RExPRT: a machine learning tool to predict pathogenicity of tandem repeat loci

Author:

Fazal Sarah,Danzi Matt C.,Xu Isaac,Kobren Shilpa Nadimpalli,Sunyaev Shamil,Reuter Chloe,Marwaha Shruti,Wheeler Matthew,Dolzhenko Egor,Lucas Francesca,Wuchty Stefan,Tekin Mustafa,Züchner StephanORCID,Aguiar-Pulido Vanessa

Abstract

AbstractExpansions of tandem repeats (TRs) cause approximately 60 monogenic diseases. We expect that the discovery of additional pathogenic repeat expansions will narrow the diagnostic gap in many diseases. A growing number of TR expansions are being identified, and interpreting them is a challenge. We present RExPRT (Repeat EXpansion Pathogenicity pRediction Tool), a machine learning tool for distinguishing pathogenic from benign TR expansions. Our results demonstrate that an ensemble approach classifies TRs with an average precision of 93% and recall of 83%. RExPRT’s high precision will be valuable in large-scale discovery studies, which require prioritization of candidate loci for follow-up studies.

Funder

American Heart Association

National Institute of Health

Muscular Dystrophy Association

Publisher

Springer Science and Business Media LLC

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