Deep learning of genomic variation and regulatory network data

Author:

Telenti Amalio1,Lippert Christoph2,Chang Pi-Chuan3,DePristo Mark3

Affiliation:

1. Scripps Translational Science Institute, The Scripps Research Institute, La Jolla, CA 92037, USA

2. Max Delbrück Center for Molecular Medicine, 13125 Berlin, Germany

3. Google Inc., Mountain View, CA 94043, USA

Abstract

Abstract The human genome is now investigated through high-throughput functional assays, and through the generation of population genomic data. These advances support the identification of functional genetic variants and the prediction of traits (e.g. deleterious variants and disease). This review summarizes lessons learned from the large-scale analyses of genome and exome data sets, modeling of population data and machine-learning strategies to solve complex genomic sequence regions. The review also portrays the rapid adoption of artificial intelligence/deep neural networks in genomics; in particular, deep learning approaches are well suited to model the complex dependencies in the regulatory landscape of the genome, and to provide predictors for genetic variant calling and interpretation.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Genetics(clinical),Genetics,Molecular Biology,General Medicine

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