Reference-informed prediction of alternative splicing and splicing-altering mutations from sequences.

bioRxiv

Department of Systems Biology, Department of Biochemistry and Molecular Biophysics, Columbia University, New York, NY 10032, USA.

Published: April 2024

Alternative splicing plays a crucial role in protein diversity and gene expression regulation in higher eukaryotes and mutations causing dysregulated splicing underlie a range of genetic diseases. Computational prediction of alternative splicing from genomic sequences not only provides insight into gene-regulatory mechanisms but also helps identify disease-causing mutations and drug targets. However, the current methods for the quantitative prediction of splice site usage still have limited accuracy. Here, we present DeltaSplice, a deep neural network model optimized to learn the impact of mutations on quantitative changes in alternative splicing from the comparative analysis of homologous genes. The model architecture enables DeltaSplice to perform "reference-informed prediction" by incorporating the known splice site usage of a reference gene sequence to improve its prediction on splicing-altering mutations. We benchmarked DeltaSplice and several other state-of-the-art methods on various prediction tasks, including evolutionary sequence divergence on lineage-specific splicing and splicing-altering mutations in human populations and neurodevelopmental disorders, and demonstrated that DeltaSplice outperformed consistently. DeltaSplice predicted ~15% of splicing quantitative trait loci (sQTLs) in the human brain as causal splicing-altering variants. It also predicted splicing-altering mutations outside the splice sites in a subset of patients affected by autism and other neurodevelopmental disorders, including 19 genes with recurrent splicing-altering mutations. Among the new candidate disease risk genes, is involved in mitochondria fusion, which is frequently disrupted in autism patients. Our work expanded the capacity of splicing models with potential applications in genetic diagnosis and the development of splicing-based precision medicine.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10996483PMC
http://dx.doi.org/10.1101/2024.03.22.586363DOI Listing

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