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Citations to this article

Genetic variation in T-box binding element functionally affects SCN5A/SCN10A enhancer
Malou van den Boogaard, … , Phil Barnett, Vincent M. Christoffels
Malou van den Boogaard, … , Phil Barnett, Vincent M. Christoffels
Published June 18, 2012
Citation Information: J Clin Invest. 2012;122(7):2519-2530. https://doi.org/10.1172/JCI62613.
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Genetic variation in T-box binding element functionally affects SCN5A/SCN10A enhancer

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Abstract

The contraction pattern of the heart relies on the activation and conduction of the electrical impulse. Perturbations of cardiac conduction have been associated with congenital and acquired arrhythmias as well as cardiac arrest. The pattern of conduction depends on the regulation of heterogeneous gene expression by key transcription factors and transcriptional enhancers. Here, we assessed the genome-wide occupation of conduction system–regulating transcription factors TBX3, NKX2-5, and GATA4 and of enhancer-associated coactivator p300 in the mouse heart, uncovering cardiac enhancers throughout the genome. Many of the enhancers colocalized with ion channel genes repressed by TBX3, including the clustered sodium channel genes Scn5a, essential for cardiac function, and Scn10a. We identified 2 enhancers in the Scn5a/Scn10a locus, which were regulated by TBX3 and its family member and activator, TBX5, and are functionally conserved in humans. We also provided evidence that a SNP in the SCN10A enhancer associated with alterations in cardiac conduction patterns in humans disrupts TBX3/TBX5 binding and reduces the cardiac activity of the enhancer in vivo. Thus, the identification of key regulatory elements for cardiac conduction helps to explain how genetic variants in noncoding regulatory DNA sequences influence the regulation of cardiac conduction and the predisposition for cardiac arrhythmias.

Authors

Malou van den Boogaard, L.Y. Elaine Wong, Federico Tessadori, Martijn L. Bakker, Lisa K. Dreizehnter, Vincent Wakker, Connie R. Bezzina, Peter A.C. ‘t Hoen, Jeroen Bakkers, Phil Barnett, Vincent M. Christoffels

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Trends in genetics : TIG 2016
NKX2-5 mutations causative for congenital heart disease retain functionality and are directed to hundreds of targets: ( A ) Structure of the human NKX2-5 protein (TN, tinman domain; NK2SD, NK-2 specific domain; YRD, tyrosine-rich domain). Bars and arrows indicate missense and termination mutations associated with congenital heart disease (CHD), respectively. ( B ) Top over-represented motifs discovered de novo in NKX2-5 peaks using Trawler or Weeder . NKX2-5, GATA, and Nuclear Factor 1 (NF1) binding motifs deposited in TRANSFAC are shown. ( C ) Distribution of NKX2-5, GATA, and NF1 binding sequences in NKX2-5 peaks. ( D ) Yeast-two-hybrid assay. NKX2-5 and NF1 proteins were fused to Gal4-activation and DNA-binding domains, respectively. Positive signs (+) show interaction as growth on selective medium from three independent experiments. ( E ) Normalized median expression of NKX2-5-target genes in 91 murine cell types (data collected from BioGPS ). Tissues with the highest median expressions are shown in colour, including heart (red). ( F ) Expression of NKX2-5 target genes and random genes in HL-1 cells. Data collected from (Mace et al., 2009)
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Cell Reports 2015
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Cellular and Molecular Life Sciences 2015
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Nature Genetics 2013
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PloS one 2013
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PloS one 2013
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PLoS genetics 2013
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CJ Boogerd, SM Evans
Circulation research 2013

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