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Published in: Heart Failure Reviews 6/2016

01-11-2016

Myocardial transcription factors in diastolic dysfunction: clues for model systems and disease

Authors: Alexander T. Mikhailov, Mario Torrado

Published in: Heart Failure Reviews | Issue 6/2016

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Abstract

There are multiple intrinsic mechanisms for diastolic dysfunction ranging from molecular to structural derangements in ventricular myocardium. The molecular mechanisms regulating the progression from normal diastolic function to severe dysfunction still remain poorly understood. Recent studies suggest a potentially important role of core cardio-enriched transcription factors (TFs) in the control of cardiac diastolic function in health and disease through their ability to regulate the expression of target genes involved in the process of adaptive and maladaptive cardiac remodeling. The current relevant findings on the role of a variety of such TFs (TBX5, GATA-4/6, SRF, MYOCD, NRF2, and PITX2) in cardiac diastolic dysfunction and failure are updated, emphasizing their potential as promising targets for novel treatment strategies. In turn, the new animal models described here will be key tools in determining the underlying molecular mechanisms of disease. Since diastolic dysfunction is regulated by various TFs, which are also involved in cross talk with each other, there is a need for more in-depth research from a biomedical perspective in order to establish efficient therapeutic strategies.
Literature
3.
go back to reference Senni M, Paulus WJ, Gavazzi A, Fraser AG, Diez J, Solomon SD, Smiseth OA, Guazzi M, Lam CS, Maggioni AP et al (2014) New strategies for heart failure with preserved ejection fraction: the importance of targeted therapies for heart failure phenotypes. Eur Heart J 35:2797–2815. doi:10.1093/eurheartj/ehu204 PubMedPubMedCentralCrossRef Senni M, Paulus WJ, Gavazzi A, Fraser AG, Diez J, Solomon SD, Smiseth OA, Guazzi M, Lam CS, Maggioni AP et al (2014) New strategies for heart failure with preserved ejection fraction: the importance of targeted therapies for heart failure phenotypes. Eur Heart J 35:2797–2815. doi:10.​1093/​eurheartj/​ehu204 PubMedPubMedCentralCrossRef
5.
go back to reference Ferrari R, Bohm M, Cleland JG, Paulus WJ, Pieske B, Rapezzi C, Tavazzi L (2015) Heart failure with preserved ejection fraction: uncertainties and dilemmas. Eur J Heart Fail 17:665–671. doi:10.1002/ejhf.304 PubMedCrossRef Ferrari R, Bohm M, Cleland JG, Paulus WJ, Pieske B, Rapezzi C, Tavazzi L (2015) Heart failure with preserved ejection fraction: uncertainties and dilemmas. Eur J Heart Fail 17:665–671. doi:10.​1002/​ejhf.​304 PubMedCrossRef
10.
11.
go back to reference Hamdani N, Bishu KG, von Frieling-Salewsky M, Redfield MM, Linke WA (2013) Deranged myofilament phosphorylation and function in experimental heart failure with preserved ejection fraction. Cardiovasc Res 97:464–471. doi:10.1093/cvr/cvs353 PubMedCrossRef Hamdani N, Bishu KG, von Frieling-Salewsky M, Redfield MM, Linke WA (2013) Deranged myofilament phosphorylation and function in experimental heart failure with preserved ejection fraction. Cardiovasc Res 97:464–471. doi:10.​1093/​cvr/​cvs353 PubMedCrossRef
15.
go back to reference Phrommintikul A, Tran L, Kompa A, Wang B, Adrahtas A, Cantwell D, Kelly DJ, Krum H (2008) Effects of a Rho kinase inhibitor on pressure overload induced cardiac hypertrophy and associated diastolic dysfunction. Am J Physiol Heart Circ Physiol 294:H1804–H1814. doi:10.1152/ajpheart.01078.2007 PubMedCrossRef Phrommintikul A, Tran L, Kompa A, Wang B, Adrahtas A, Cantwell D, Kelly DJ, Krum H (2008) Effects of a Rho kinase inhibitor on pressure overload induced cardiac hypertrophy and associated diastolic dysfunction. Am J Physiol Heart Circ Physiol 294:H1804–H1814. doi:10.​1152/​ajpheart.​01078.​2007 PubMedCrossRef
16.
go back to reference Regan JA, Mauro AG, Carbone S, Marchetti C, Gill R, Mezzaroma E, Valle Raleigh J, Salloum FN, Van Tassell BW, Abbate A et al (2015) A mouse model of heart failure with preserved ejection fraction due to chronic infusion of a low subpressor dose of angiotensin II. Am J Physiol Heart Circ Physiol 309:H771–H778. doi:10.1152/ajpheart.00282.2015 PubMedPubMedCentral Regan JA, Mauro AG, Carbone S, Marchetti C, Gill R, Mezzaroma E, Valle Raleigh J, Salloum FN, Van Tassell BW, Abbate A et al (2015) A mouse model of heart failure with preserved ejection fraction due to chronic infusion of a low subpressor dose of angiotensin II. Am J Physiol Heart Circ Physiol 309:H771–H778. doi:10.​1152/​ajpheart.​00282.​2015 PubMedPubMedCentral
18.
go back to reference Ingle KA, Kain V, Goel M, Prabhu SD, Young ME, Halade GV (2015) Cardiomyocyte-specific Bmal1 deletion in mice triggers diastolic dysfunction, extracellular matrix response, and impaired resolution of inflammation. Am J Physiol Heart Circ Physiol 309:H1827–H1836. doi:10.1152/ajpheart.00608.2015 PubMedCrossRef Ingle KA, Kain V, Goel M, Prabhu SD, Young ME, Halade GV (2015) Cardiomyocyte-specific Bmal1 deletion in mice triggers diastolic dysfunction, extracellular matrix response, and impaired resolution of inflammation. Am J Physiol Heart Circ Physiol 309:H1827–H1836. doi:10.​1152/​ajpheart.​00608.​2015 PubMedCrossRef
19.
go back to reference Jia G, Habibi J, DeMarco VG, Martinez-Lemus LA, Ma L, Whaley-Connell AT, Aroor AR, Domeier TL, Zhu Y, Meininger GA et al (2015) Endothelial mineralocorticoid receptor deletion prevents diet-induced cardiac diastolic dysfunction in females. Hypertension 66:1159–1167. doi:10.1161/HYPERTENSIONAHA.115.06015 PubMed Jia G, Habibi J, DeMarco VG, Martinez-Lemus LA, Ma L, Whaley-Connell AT, Aroor AR, Domeier TL, Zhu Y, Meininger GA et al (2015) Endothelial mineralocorticoid receptor deletion prevents diet-induced cardiac diastolic dysfunction in females. Hypertension 66:1159–1167. doi:10.​1161/​HYPERTENSIONAHA.​115.​06015 PubMed
25.
30.
31.
go back to reference Arnolds DE, Liu F, Fahrenbach JP, Kim GH, Schillinger KJ, Smemo S, McNally EM, Nobrega MA, Patel VV, Moskowitz IP (2012) TBX5 drives Scn5a expression to regulate cardiac conduction system function. J Clin Invest 122:2509–2518. doi:10.1172/JCI62617 PubMedPubMedCentralCrossRef Arnolds DE, Liu F, Fahrenbach JP, Kim GH, Schillinger KJ, Smemo S, McNally EM, Nobrega MA, Patel VV, Moskowitz IP (2012) TBX5 drives Scn5a expression to regulate cardiac conduction system function. J Clin Invest 122:2509–2518. doi:10.​1172/​JCI62617 PubMedPubMedCentralCrossRef
36.
go back to reference Bruneau BG, Nemer G, Schmitt JP, Charron F, Robitaille L, Caron S, Conner DA, Gessler M, Nemer M, Seidman CE et al (2001) A murine model of Holt–Oram syndrome defines roles of the T-box transcription factor Tbx5 in cardiogenesis and disease. Cell 106:709–721. doi:10.1016/S0092-8674(01)00493-7 PubMedCrossRef Bruneau BG, Nemer G, Schmitt JP, Charron F, Robitaille L, Caron S, Conner DA, Gessler M, Nemer M, Seidman CE et al (2001) A murine model of Holt–Oram syndrome defines roles of the T-box transcription factor Tbx5 in cardiogenesis and disease. Cell 106:709–721. doi:10.​1016/​S0092-8674(01)00493-7 PubMedCrossRef
37.
go back to reference Al-Qattan MM, Abou Al-Shaar H (2015) Molecular basis of the clinical features of Holt–Oram syndrome resulting from missense and extended protein mutations of the TBX5 gene as well as TBX5 intragenic duplications. Gene 560:129–136. doi:10.1016/j.gene.2015.02.017 PubMedCrossRef Al-Qattan MM, Abou Al-Shaar H (2015) Molecular basis of the clinical features of Holt–Oram syndrome resulting from missense and extended protein mutations of the TBX5 gene as well as TBX5 intragenic duplications. Gene 560:129–136. doi:10.​1016/​j.​gene.​2015.​02.​017 PubMedCrossRef
39.
go back to reference Antonini-Canterin F, Carerj S, Di Bello V, Di Salvo G, La Carrubba S, Vriz O, Pavan D, Balbarini A, Nicolosi GL (2009) Arterial stiffness and ventricular stiffness: a couple of diseases or a coupling disease? A review from the cardiologist’s point of view. Eur J Echocardiogr 10:36–43. doi:10.1093/ejechocard/jen236 PubMedCrossRef Antonini-Canterin F, Carerj S, Di Bello V, Di Salvo G, La Carrubba S, Vriz O, Pavan D, Balbarini A, Nicolosi GL (2009) Arterial stiffness and ventricular stiffness: a couple of diseases or a coupling disease? A review from the cardiologist’s point of view. Eur J Echocardiogr 10:36–43. doi:10.​1093/​ejechocard/​jen236 PubMedCrossRef
40.
41.
go back to reference Zhou YQ, Zhu Y, Bishop J, Davidson L, Henkelman RM, Bruneau BG, Foster FS (2005) Abnormal cardiac inflow patterns during postnatal development in a mouse model of Holt–Oram syndrome. Am J Physiol Heart Circ Physiol 289:H992–H1001. doi:10.1152/ajpheart.00027.2005 PubMedCrossRef Zhou YQ, Zhu Y, Bishop J, Davidson L, Henkelman RM, Bruneau BG, Foster FS (2005) Abnormal cardiac inflow patterns during postnatal development in a mouse model of Holt–Oram syndrome. Am J Physiol Heart Circ Physiol 289:H992–H1001. doi:10.​1152/​ajpheart.​00027.​2005 PubMedCrossRef
47.
go back to reference Liang Q, De Windt LJ, Witt SA, Kimball TR, Markham BE, Molkentin JD (2001) The transcription factors GATA4 and GATA6 regulate cardiomyocyte hypertrophy in vitro and in vivo. J Biol Chem 276:30245–30253. doi:10.1074/jbc.M102174200 PubMedCrossRef Liang Q, De Windt LJ, Witt SA, Kimball TR, Markham BE, Molkentin JD (2001) The transcription factors GATA4 and GATA6 regulate cardiomyocyte hypertrophy in vitro and in vivo. J Biol Chem 276:30245–30253. doi:10.​1074/​jbc.​M102174200 PubMedCrossRef
51.
go back to reference Prendiville TW, Guo H, Lin Z, Zhou P, Stevens SM, He A, VanDusen N, Chen J, Zhong L, Wang DZ et al (2015) Novel roles of GATA4/6 in the postnatal heart identified through temporally controlled, cardiomyocyte-specific gene inactivation by adeno-associated virus delivery of Cre recombinase. PLoS ONE 10:e0128105. doi:10.1371/journal.pone.0128105 PubMedPubMedCentralCrossRef Prendiville TW, Guo H, Lin Z, Zhou P, Stevens SM, He A, VanDusen N, Chen J, Zhong L, Wang DZ et al (2015) Novel roles of GATA4/6 in the postnatal heart identified through temporally controlled, cardiomyocyte-specific gene inactivation by adeno-associated virus delivery of Cre recombinase. PLoS ONE 10:e0128105. doi:10.​1371/​journal.​pone.​0128105 PubMedPubMedCentralCrossRef
54.
go back to reference Charron F, Paradis P, Bronchain O, Nemer G, Nemer M (1999) Cooperative interaction between GATA-4 and GATA-6 regulates myocardial gene expression. Mol Cell Biol 19:4355–4365PubMedPubMedCentralCrossRef Charron F, Paradis P, Bronchain O, Nemer G, Nemer M (1999) Cooperative interaction between GATA-4 and GATA-6 regulates myocardial gene expression. Mol Cell Biol 19:4355–4365PubMedPubMedCentralCrossRef
56.
go back to reference Zhou B, Ma Q, Kong SW, Hu Y, Campbell PH, McGowan FX, Ackerman KG, Wu B, Tevosian SG, Pu WT (2009) Fog2 is critical for cardiac function and maintenance of coronary vasculature in the adult mouse heart. J Clin Invest 119:1462–1476. doi:10.1172/JCI38723 PubMedPubMedCentralCrossRef Zhou B, Ma Q, Kong SW, Hu Y, Campbell PH, McGowan FX, Ackerman KG, Wu B, Tevosian SG, Pu WT (2009) Fog2 is critical for cardiac function and maintenance of coronary vasculature in the adult mouse heart. J Clin Invest 119:1462–1476. doi:10.​1172/​JCI38723 PubMedPubMedCentralCrossRef
60.
go back to reference Zhang X, Azhar G, Helms S, Burton B, Huang C, Zhong Y, Gu X, Fang H, Tong W, Wei JY (2011) Identification of new SRF binding sites in genes modulated by SRF over-expression in mouse hearts. Gene Regul Syst Biol 5:41–59. doi:10.4137/GRSB.S7457 Zhang X, Azhar G, Helms S, Burton B, Huang C, Zhong Y, Gu X, Fang H, Tong W, Wei JY (2011) Identification of new SRF binding sites in genes modulated by SRF over-expression in mouse hearts. Gene Regul Syst Biol 5:41–59. doi:10.​4137/​GRSB.​S7457
62.
go back to reference Mikhailov AT, Torrado M (2010) NKX2.5 and SRF in postnatal cardiac remodeling: is there a link? In: Mikhailov AT, Torrado M (eds) Shaping the heart in development and disease. Transworld Research Network, Trivandrum, pp 145–164 Mikhailov AT, Torrado M (2010) NKX2.5 and SRF in postnatal cardiac remodeling: is there a link? In: Mikhailov AT, Torrado M (eds) Shaping the heart in development and disease. Transworld Research Network, Trivandrum, pp 145–164
65.
66.
70.
go back to reference Torrado M, Centeno C, López E, Mikhailov AT (2009) In-vivo forced expression of myocardin in ventricular myocardium transiently impairs systolic performance in early neonatal pig heart. Int J Dev Biol 53:1457–1467. doi:10.1387/ijdb.072366mt PubMedCrossRef Torrado M, Centeno C, López E, Mikhailov AT (2009) In-vivo forced expression of myocardin in ventricular myocardium transiently impairs systolic performance in early neonatal pig heart. Int J Dev Biol 53:1457–1467. doi:10.​1387/​ijdb.​072366mt PubMedCrossRef
71.
go back to reference Kumar A, Crawford K, Close L, Madison M, Lorenz J, Doetschman T, Pawlowski S, Duffy J, Neumann J, Robbins J et al (1997) Rescue of cardiac alpha-actin-deficient mice by enteric smooth muscle gamma-actin. Proc Natl Acad Sci USA 94:4406–4411PubMedPubMedCentralCrossRef Kumar A, Crawford K, Close L, Madison M, Lorenz J, Doetschman T, Pawlowski S, Duffy J, Neumann J, Robbins J et al (1997) Rescue of cardiac alpha-actin-deficient mice by enteric smooth muscle gamma-actin. Proc Natl Acad Sci USA 94:4406–4411PubMedPubMedCentralCrossRef
73.
go back to reference Chorley BN, Campbell MR, Wang X, Karaca M, Sambandan D, Bangura F, Xue P, Pi J, Kleeberger SR, Bell DA (2012) Identification of novel NRF2-regulated genes by ChIP-Seq: influence on retinoid X receptor alpha. Nucleic Acids Res 40:7416–7429. doi:10.1093/nar/gks409 PubMedPubMedCentralCrossRef Chorley BN, Campbell MR, Wang X, Karaca M, Sambandan D, Bangura F, Xue P, Pi J, Kleeberger SR, Bell DA (2012) Identification of novel NRF2-regulated genes by ChIP-Seq: influence on retinoid X receptor alpha. Nucleic Acids Res 40:7416–7429. doi:10.​1093/​nar/​gks409 PubMedPubMedCentralCrossRef
79.
go back to reference Chan K, Lu R, Chang JC, Kan YW (1996) NRF2, a member of the NFE2 family of transcription factors, is not essential for murine erythropoiesis, growth, and development. Proc Natl Acad Sci USA 93:13943–13948PubMedPubMedCentralCrossRef Chan K, Lu R, Chang JC, Kan YW (1996) NRF2, a member of the NFE2 family of transcription factors, is not essential for murine erythropoiesis, growth, and development. Proc Natl Acad Sci USA 93:13943–13948PubMedPubMedCentralCrossRef
82.
go back to reference Tao G, Kahr PC, Morikawa Y, Zhang M, Rahmani M, Heallen TR, Li L, Sun Z, Olson EN, Amendt BA et al (2016) Pitx2 promotes heart repair by activating the antioxidant response after cardiac injury. Nature. doi:10.1038/nature17959 Tao G, Kahr PC, Morikawa Y, Zhang M, Rahmani M, Heallen TR, Li L, Sun Z, Olson EN, Amendt BA et al (2016) Pitx2 promotes heart repair by activating the antioxidant response after cardiac injury. Nature. doi:10.​1038/​nature17959
83.
go back to reference Erkens R, Kramer CM, Luckstadt W, Panknin C, Krause L, Weidenbach M, Dirzka J, Krenz T, Mergia E, Suvorava T et al (2015) Left ventricular diastolic dysfunction in Nrf2 knock out mice is associated with cardiac hypertrophy, decreased expression of SERCA2a, and preserved endothelial function. Free Radic Biol Med 89:906–917. doi:10.1016/j.freeradbiomed.2015.10.409 PubMedCrossRef Erkens R, Kramer CM, Luckstadt W, Panknin C, Krause L, Weidenbach M, Dirzka J, Krenz T, Mergia E, Suvorava T et al (2015) Left ventricular diastolic dysfunction in Nrf2 knock out mice is associated with cardiac hypertrophy, decreased expression of SERCA2a, and preserved endothelial function. Free Radic Biol Med 89:906–917. doi:10.​1016/​j.​freeradbiomed.​2015.​10.​409 PubMedCrossRef
90.
go back to reference Semina EV, Reiter R, Leysens NJ, Alward WL, Small KW, Datson NA, Siegel-Bartelt J, Bierke-Nelson D, Bitoun P, Zabel BU et al (1996) Cloning and characterization of a novel bicoid-related homeobox transcription factor gene, RIEG, involved in Rieger syndrome. Nat Genet 14:392–399. doi:10.1038/ng1296-392 PubMedCrossRef Semina EV, Reiter R, Leysens NJ, Alward WL, Small KW, Datson NA, Siegel-Bartelt J, Bierke-Nelson D, Bitoun P, Zabel BU et al (1996) Cloning and characterization of a novel bicoid-related homeobox transcription factor gene, RIEG, involved in Rieger syndrome. Nat Genet 14:392–399. doi:10.​1038/​ng1296-392 PubMedCrossRef
94.
go back to reference Kirchhof P, Kahr PC, Kaese S, Piccini I, Vokshi I, Scheld HH, Rotering H, Fortmueller L, Laakmann S, Verheule S et al (2011) PITX2c is expressed in the adult left atrium, and reducing Pitx2c expression promotes atrial fibrillation inducibility and complex changes in gene expression. Circ Cardiovasc Genet 4:123–133. doi:10.1161/CIRCGENETICS.110.958058 PubMedCrossRef Kirchhof P, Kahr PC, Kaese S, Piccini I, Vokshi I, Scheld HH, Rotering H, Fortmueller L, Laakmann S, Verheule S et al (2011) PITX2c is expressed in the adult left atrium, and reducing Pitx2c expression promotes atrial fibrillation inducibility and complex changes in gene expression. Circ Cardiovasc Genet 4:123–133. doi:10.​1161/​CIRCGENETICS.​110.​958058 PubMedCrossRef
98.
go back to reference Hernandez-Torres F, Franco D, Aranega AE, Navarro F (2015) Expression patterns and immunohistochemical localization of PITX2B transcription factor in the developing mouse heart. Int J Dev Biol 59:247–254. doi:10.1387/ijdb.140224fh PubMedCrossRef Hernandez-Torres F, Franco D, Aranega AE, Navarro F (2015) Expression patterns and immunohistochemical localization of PITX2B transcription factor in the developing mouse heart. Int J Dev Biol 59:247–254. doi:10.​1387/​ijdb.​140224fh PubMedCrossRef
99.
100.
go back to reference Kioussi C, Briata P, Baek SH, Rose DW, Hamblet NS, Herman T, Ohgi KA, Lin C, Gleiberman A, Wang J et al (2002) Identification of a Wnt/Dvl/beta-Catenin – > Pitx2 pathway mediating cell-type-specific proliferation during development. Cell 111:673–685. doi:10.1016/S0092-8674(02)01084-X PubMedCrossRef Kioussi C, Briata P, Baek SH, Rose DW, Hamblet NS, Herman T, Ohgi KA, Lin C, Gleiberman A, Wang J et al (2002) Identification of a Wnt/Dvl/beta-Catenin – > Pitx2 pathway mediating cell-type-specific proliferation during development. Cell 111:673–685. doi:10.​1016/​S0092-8674(02)01084-X PubMedCrossRef
101.
go back to reference Venugopalan SR, Amen MA, Wang J, Wong L, Cavender AC, D’Souza RN, Akerlund M, Brody SL, Hjalt TA, Amendt BA (2008) Novel expression and transcriptional regulation of FoxJ1 during oro-facial morphogenesis. Hum Mol Genet 17:3643–3654. doi:10.1093/hmg/ddn258 PubMedPubMedCentralCrossRef Venugopalan SR, Amen MA, Wang J, Wong L, Cavender AC, D’Souza RN, Akerlund M, Brody SL, Hjalt TA, Amendt BA (2008) Novel expression and transcriptional regulation of FoxJ1 during oro-facial morphogenesis. Hum Mol Genet 17:3643–3654. doi:10.​1093/​hmg/​ddn258 PubMedPubMedCentralCrossRef
102.
go back to reference Vadlamudi U, Espinoza HM, Ganga M, Martin DM, Liu X, Engelhardt JF, Amendt BA (2005) PITX2, beta-catenin and LEF-1 interact to synergistically regulate the LEF-1 promoter. J Cell Sci 118:1129–1137. doi:10.1242/jcs.01706 PubMedCrossRef Vadlamudi U, Espinoza HM, Ganga M, Martin DM, Liu X, Engelhardt JF, Amendt BA (2005) PITX2, beta-catenin and LEF-1 interact to synergistically regulate the LEF-1 promoter. J Cell Sci 118:1129–1137. doi:10.​1242/​jcs.​01706 PubMedCrossRef
103.
go back to reference Ganga M, Espinoza HM, Cox CJ, Morton L, Hjalt TA, Lee Y, Amendt BA (2003) PITX2 isoform-specific regulation of atrial natriuretic factor expression: synergism and repression with Nkx2.5. J Biol Chem 278:22437–22445. doi:10.1074/jbc.M210163200 PubMedCrossRef Ganga M, Espinoza HM, Cox CJ, Morton L, Hjalt TA, Lee Y, Amendt BA (2003) PITX2 isoform-specific regulation of atrial natriuretic factor expression: synergism and repression with Nkx2.5. J Biol Chem 278:22437–22445. doi:10.​1074/​jbc.​M210163200 PubMedCrossRef
107.
109.
go back to reference Chinchilla A, Daimi H, Lozano-Velasco E, Dominguez JN, Caballero R, Delpon E, Tamargo J, Cinca J, Hove-Madsen L, Aranega AE et al (2011) PITX2 insufficiency leads to atrial electrical and structural remodeling linked to arrhythmogenesis. Circ Cardiovasc Genet 4:269–279. doi:10.1161/CIRCGENETICS.110.958116 PubMedCrossRef Chinchilla A, Daimi H, Lozano-Velasco E, Dominguez JN, Caballero R, Delpon E, Tamargo J, Cinca J, Hove-Madsen L, Aranega AE et al (2011) PITX2 insufficiency leads to atrial electrical and structural remodeling linked to arrhythmogenesis. Circ Cardiovasc Genet 4:269–279. doi:10.​1161/​CIRCGENETICS.​110.​958116 PubMedCrossRef
111.
113.
114.
go back to reference Torrado M, Franco D, Lozano-Velasco E, Hernandez-Torres F, Calvino R, Aldama G, Centeno A, Castro-Beiras A, Mikhailov A (2015) A microRNA-transcription factor blueprint for early atrial arrhythmogenic remodeling. Biomed Res Int 2015:263151. doi:10.1155/2015/263151 PubMedPubMedCentralCrossRef Torrado M, Franco D, Lozano-Velasco E, Hernandez-Torres F, Calvino R, Aldama G, Centeno A, Castro-Beiras A, Mikhailov A (2015) A microRNA-transcription factor blueprint for early atrial arrhythmogenic remodeling. Biomed Res Int 2015:263151. doi:10.​1155/​2015/​263151 PubMedPubMedCentralCrossRef
115.
go back to reference Santerre RF, Bales KR, Janney MJ, Hannon K, Fisher LF, Bailey CS, Morris J, Ivarie R, Smith CK 2nd (1993) Expression of bovine myf5 induces ectopic skeletal muscle formation in transgenic mice. Mol Cell Biol 13:6044–6051PubMedPubMedCentralCrossRef Santerre RF, Bales KR, Janney MJ, Hannon K, Fisher LF, Bailey CS, Morris J, Ivarie R, Smith CK 2nd (1993) Expression of bovine myf5 induces ectopic skeletal muscle formation in transgenic mice. Mol Cell Biol 13:6044–6051PubMedPubMedCentralCrossRef
117.
go back to reference Sun N, Yazawa M, Liu J, Han L, Sanchez-Freire V, Abilez OJ, Navarrete EG, Hu S, Wang L, Lee A et al (2012) Patient-specific induced pluripotent stem cells as a model for familial dilated cardiomyopathy. Sci Transl Med 4:130ra147. doi:10.1126/scitranslmed.3003552 CrossRef Sun N, Yazawa M, Liu J, Han L, Sanchez-Freire V, Abilez OJ, Navarrete EG, Hu S, Wang L, Lee A et al (2012) Patient-specific induced pluripotent stem cells as a model for familial dilated cardiomyopathy. Sci Transl Med 4:130ra147. doi:10.​1126/​scitranslmed.​3003552 CrossRef
121.
122.
123.
124.
129.
go back to reference Marchler-Bauer A, Derbyshire MK, Gonzales NR, Lu S, Chitsaz F, Geer LY, Geer RC, He J, Gwadz M, Hurwitz DI et al (2015) CDD: NCBI’s conserved domain database. Nucleic Acids Res 43:D222–D226. doi:10.1093/nar/gku1221 PubMedCrossRef Marchler-Bauer A, Derbyshire MK, Gonzales NR, Lu S, Chitsaz F, Geer LY, Geer RC, He J, Gwadz M, Hurwitz DI et al (2015) CDD: NCBI’s conserved domain database. Nucleic Acids Res 43:D222–D226. doi:10.​1093/​nar/​gku1221 PubMedCrossRef
130.
go back to reference Garg V, Kathiriya IS, Barnes R, Schluterman MK, King IN, Butler CA, Rothrock CR, Eapen RS, Hirayama-Yamada K, Joo K et al (2003) GATA4 mutations cause human congenital heart defects and reveal an interaction with TBX5. Nature 424:443–447. doi:10.1038/nature01827 PubMedCrossRef Garg V, Kathiriya IS, Barnes R, Schluterman MK, King IN, Butler CA, Rothrock CR, Eapen RS, Hirayama-Yamada K, Joo K et al (2003) GATA4 mutations cause human congenital heart defects and reveal an interaction with TBX5. Nature 424:443–447. doi:10.​1038/​nature01827 PubMedCrossRef
131.
go back to reference Kodo K, Nishizawa T, Furutani M, Arai S, Ishihara K, Oda M, Makino S, Fukuda K, Takahashi T, Matsuoka R et al (2012) Genetic analysis of essential cardiac transcription factors in 256 patients with non-syndromic congenital heart defects. Circ J 76:1703–1711. doi:10.1253/circj.CJ-11-1389 PubMedCrossRef Kodo K, Nishizawa T, Furutani M, Arai S, Ishihara K, Oda M, Makino S, Fukuda K, Takahashi T, Matsuoka R et al (2012) Genetic analysis of essential cardiac transcription factors in 256 patients with non-syndromic congenital heart defects. Circ J 76:1703–1711. doi:10.​1253/​circj.​CJ-11-1389 PubMedCrossRef
134.
go back to reference Martin DM, Amendt BA, Brown NA (2010) Pitx2 in cardiac left–right asymmetry and human disease. In: Rosenthal N, Harvey RP (eds) Heart development and regeneration, vol 1. Academic Press, New York, pp 307–320CrossRef Martin DM, Amendt BA, Brown NA (2010) Pitx2 in cardiac left–right asymmetry and human disease. In: Rosenthal N, Harvey RP (eds) Heart development and regeneration, vol 1. Academic Press, New York, pp 307–320CrossRef
137.
go back to reference Torrado M, Lopez E, Centeno A, Medrano C, Castro-Beiras A, Mikhailov AT (2003) Myocardin mRNA is augmented in the failing myocardium: expression profiling in the porcine model and human dilated cardiomyopathy. J Mol Med 81:566–577PubMedCrossRef Torrado M, Lopez E, Centeno A, Medrano C, Castro-Beiras A, Mikhailov AT (2003) Myocardin mRNA is augmented in the failing myocardium: expression profiling in the porcine model and human dilated cardiomyopathy. J Mol Med 81:566–577PubMedCrossRef
138.
go back to reference Tan Y, Ichikawa T, Li J, Si Q, Yang H, Chen X, Goldblatt CS, Meyer CJ, Li X, Cai L et al (2011) Diabetic downregulation of Nrf2 activity via ERK contributes to oxidative stress-induced insulin resistance in cardiac cells in vitro and in vivo. Diabetes 60:625–633. doi:10.2337/db10-1164 PubMedPubMedCentralCrossRef Tan Y, Ichikawa T, Li J, Si Q, Yang H, Chen X, Goldblatt CS, Meyer CJ, Li X, Cai L et al (2011) Diabetic downregulation of Nrf2 activity via ERK contributes to oxidative stress-induced insulin resistance in cardiac cells in vitro and in vivo. Diabetes 60:625–633. doi:10.​2337/​db10-1164 PubMedPubMedCentralCrossRef
Metadata
Title
Myocardial transcription factors in diastolic dysfunction: clues for model systems and disease
Authors
Alexander T. Mikhailov
Mario Torrado
Publication date
01-11-2016
Publisher
Springer US
Published in
Heart Failure Reviews / Issue 6/2016
Print ISSN: 1382-4147
Electronic ISSN: 1573-7322
DOI
https://doi.org/10.1007/s10741-016-9569-0

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