Cardiac muscle–restricted partial loss of Nos1ap expression has limited but significant impact on electrocardiographic features

Author:

Smith Alexa1,Auer Dallas2,Johnson Morgan1,Sanchez Ernesto1,Ross Holly2,Ward Christopher3,Chakravarti Aravinda24,Kapoor Ashish12

Affiliation:

1. Institute of Molecular Medicine, McGovern Medical School, University of Texas Health Science Center at Houston , Houston, TX 77030, USA

2. McKusick-Nathans Institute of Genetic Medicine, Johns Hopkins University School of Medicine , Baltimore, MD 21205, USA

3. Department of Molecular Physiology and Biophysics, Baylor College of Medicine , Houston, TX 77030, USA

4. Center for Human Genetics and Genomics, New York University School of Medicine , New York, NY 10016, USA

Abstract

Abstract Genome-wide association studies have identified sequence polymorphisms in a functional enhancer of the NOS1AP gene as the most common genetic regulator of QT interval and human cardiac NOS1AP gene expression in the general population. Functional studies based on in vitro overexpression in murine cardiomyocytes and ex vivo knockdown in zebrafish embryonic hearts, by us and others, have also demonstrated that NOS1AP expression levels can alter cellular electrophysiology. Here, to explore the role of NOS1AP in cardiac electrophysiology at an organismal level, we generated and characterized constitutive and heart muscle–restricted Nos1ap knockout mice to assess whether NOS1AP disruption alters the QT interval in vivo. Constitutive loss of Nos1ap led to genetic background-dependent variable lethality at or right before birth. Heart muscle–restricted Nos1ap knockout, generated using cardiac-specific alpha-myosin heavy chain promoter-driven tamoxifen-inducible Cre, resulted in tissue-level Nos1ap expression reduced by half. This partial loss of expression had no detectable effect on the QT interval or other electrocardiographic and echocardiographic parameters, except for a small but significant reduction in the QRS interval. Given that challenges associated with defining the end of the T wave on murine electrocardiogram can limit identification of subtle effects on the QT interval and that common noncoding NOS1AP variants are also associated with the QRS interval, our findings support the role of NOS1AP in regulation of the cardiac electrical cycle.

Funder

McGovern Medical School UTHealth

US NIH

Mouse Metabolism and Phenotyping Core

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology

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