Abstract
The control of RNA alternative splicing is critical for generating biological diversity. Despite emerging genome-wide technologies to study RNA complexity, reliable and comprehensive RNA-regulatory networks have not been defined. Here, we used Bayesian networks to probabilistically model diverse data sets and predict the target networks of specific regulators. We applied this strategy to identify approximately 700 alternative splicing events directly regulated by the neuron-specific factor Nova in the mouse brain, integrating RNA-binding data, splicing microarray data, Nova-binding motifs, and evolutionary signatures. The resulting integrative network revealed combinatorial regulation by Nova and the neuronal splicing factor Fox, interplay between phosphorylation and splicing, and potential links to neurologic disease. Thus, we have developed a general approach to understanding mammalian RNA regulation at the systems level.
MeSH Terms
Alternative Splicing
Animals
Antigens, Neoplasm/metabolism
Artificial Intelligence
Bayes Theorem
Binding Sites
Brain/metabolism
Cell Line
Computational Biology
Evolution, Molecular
Exons
Gene Regulatory Networks
Humans
Introns
Mice
Models, Genetic
Models, Statistical
Nerve Tissue Proteins/metabolism
Nervous System Diseases/genetics
Neuro-Oncological Ventral Antigen
Oligonucleotide Array Sequence Analysis
Phosphorylation
Protein Binding
Proteins/genetics,metabolism
RNA/metabolism
RNA-Binding Proteins/metabolism
Chemicals
Antigens, Neoplasm
Nerve Tissue Proteins
Neuro-Oncological Ventral Antigen
Nova2 protein, mouse
Proteins
RNA-Binding Proteins
RNA
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Zhang Chaolin
Laboratory of Molecular Neuro-Oncology, Howard Hughes Medical Institute, The Rockefeller University, 1230 York Avenue, New York, NY 10021, USA. czhang@rockefeller.edu
Frias Maria A
Mele Aldo
Ruggiu Matteo
Eom Taesun
Marney Christina B
Wang Huidong
Licatalosi Donny D
Fak John J
Darnell Robert B
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