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Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction

BACKGROUND: Electrocardiographic (ECG) parameters are regarded as intermediate phenotypes of cardiac arrhythmias. Insight into the genetic underpinnings of these parameters is expected to contribute to the understanding of cardiac arrhythmia mechanisms. Here we used HXB/BXH recombinant inbred rat st...

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Autores principales: Adriaens, Michiel E., Lodder, Elisabeth M., Moreno‐Moral, Aida, Šilhavý, Jan, Heinig, Matthias, Glinge, Charlotte, Belterman, Charly, Wolswinkel, Rianne, Petretto, Enrico, Pravenec, Michal, Remme, Carol Ann, Bezzina, Connie R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6404199/
https://www.ncbi.nlm.nih.gov/pubmed/30608189
http://dx.doi.org/10.1161/JAHA.118.009243
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author Adriaens, Michiel E.
Lodder, Elisabeth M.
Moreno‐Moral, Aida
Šilhavý, Jan
Heinig, Matthias
Glinge, Charlotte
Belterman, Charly
Wolswinkel, Rianne
Petretto, Enrico
Pravenec, Michal
Remme, Carol Ann
Bezzina, Connie R.
author_facet Adriaens, Michiel E.
Lodder, Elisabeth M.
Moreno‐Moral, Aida
Šilhavý, Jan
Heinig, Matthias
Glinge, Charlotte
Belterman, Charly
Wolswinkel, Rianne
Petretto, Enrico
Pravenec, Michal
Remme, Carol Ann
Bezzina, Connie R.
author_sort Adriaens, Michiel E.
collection PubMed
description BACKGROUND: Electrocardiographic (ECG) parameters are regarded as intermediate phenotypes of cardiac arrhythmias. Insight into the genetic underpinnings of these parameters is expected to contribute to the understanding of cardiac arrhythmia mechanisms. Here we used HXB/BXH recombinant inbred rat strains to uncover genetic loci and candidate genes modulating ECG parameters. METHODS AND RESULTS: RR interval, PR interval, QRS duration, and QTc interval were measured from ECGs obtained in 6 male rats from each of the 29 available HXB/BXH recombinant inbred strains. Genes at loci displaying significant quantitative trait loci (QTL) effects were prioritized by assessing the presence of protein‐altering variants, and by assessment of cis expression QTL (eQTL) effects and correlation of transcript abundance to the respective trait in the heart. Cardiac RNA‐seq data were additionally used to generate gene co‐expression networks. QTL analysis of ECG parameters identified 2 QTL for PR interval, respectively, on chromosomes 10 and 17. At the chromosome 10 QTL, cis‐eQTL effects were identified for Acbd4, Cd300lg, Fam171a2, and Arhgap27; the transcript abundance in the heart of these 4 genes was correlated with PR interval. At the chromosome 17 QTL, a cis‐eQTL was uncovered for Nhlrc1 candidate gene; the transcript abundance of this gene was also correlated with PR interval. Co‐expression analysis furthermore identified 50 gene networks, 6 of which were correlated with PR interval or QRS duration, both parameters of cardiac conduction. CONCLUSIONS: These newly identified genetic loci and gene networks associated with the ECG parameters of cardiac conduction provide a starting point for future studies with the potential of identifying novel mechanisms underlying cardiac electrical function.
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spelling pubmed-64041992019-03-18 Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction Adriaens, Michiel E. Lodder, Elisabeth M. Moreno‐Moral, Aida Šilhavý, Jan Heinig, Matthias Glinge, Charlotte Belterman, Charly Wolswinkel, Rianne Petretto, Enrico Pravenec, Michal Remme, Carol Ann Bezzina, Connie R. J Am Heart Assoc Original Research BACKGROUND: Electrocardiographic (ECG) parameters are regarded as intermediate phenotypes of cardiac arrhythmias. Insight into the genetic underpinnings of these parameters is expected to contribute to the understanding of cardiac arrhythmia mechanisms. Here we used HXB/BXH recombinant inbred rat strains to uncover genetic loci and candidate genes modulating ECG parameters. METHODS AND RESULTS: RR interval, PR interval, QRS duration, and QTc interval were measured from ECGs obtained in 6 male rats from each of the 29 available HXB/BXH recombinant inbred strains. Genes at loci displaying significant quantitative trait loci (QTL) effects were prioritized by assessing the presence of protein‐altering variants, and by assessment of cis expression QTL (eQTL) effects and correlation of transcript abundance to the respective trait in the heart. Cardiac RNA‐seq data were additionally used to generate gene co‐expression networks. QTL analysis of ECG parameters identified 2 QTL for PR interval, respectively, on chromosomes 10 and 17. At the chromosome 10 QTL, cis‐eQTL effects were identified for Acbd4, Cd300lg, Fam171a2, and Arhgap27; the transcript abundance in the heart of these 4 genes was correlated with PR interval. At the chromosome 17 QTL, a cis‐eQTL was uncovered for Nhlrc1 candidate gene; the transcript abundance of this gene was also correlated with PR interval. Co‐expression analysis furthermore identified 50 gene networks, 6 of which were correlated with PR interval or QRS duration, both parameters of cardiac conduction. CONCLUSIONS: These newly identified genetic loci and gene networks associated with the ECG parameters of cardiac conduction provide a starting point for future studies with the potential of identifying novel mechanisms underlying cardiac electrical function. John Wiley and Sons Inc. 2018-10-23 /pmc/articles/PMC6404199/ /pubmed/30608189 http://dx.doi.org/10.1161/JAHA.118.009243 Text en © 2018 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Original Research
Adriaens, Michiel E.
Lodder, Elisabeth M.
Moreno‐Moral, Aida
Šilhavý, Jan
Heinig, Matthias
Glinge, Charlotte
Belterman, Charly
Wolswinkel, Rianne
Petretto, Enrico
Pravenec, Michal
Remme, Carol Ann
Bezzina, Connie R.
Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction
title Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction
title_full Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction
title_fullStr Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction
title_full_unstemmed Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction
title_short Systems Genetics Approaches in Rat Identify Novel Genes and Gene Networks Associated With Cardiac Conduction
title_sort systems genetics approaches in rat identify novel genes and gene networks associated with cardiac conduction
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6404199/
https://www.ncbi.nlm.nih.gov/pubmed/30608189
http://dx.doi.org/10.1161/JAHA.118.009243
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