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Mechanosensitive Gene Regulation by Myocardin-Related Transcription Factors Is Required for Cardiomyocyte Integrity in Load-Induced Ventricular Hypertrophy.
Trembley, Michael A; Quijada, Pearl; Agullo-Pascual, Esperanza; Tylock, Kevin M; Colpan, Mert; Dirkx, Ronald A; Myers, Jason R; Mickelsen, Deanne M; de Mesy Bentley, Karen; Rothenberg, Eli; Moravec, Christine S; Alexis, Jeffrey D; Gregorio, Carol C; Dirksen, Robert T; Delmar, Mario; Small, Eric M.
Afiliación
  • Trembley MA; Department of Pharmacology and Physiology (M.A.T., K.M.T., R.T.D., E.M.S.), University of Rochester, NY.
  • Quijada P; Aab Cardiovascular Research Institute, Department of Medicine (M.A.T., P.Q., R.A.D., D.M.M., E.M.S.), University of Rochester, NY.
  • Agullo-Pascual E; Aab Cardiovascular Research Institute, Department of Medicine (M.A.T., P.Q., R.A.D., D.M.M., E.M.S.), University of Rochester, NY.
  • Tylock KM; Leon H. Charney Division of Cardiology, Department of Medicine (M.D., E.A.-P.), New York University School of Medicine, NY.
  • Colpan M; Department of Pharmacology and Physiology (M.A.T., K.M.T., R.T.D., E.M.S.), University of Rochester, NY.
  • Dirkx RA; Department of Cellular and Molecular Medicine, Sarver Molecular Cardiovascular Research Program, University of Arizona, Tucson (M.C., C.C.G.).
  • Myers JR; Aab Cardiovascular Research Institute, Department of Medicine (M.A.T., P.Q., R.A.D., D.M.M., E.M.S.), University of Rochester, NY.
  • Mickelsen DM; Genomics Research Center (J.R.M.), University of Rochester, NY.
  • de Mesy Bentley K; Aab Cardiovascular Research Institute, Department of Medicine (M.A.T., P.Q., R.A.D., D.M.M., E.M.S.), University of Rochester, NY.
  • Rothenberg E; Department of Pathology (K.d.M.B.), University of Rochester, NY.
  • Moravec CS; Department of Biochemistry and Molecular Pharmacology (E.R.), New York University School of Medicine, NY.
  • Alexis JD; Department of Molecular Cardiology, Cleveland Clinic, OH (C.S.M.).
  • Gregorio CC; Division of Cardiology, Department of Medicine (J.D.A.), University of Rochester, NY.
  • Dirksen RT; Department of Cellular and Molecular Medicine, Sarver Molecular Cardiovascular Research Program, University of Arizona, Tucson (M.C., C.C.G.).
  • Delmar M; Department of Pharmacology and Physiology (M.A.T., K.M.T., R.T.D., E.M.S.), University of Rochester, NY.
  • Small EM; Leon H. Charney Division of Cardiology, Department of Medicine (M.D., E.A.-P.), New York University School of Medicine, NY.
Circulation ; 138(17): 1864-1878, 2018 10 23.
Article en En | MEDLINE | ID: mdl-29716942
ABSTRACT

BACKGROUND:

Hypertrophic cardiomyocyte growth and dysfunction accompany various forms of heart disease. The mechanisms responsible for transcriptional changes that affect cardiac physiology and the transition to heart failure are not well understood. The intercalated disc (ID) is a specialized intercellular junction coupling cardiomyocyte force transmission and propagation of electrical activity. The ID is gaining attention as a mechanosensitive signaling hub and hotspot for causative mutations in cardiomyopathy.

METHODS:

Transmission electron microscopy, confocal microscopy, and single-molecule localization microscopy were used to examine changes in ID structure and protein localization in the murine and human heart. We conducted detailed cardiac functional assessment and transcriptional profiling of mice lacking myocardin-related transcription factor (MRTF)-A and MRTF-B specifically in adult cardiomyocytes to evaluate the role of mechanosensitive regulation of gene expression in load-induced ventricular remodeling.

RESULTS:

We found that MRTFs localize to IDs in the healthy human heart and accumulate in the nucleus in heart failure. Although mice lacking MRTFs in adult cardiomyocytes display normal cardiac physiology at baseline, pressure overload leads to rapid heart failure characterized by sarcomere disarray, ID disintegration, chamber dilation and wall thinning, cardiac functional decline, and partially penetrant acute lethality. Transcriptional profiling reveals a program of actin cytoskeleton and cardiomyocyte adhesion genes driven by MRTFs during pressure overload. Indeed, conspicuous remodeling of gap junctions at IDs identified by single-molecule localization microscopy may partially stem from a reduction in Mapre1 expression, which we show is a direct mechanosensitive MRTF target.

CONCLUSIONS:

Our study describes a novel paradigm in which MRTFs control an acute mechanosensitive signaling circuit that coordinates cross-talk between the actin and microtubule cytoskeleton and maintains ID integrity and cardiomyocyte homeostasis in heart disease.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Factores de Transcripción / Transactivadores / Hipertrofia Ventricular Izquierda / Miocitos Cardíacos / Mecanotransducción Celular / Insuficiencia Cardíaca Tipo de estudio: Observational_studies / Prognostic_studies / Risk_factors_studies Idioma: En Revista: Circulation Año: 2018 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Factores de Transcripción / Transactivadores / Hipertrofia Ventricular Izquierda / Miocitos Cardíacos / Mecanotransducción Celular / Insuficiencia Cardíaca Tipo de estudio: Observational_studies / Prognostic_studies / Risk_factors_studies Idioma: En Revista: Circulation Año: 2018 Tipo del documento: Article
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