifier of mild/moderate asthma. 190 subjects with mild/moderate asthma and controls underwent nasal brushing and RNA sequencing of nasal samples. A machine learning-based pipeline identified an asthma classifier consisting of 90 genes interpreted via an L2-regularized logistic regression classification model. This classifier performed with strong predictive value and sensitivity across eight test sets, including (1) a test set of independent asthmatic and control subjects profiled by RNA sequencing (positive and negative predictive values of 1.00 and 0.96, respectively; AUC of 0.994), (2) two independent case-control cohorts of asthma profiled by microarray, and (3) five cohorts with other respiratory conditions (allergic rhinitis, upper respiratory infection, cystic fibrosis, smoking), where the classifier had a low to zero misclassification rate. Following validation in large, prospective cohorts, this classifier could be developed into a nasal biomarker of asthma.
机译:哮喘是一种常见的,未被诊断的疾病,影响各个年龄段。我们试图确定一种基于鼻刷的轻度/中度哮喘分类器。 190名患有轻度/中度哮喘和对照的受试者接受了鼻刷和鼻样本的RNA测序。基于机器学习的管道确定了由90个基因组成的哮喘分类器,这些基因通过L2正规化的逻辑回归分类模型进行了解释。该分类器在八个测试组中具有很强的预测价值和敏感性,其中包括(1)通过RNA测序分析的独立哮喘和对照受试者的测试组(正预测值和负预测值分别为1.00和0.96; AUC为0.994),( 2)通过微阵列分析的两个独立的病例对照哮喘队列,(3)五个其他呼吸系统疾病(过敏性鼻炎,上呼吸道感染,囊性纤维化,吸烟)队列,其中分类器的分类错误率低至零。在大量的前瞻性队列中进行验证后,该分类器可以发展为哮喘的鼻部生物标志物。

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