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AMELIE 通过将患者的表型和基因型与原始文献相匹配,加速孟德尔遗传病的诊断。

AMELIE speeds Mendelian diagnosis by matching patient phenotype and genotype to primary literature.

作者信息

Birgmeier Johannes, Haeussler Maximilian, Deisseroth Cole A, Steinberg Ethan H, Jagadeesh Karthik A, Ratner Alexander J, Guturu Harendra, Wenger Aaron M, Diekhans Mark E, Stenson Peter D, Cooper David N, Ré Christopher, Beggs Alan H, Bernstein Jonathan A, Bejerano Gill

机构信息

Department of Computer Science, Stanford University, Stanford, CA 94305, USA.

Santa Cruz Genomics Institute, MS CBSE, University of California Santa Cruz, Santa Cruz, CA 95064, USA.

出版信息

Sci Transl Med. 2020 May 20;12(544). doi: 10.1126/scitranslmed.aau9113.

Abstract

The diagnosis of Mendelian disorders requires labor-intensive literature research. Trained clinicians can spend hours looking for the right publication(s) supporting a single gene that best explains a patient's disease. AMELIE (Automatic Mendelian Literature Evaluation) greatly accelerates this process. AMELIE parses all 29 million PubMed abstracts and downloads and further parses hundreds of thousands of full-text articles in search of information supporting the causality and associated phenotypes of most published genetic variants. AMELIE then prioritizes patient candidate variants for their likelihood of explaining any patient's given set of phenotypes. Diagnosis of singleton patients (without relatives' exomes) is the most time-consuming scenario, and AMELIE ranked the causative gene at the very top for 66% of 215 diagnosed singleton Mendelian patients from the Deciphering Developmental Disorders project. Evaluating only the top 11 AMELIE-scored genes of 127 (median) candidate genes per patient resulted in a rapid diagnosis in more than 90% of cases. AMELIE-based evaluation of all cases was 3 to 19 times more efficient than hand-curated database-based approaches. We replicated these results on a retrospective cohort of clinical cases from Stanford Children's Health and the Manton Center for Orphan Disease Research. An analysis web portal with our most recent update, programmatic interface, and code is available at AMELIE.stanford.edu.

摘要

孟德尔疾病的诊断需要耗费大量人力进行文献研究。训练有素的临床医生可能要花数小时寻找合适的出版物,以支持能最好地解释患者疾病的单个基因。AMELIE(孟德尔文献自动评估)极大地加速了这一过程。AMELIE解析了所有2900万篇PubMed摘要,并下载并进一步解析了数十万篇全文文章,以寻找支持大多数已发表基因变异的因果关系和相关表型的信息。然后,AMELIE根据候选变异解释任何患者给定表型集的可能性对其进行优先级排序。对散发病例患者(无亲属外显子组)的诊断是最耗时的情况,在来自“解读发育障碍”项目的215例已诊断的散发性孟德尔病患者中,AMELIE将致病基因排在首位的比例为66%。对每位患者仅评估127个(中位数)候选基因中AMELIE评分最高的前11个基因,在90%以上的病例中实现了快速诊断。基于AMELIE对所有病例的评估比基于人工整理数据库的方法效率高3至19倍。我们在斯坦福儿童健康中心和曼顿孤儿病研究中心的临床病例回顾队列中重复了这些结果。可在AMELIE.stanford.edu上获取包含我们最新更新、编程接口和代码的分析门户网站。

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