Identification of Transdiagnostic Childhood Externalizing Pathology Within an Electronic Medical Records Database and Application to the Analysis of Rare Copy Number Variation.

IF 1.6 3区 医学 Q3 GENETICS & HEREDITY
India A Reddy, Lide Han, Sandra Sanchez-Roige, Maria Niarchou, Douglas M Ruderfer, Lea K Davis
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引用次数: 0

Abstract

Externalizing traits and behaviors are broadly defined by impairments in self-regulation and impulse control that typically begin in childhood and adolescence. Externalizing behaviors, traits, and symptoms span a range of traditional psychiatric diagnostic categories. In this study, we sought to generate an algorithm that could reliably identify transdiagnostic childhood-onset externalizing cases and controls within a university hospital electronic health record (EHR) database. Within the Vanderbilt University Medical Center (VUMC) EHR, our algorithm identified cases with a clinician-validated positive predictive value of 90% and controls with a negative predictive value of 88%. In individuals of genetically defined European ancestry (CEU-clustered; Ncase = 487, Ncontrol = 5638), case status was significantly associated with psychiatric comorbidity and with elevated externalizing polygenic scores (OR: 1.20; 95% CI: 1.09-1.33; p = 1.14 × 10-3; based on published genome-wide association data). To test whether our cohort definitions could be applied to generate novel genetic insights, we examined rare (allele frequency < 0.5%) copy number variation. An association (OR: 9.70; CI: 3.24-29.0) was identified in the CEU-clustered cohort on chromosome 2 (chr2: 45,408,678-45,551,530; duplication), although the statistical strength of this association was modest (p = 0.052). We also examined the role of an externalizing burden score based on the number of externalizing diagnoses present in cases and found similar results to our case-control analysis. This analysis identified several other statistically significant CNV region associations. This study provides a framework for identifying childhood externalizing case-control cohorts within an EHR. Future work should validate this framework within other health systems. A broadly applicable algorithm, like this one, may allow for detection of rare outcomes or outcomes in populations historically excluded from genomic research through meta-analysis of data across health care systems.

电子病历数据库中儿童外化病理的鉴别及罕见拷贝数变异分析的应用。
外化特征和行为被广泛定义为自我调节和冲动控制的障碍,通常始于童年和青春期。外化行为、特征和症状跨越了一系列传统的精神病学诊断类别。在这项研究中,我们试图生成一种算法,可以可靠地识别大学医院电子健康记录(EHR)数据库中的跨诊断儿童期发病外化病例和对照。在范德比尔特大学医学中心(VUMC)的电子病历中,我们的算法识别出临床验证的阳性预测值为90%的病例,而阴性预测值为88%的对照组。在遗传上确定的欧洲血统的个体中(ceu聚集;Ncase = 487, Ncontrol = 5638),病例状态与精神合并症和外化多基因评分升高显著相关(OR: 1.20;95% ci: 1.09-1.33;p = 1.14 × 10-3;基于已发表的全基因组关联数据)。为了测试我们的队列定义是否可以应用于产生新的遗传见解,我们检查了罕见(等位基因频率)
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来源期刊
CiteScore
5.90
自引率
7.10%
发文量
40
审稿时长
4-8 weeks
期刊介绍: Neuropsychiatric Genetics, Part B of the American Journal of Medical Genetics (AJMG) , provides a forum for experimental and clinical investigations of the genetic mechanisms underlying neurologic and psychiatric disorders. It is a resource for novel genetics studies of the heritable nature of psychiatric and other nervous system disorders, characterized at the molecular, cellular or behavior levels. Neuropsychiatric Genetics publishes eight times per year.
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