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Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N

Hypertrophic cardiomyopathy (HCM) is the most common heritable cardiovascular disease and often results in cardiac remodeling and an increased incidence of sudden cardiac arrest (SCA) and death, especially in youth and young adults. Among thousands of different variants found in HCM patients, varian...

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Autores principales: Shafaattalab, Sanam, Li, Alison Y, Gunawan, Marvin G, Kim, BaRun, Jayousi, Farah, Maaref, Yasaman, Song, Zhen, Weiss, James N, Solaro, R. John, Qu, Zhilin, Tibbits, Glen F
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8718794/
https://www.ncbi.nlm.nih.gov/pubmed/34977031
http://dx.doi.org/10.3389/fcell.2021.787581
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author Shafaattalab, Sanam
Li, Alison Y
Gunawan, Marvin G
Kim, BaRun
Jayousi, Farah
Maaref, Yasaman
Song, Zhen
Weiss, James N
Solaro, R. John
Qu, Zhilin
Tibbits, Glen F
author_facet Shafaattalab, Sanam
Li, Alison Y
Gunawan, Marvin G
Kim, BaRun
Jayousi, Farah
Maaref, Yasaman
Song, Zhen
Weiss, James N
Solaro, R. John
Qu, Zhilin
Tibbits, Glen F
author_sort Shafaattalab, Sanam
collection PubMed
description Hypertrophic cardiomyopathy (HCM) is the most common heritable cardiovascular disease and often results in cardiac remodeling and an increased incidence of sudden cardiac arrest (SCA) and death, especially in youth and young adults. Among thousands of different variants found in HCM patients, variants of TNNT2 (cardiac troponin T—TNNT2) are linked to increased risk of ventricular arrhythmogenesis and sudden death despite causing little to no cardiac hypertrophy. Therefore, studying the effect of TNNT2 variants on cardiac propensity for arrhythmogenesis can pave the way for characterizing HCM in susceptible patients before sudden cardiac arrest occurs. In this study, a TNNT2 variant, I79N, was generated in human cardiac recombinant/reconstituted thin filaments (hcRTF) to investigate the effect of the mutation on myofilament Ca(2+) sensitivity and Ca(2+) dissociation rate using steady-state and stopped-flow fluorescence techniques. The results revealed that the I79N variant significantly increases myofilament Ca(2+) sensitivity and decreases the Ca(2+) off-rate constant (k (off)). To investigate further, a heterozygous I79N(+/−) TNNT2 variant was introduced into human-induced pluripotent stem cells using CRISPR/Cas9 and subsequently differentiated into ventricular cardiomyocytes (hiPSC-CMs). To study the arrhythmogenic properties, monolayers of I79N(+/−) hiPSC-CMs were studied in comparison to their isogenic controls. Arrhythmogenesis was investigated by measuring voltage (V (m)) and cytosolic Ca(2+) transients over a range of stimulation frequencies. An increasing stimulation frequency was applied to the cells, from 55 to 75 bpm. The results of this protocol showed that the TnT-I79N cells had reduced intracellular Ca(2+) transients due to the enhanced cytosolic Ca(2+) buffering. These changes in Ca(2+) handling resulted in beat-to-beat instability and triangulation of the cardiac action potential, which are predictors of arrhythmia risk. While wild-type (WT) hiPSC-CMs were accurately entrained to frequencies of at least 150 bpm, the I79N hiPSC-CMs demonstrated clear patterns of alternans for both V (m) and Ca(2+) transients at frequencies >75 bpm. Lastly, a transcriptomic analysis was conducted on WT vs. I79N(+/−) TNNT2 hiPSC-CMs using a custom NanoString codeset. The results showed a significant upregulation of NPPA (atrial natriuretic peptide), NPPB (brain natriuretic peptide), Notch signaling pathway components, and other extracellular matrix (ECM) remodeling components in I79N(+/−) vs. the isogenic control. This significant shift demonstrates that this missense in the TNNT2 transcript likely causes a biophysical trigger, which initiates this significant alteration in the transcriptome. This TnT-I79N hiPSC-CM model not only reproduces key cellular features of HCM-linked mutations but also suggests that this variant causes uncharted pro-arrhythmic changes to the human action potential and gene expression.
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spelling pubmed-87187942022-01-01 Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N Shafaattalab, Sanam Li, Alison Y Gunawan, Marvin G Kim, BaRun Jayousi, Farah Maaref, Yasaman Song, Zhen Weiss, James N Solaro, R. John Qu, Zhilin Tibbits, Glen F Front Cell Dev Biol Cell and Developmental Biology Hypertrophic cardiomyopathy (HCM) is the most common heritable cardiovascular disease and often results in cardiac remodeling and an increased incidence of sudden cardiac arrest (SCA) and death, especially in youth and young adults. Among thousands of different variants found in HCM patients, variants of TNNT2 (cardiac troponin T—TNNT2) are linked to increased risk of ventricular arrhythmogenesis and sudden death despite causing little to no cardiac hypertrophy. Therefore, studying the effect of TNNT2 variants on cardiac propensity for arrhythmogenesis can pave the way for characterizing HCM in susceptible patients before sudden cardiac arrest occurs. In this study, a TNNT2 variant, I79N, was generated in human cardiac recombinant/reconstituted thin filaments (hcRTF) to investigate the effect of the mutation on myofilament Ca(2+) sensitivity and Ca(2+) dissociation rate using steady-state and stopped-flow fluorescence techniques. The results revealed that the I79N variant significantly increases myofilament Ca(2+) sensitivity and decreases the Ca(2+) off-rate constant (k (off)). To investigate further, a heterozygous I79N(+/−) TNNT2 variant was introduced into human-induced pluripotent stem cells using CRISPR/Cas9 and subsequently differentiated into ventricular cardiomyocytes (hiPSC-CMs). To study the arrhythmogenic properties, monolayers of I79N(+/−) hiPSC-CMs were studied in comparison to their isogenic controls. Arrhythmogenesis was investigated by measuring voltage (V (m)) and cytosolic Ca(2+) transients over a range of stimulation frequencies. An increasing stimulation frequency was applied to the cells, from 55 to 75 bpm. The results of this protocol showed that the TnT-I79N cells had reduced intracellular Ca(2+) transients due to the enhanced cytosolic Ca(2+) buffering. These changes in Ca(2+) handling resulted in beat-to-beat instability and triangulation of the cardiac action potential, which are predictors of arrhythmia risk. While wild-type (WT) hiPSC-CMs were accurately entrained to frequencies of at least 150 bpm, the I79N hiPSC-CMs demonstrated clear patterns of alternans for both V (m) and Ca(2+) transients at frequencies >75 bpm. Lastly, a transcriptomic analysis was conducted on WT vs. I79N(+/−) TNNT2 hiPSC-CMs using a custom NanoString codeset. The results showed a significant upregulation of NPPA (atrial natriuretic peptide), NPPB (brain natriuretic peptide), Notch signaling pathway components, and other extracellular matrix (ECM) remodeling components in I79N(+/−) vs. the isogenic control. This significant shift demonstrates that this missense in the TNNT2 transcript likely causes a biophysical trigger, which initiates this significant alteration in the transcriptome. This TnT-I79N hiPSC-CM model not only reproduces key cellular features of HCM-linked mutations but also suggests that this variant causes uncharted pro-arrhythmic changes to the human action potential and gene expression. Frontiers Media S.A. 2021-12-17 /pmc/articles/PMC8718794/ /pubmed/34977031 http://dx.doi.org/10.3389/fcell.2021.787581 Text en Copyright © 2021 Shafaattalab, Li, Gunawan, Kim, Jayousi, Maaref, Song, Weiss, Solaro, Qu and Tibbits. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cell and Developmental Biology
Shafaattalab, Sanam
Li, Alison Y
Gunawan, Marvin G
Kim, BaRun
Jayousi, Farah
Maaref, Yasaman
Song, Zhen
Weiss, James N
Solaro, R. John
Qu, Zhilin
Tibbits, Glen F
Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N
title Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N
title_full Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N
title_fullStr Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N
title_full_unstemmed Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N
title_short Mechanisms of Arrhythmogenicity of Hypertrophic Cardiomyopathy-Associated Troponin T (TNNT2) Variant I79N
title_sort mechanisms of arrhythmogenicity of hypertrophic cardiomyopathy-associated troponin t (tnnt2) variant i79n
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8718794/
https://www.ncbi.nlm.nih.gov/pubmed/34977031
http://dx.doi.org/10.3389/fcell.2021.787581
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