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Heart morphogenesis gene regulatory networks revealed by temporal expression analysis
Author(s) -
Jonathon T. Hill,
Bradley L. Demarest,
Megan Smith,
Bushra Gorsi,
H. Joseph Yost
Publication year - 2017
Publication title -
development
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.15
H-Index - 36
eISSN - 1477-9129
pISSN - 0950-1991
DOI - 10.1242/dev.154146
Subject(s) - biology , zebrafish , gene regulatory network , heart development , morphogenesis , transcription factor , genetics , regulation of gene expression , gene , gene expression , computational biology , gene expression profiling , epigenetics , subfunctionalization , microbiology and biotechnology , gene family , embryonic stem cell
During embryogenesis, the heart forms as a linear tube that then undergoes multiple simultaneous morphogenetic events to obtain its mature shape. To understand the gene regulatory networks (GRNs) driving this phase of heart development, during which many congenital heart disease malformations likely arise, we conducted an RNA-seq time course in zebrafish from 30 hpf to 72 hpf and identified 5,861 genes with altered expression. We then clustered the genes by temporal expression pattern, identified transcription factor binding motifs enriched in each cluster, and generated a model GRN for the major gene batteries in heart morphogenesis. This approach predicted hundreds of regulatory interactions and found batteries enriched in specific cell and tissue types, indicating that the approach can be used to narrow the search for novel genetic markers and regulatory interactions. Subsequent analyses confirmed the GRN using two mutants, Tbx5 and Nkx2-5, and identified sets of duplicated zebrafish genes that do not show temporal subfunctionalization. This dataset provides an essential resource for future studies on the genetic/epigenetic pathways implicated in congenital heart defects and the mechanisms of cardiac transcriptional regulation.

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