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March 21, 2018JCI Insight42 citationsOpen Access

Allele-specific differences in transcriptome, miRNome, and mitochondrial function in two hypertrophic cardiomyopathy mouse models

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SVStyliani VakrouRFRyuya FukunagaDFD. Brian Foster

Key Result

Young mice with R92W-TnT and R403Q-αMyHC mutations exhibited distinct allele-specific differences in their transcriptome, miRNome, and mitochondrial function prior to developing hypertrophic cardiomyopathy.

PICO

P
Population
Hypertrophic cardiomyopathy (n=49)
I
Intervention / Comparator
R403Q-αMyHC and R92W-TnT mutations vs Wild-type littermate controls
O
Primary Outcome
Differences in transcriptome, miRNome, and mitochondrial function

Limitations

  • Findings from genetic mouse models may not fully translate to human hypertrophic cardiomyopathy patients.

Abstract

Hypertrophic cardiomyopathy (HCM) stems from mutations in sarcomeric proteins that elicit distinct biophysical sequelae, which in turn may yield radically different intracellular signaling and molecular pathologic profiles. These signaling events remain largely unaddressed by clinical trials that have selected patients based on clinical HCM diagnosis, irrespective of genotype. In this study, we determined how two mouse models of HCM differ, with respect to cellular/mitochondrial function and molecular biosignatures, at an early stage of disease. We show that hearts from young R92W-TnT and R403Q-αMyHC mutation-bearing mice differ in their transcriptome, miRNome, intracellular redox environment, mitochondrial antioxidant defense mechanisms, and susceptibility to mitochondrial permeability transition pore opening. Pathway analysis of mRNA-sequencing data and microRNA profiles indicate that R92W-TnT mutants exhibit a biosignature consistent with activation of profibrotic TGF-β signaling. Our results suggest that the oxidative environment and mitochondrial impairment in young R92W-TnT mice promote activation of TGF-β signaling that foreshadows a pernicious phenotype in young individuals. Of the two mutations, R92W-TnT is more likely to benefit from anti-TGF-β signaling effects conferred by angiotensin receptor blockers and may be responsive to mitochondrial antioxidant strategies in the early stage of disease. Molecular and functional profiling may therefore serve as aids to guide precision therapy for HCM.

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Cite This Study

Vakrou et al. (2018) studied Hypertrophic cardiomyopathy (n=49). R403Q-αMyHC and R92W-TnT mutations vs. Wild-type littermate controls was evaluated on Differences in transcriptome, miRNome, and mitochondrial function. Young mice with R92W-TnT and R403Q-αMyHC mutations exhibited distinct allele-specific differences in their transcriptome, miRNome, and mitochondrial function prior to developing hypertrophic cardiomyopathy.

synapsesocial.com/papers/6a10db16acd1dbe0646483d2https://doi.org/10.1172/jci.insight.94493
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Temporal and mutation-specific alterations in Ca2+ homeostasis differentially determine the progression of cTnT-related cardiomyopathies in murine models2009 · 64 citations
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  5. 5Decreased energetics in murine hearts bearing the R92Q mutation in cardiac troponin T2003 · 123 citations