Publication:
Domain-based prediction of the human isoform interactome provides insights into the functional impact of alternative splicing

Thumbnail Image

Date

2017

Journal Title

Journal ISSN

Volume Title

Publisher

Public Library of Science
The Harvard community has made this article openly available. Please share how this access benefits you.

Research Projects

Organizational Units

Journal Issue

Citation

Ghadie, Mohamed Ali, Luke Lambourne, Marc Vidal, and Yu Xia. 2017. “Domain-based prediction of the human isoform interactome provides insights into the functional impact of alternative splicing.” PLoS Computational Biology 13 (8): e1005717. doi:10.1371/journal.pcbi.1005717. http://dx.doi.org/10.1371/journal.pcbi.1005717.

Research Data

Abstract

Alternative splicing is known to remodel protein-protein interaction networks (“interactomes”), yet large-scale determination of isoform-specific interactions remains challenging. We present a domain-based method to predict the isoform interactome from the reference interactome. First, we construct the domain-resolved reference interactome by mapping known domain-domain interactions onto experimentally-determined interactions between reference proteins. Then, we construct the isoform interactome by predicting that an isoform loses an interaction if it loses the domain mediating the interaction. Our prediction framework is of high-quality when assessed by experimental data. The predicted human isoform interactome reveals extensive network remodeling by alternative splicing. Protein pairs interacting with different isoforms of the same gene tend to be more divergent in biological function, tissue expression, and disease phenotype than protein pairs interacting with the same isoforms. Our prediction method complements experimental efforts, and demonstrates that integrating structural domain information with interactomes provides insights into the functional impact of alternative splicing.

Description

Keywords

Biology and Life Sciences, Biochemistry, Proteins, Protein Interactions, Protein Domains, Computational Biology, Genome Analysis, Gene Ontologies, Genetics, Genomics, Computer and Information Sciences, Network Analysis, Protein Interaction Networks, Proteomics, Protein-Protein Interactions, Biology and life sciences, Gene expression, RNA processing, Alternative Splicing, Nucleic acids, RNA, Cell Biology, Cell Processes, Cell Death, Apoptosis, Mathematical and Statistical Techniques, Statistical Methods, Forecasting, Physical Sciences, Mathematics, Statistics (Mathematics)

Terms of Use

This article is made available under the terms and conditions applicable to Other Posted Material (LAA), as set forth at Terms of Service

Endorsement

Review

Supplemented By

Referenced By

Related Stories