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A Phenotyping Regimen for Genetically Modified Mice Used to Study Genes Implicated in Human Diseases of Aging
Published on: July 14, 2016
The TMEM43 S358L mutation affects cardiac, small intestine, and metabolic homeostasis in a knock-in mouse model
Buyan-Ochir Orgil1,2, Undral Munkhsaikhan3, Joseph F Pierre4
1Department of Pediatrics, College of Medicine, University of Tennessee Health Science Center, Memphis, Tennessee, United States.
Abstract:
The transmembrane protein 43 (TMEM43/LUMA) p.S358L mutation causes arrhythmogenic cardiomyopathy named as ARVC5, a fully penetrant disease with high risk of ventricular arrhythmias, sudden death, and heart failure. Male gender and vigorous exercise independently predicted deleterious outcome. Our systems genetics analysis revealed the importance of Tmem43 for cardiac and metabolic pathways associated with elevated lipid absorption from small intestine. This study sought to delineate gender-specific cardiac, intestinal, and metabolic phenotypes in vivo and investigate underlying pathophysiological mechanisms of S358L mutation. Serial echocardiography, surface electrocardiography (ECG), treadmill running, and body EchoMRI have been used in knock-in heterozygous (Tmem43), homozygous (Tmem43), and wildtype (Tmem43) littermate mice. Electron microscopy, histology, immunohistochemistry, transcriptome, and protein analysis have been performed in cardiac and intestinal tissues. Systolic dysfunction was apparent in 3-mo-old Tmem43 and 6-mo-old Tmem43 mutants. Both mutant lines displayed intolerance to acute stress at 6 mo of age, arrhythmias, fibro-fatty infiltration, and subcellular abnormalities in the myocardium. Microarray analysis found significantly differentially expressed genes between left ventricular (LV) and right ventricular (RV) myocardium. Mutants displayed diminished PPARG activities and significantly reduced TMEM43 and β-catenin expression in the heart, whereas junctional plakoglobin (JUP) translocated into nuclei of mutant cardiomyocytes. Conversely, elongated villi, fatty infiltration, and overexpression of gut epithelial proliferation markers, β-catenin and Ki-67, were evident in small intestine of mutants. We defined Tmem43 S358L-induced pathological effects on cardiac and intestinal homeostasis via distinctly disturbed WNT-β-catenin and PPARG signaling thereby contributing to ARVC5 pathophysiology. Results suggest that cardiometabolic assessment in mutation carriers may be important for predictive and personalized care.NEW & NOTEWORTHY This manuscript describes the findings of our investigation of cardiac, small intestine, and metabolic features of Tmem43-S358L mouse model. By investigating interorgan pathologies, we uncovered multiple mechanisms of the S358L-induced disease, and these unique mechanisms likely appear to contribute to the disease pathogenesis. We hope our findings are important and novel and open new avenues in the hunting for additional diagnostic and therapeutic targets in subjects carrying TMEM43 mutation.
Insights
The TMEM43 p.S358L mutation causes arrhythmogenic cardiomyopathy (ARVC5), affecting cardiac and intestinal pathways. This study reveals gender-specific phenotypes and disturbed WNT-β-catenin/PPARG signaling, offering insights for personalized care.
Area of Science:
- Cardiovascular Genetics
- Molecular Cardiology
- Gastroenterology
Background:
- The transmembrane protein 43 (TMEM43) p.S358L mutation leads to arrhythmogenic cardiomyopathy (ARVC5), a severe heart condition.
- Previous studies indicated TMEM43's role in cardiac and metabolic pathways, with potential links to intestinal lipid absorption.
Purpose of the Study:
- To investigate gender-specific cardiac, intestinal, and metabolic phenotypes in a mouse model with the TMEM43 S358L mutation.
- To elucidate the underlying pathophysiological mechanisms contributing to ARVC5.
Main Methods:
- Utilized knock-in heterozygous and homozygous Tmem43 S358L mutant mice and wildtype littermates.
- Employed serial echocardiography, ECG, treadmill tests, EchoMRI, electron microscopy, histology, and molecular analyses (transcriptome, protein).
- Examined cardiac and intestinal tissues for structural, functional, and molecular changes.
Main Results:
- Mutant mice exhibited systolic dysfunction, stress intolerance, arrhythmias, and fibro-fatty myocardial infiltration.
- Significant differences in gene expression between left and right ventricles were observed.
- Mutants showed diminished PPARG activity, reduced TMEM43/β-catenin in the heart, nuclear translocation of JUP, and intestinal changes including villi elongation, fatty infiltration, and increased proliferation markers.
Conclusions:
- The Tmem43 S358L mutation disrupts cardiac and intestinal homeostasis through disturbed WNT-β-catenin and PPARG signaling, contributing to ARVC5.
- Findings highlight the importance of interorgan pathology in ARVC5 pathogenesis.
- Suggests cardiometabolic assessment is crucial for predictive and personalized care in mutation carriers.
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