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Published in: Basic Research in Cardiology 2/2013

Open Access 01-03-2013 | Original Contribution

Islet1 is a direct transcriptional target of the homeodomain transcription factor Shox2 and rescues the Shox2-mediated bradycardia

Authors: Sandra Hoffmann, Ina M. Berger, Anne Glaser, Claire Bacon, Li Li, Norbert Gretz, Herbert Steinbeisser, Wolfgang Rottbauer, Steffen Just, Gudrun Rappold

Published in: Basic Research in Cardiology | Issue 2/2013

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Abstract

The heart’s rhythm is initiated and regulated by a group of specialized cells in the sinoatrial node (SAN), the primary pacemaker of the heart. Abnormalities in the development of the SAN can result in irregular heart rates (arrhythmias). Although several of the critical genes important for SAN formation have been identified, our understanding of the transcriptional network controlling SAN development remains at a relatively early stage. The homeodomain transcription factor Shox2 is involved in the specification and patterning of the SAN. While the Shox2 knockout in mice results in embryonic lethality due to severe cardiac defects including improper SAN development, Shox2 knockdown in zebrafish causes a reduced heart rate (bradycardia). In order to gain deeper insight into molecular pathways involving Shox2, we compared gene expression levels in right atria of wildtype and Shox2 / hearts using microarray experiments and identified the LIM homeodomain transcription factor Islet1 (Isl1) as one of its putative target genes. The downregulation of Isl1 expression in Shox2 / hearts was confirmed and the affected region narrowed down to the SAN by whole-mount in situ hybridization. Using luciferase reporter assays and EMSA studies, we identified two specific SHOX2 binding sites within intron 2 of the ISL1 locus. We also provide functional evidence for Isl1 as a transcriptional target of Shox2 by rescuing the Shox2-mediated bradycardia phenotype with Isl1 using zebrafish as a model system. Our findings demonstrate a novel epistatic relationship between Shox2 and Isl1 in the heart with important developmental consequences for SAN formation and heart beat.
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Literature
2.
go back to reference Blaschke RJ, Hahurij ND, Kuijper S, Just S, Wisse LJ, Deissler K, Maxelon T, Anastassiadis K, Spitzer J, Hardt SE, Schöler H, Feitsma H, Rottbauer W, Blum M, Meijlink F, Rappold G, Gittenberger-de Groot AC (2007) Targeted mutation reveals essential functions of the homeodomain transcription factor Shox2 in sinoatrial and pacemaking development. Circulation 115:1830–1838. doi:10.1161/CIRCULATIONAHA.106.637819 PubMedCrossRef Blaschke RJ, Hahurij ND, Kuijper S, Just S, Wisse LJ, Deissler K, Maxelon T, Anastassiadis K, Spitzer J, Hardt SE, Schöler H, Feitsma H, Rottbauer W, Blum M, Meijlink F, Rappold G, Gittenberger-de Groot AC (2007) Targeted mutation reveals essential functions of the homeodomain transcription factor Shox2 in sinoatrial and pacemaking development. Circulation 115:1830–1838. doi:10.​1161/​CIRCULATIONAHA.​106.​637819 PubMedCrossRef
3.
go back to reference Blaschke RJ, Monaghan AP, Schiller S, Schechinger B, Rao E, Padilla-Nash H, Ried T, Rappold G (1998) SHOT, a SHOX-related homeobox gene, is implicated in craniofacial, brain, heart, and limb development. Proc Natl Acad Sci USA 95:2406–2411. doi:10.1073/pnas.95.5.2406 PubMedCrossRef Blaschke RJ, Monaghan AP, Schiller S, Schechinger B, Rao E, Padilla-Nash H, Ried T, Rappold G (1998) SHOT, a SHOX-related homeobox gene, is implicated in craniofacial, brain, heart, and limb development. Proc Natl Acad Sci USA 95:2406–2411. doi:10.​1073/​pnas.​95.​5.​2406 PubMedCrossRef
4.
go back to reference Bu L, Jiang X, Martin-Puig S, Caron L, Zhu S, Shao Y, Roberts DJ, Huang PL, Domian IJ, Chien KR (2009) Human ISL1 heart progenitors generate diverse multipotent cardiovascular cell lineages. Nature 460:113–117. doi:10.1038/nature08191 PubMedCrossRef Bu L, Jiang X, Martin-Puig S, Caron L, Zhu S, Shao Y, Roberts DJ, Huang PL, Domian IJ, Chien KR (2009) Human ISL1 heart progenitors generate diverse multipotent cardiovascular cell lineages. Nature 460:113–117. doi:10.​1038/​nature08191 PubMedCrossRef
6.
go back to reference Cai CL, Liang X, Shi Y, Chu PH, Pfaff SL, Chen J, Evans S (2003) Isl1 identifies a cardiac progenitor population that proliferates prior to differentiation and contributes a majority of cells to the heart. Dev Cell 5:877–889. doi:10.3410/f.1016943.201654 PubMedCrossRef Cai CL, Liang X, Shi Y, Chu PH, Pfaff SL, Chen J, Evans S (2003) Isl1 identifies a cardiac progenitor population that proliferates prior to differentiation and contributes a majority of cells to the heart. Dev Cell 5:877–889. doi:10.​3410/​f.​1016943.​201654 PubMedCrossRef
8.
go back to reference Cohen ED, Wang Z, Lepore JJ, Lu MM, Taketo MM, Epstein DJ, Morrisey EE (2007) Wnt/beta-catenin signaling promotes expansion of Isl-1-positive cardiac progenitor cells through regulation of FGF signaling. J Clin Invest 117:1794–1804. doi:10.1172/JCI31731 PubMedCrossRef Cohen ED, Wang Z, Lepore JJ, Lu MM, Taketo MM, Epstein DJ, Morrisey EE (2007) Wnt/beta-catenin signaling promotes expansion of Isl-1-positive cardiac progenitor cells through regulation of FGF signaling. J Clin Invest 117:1794–1804. doi:10.​1172/​JCI31731 PubMedCrossRef
9.
go back to reference de Pater E, Clijsters L, Marques SR, Lin Y-F, Garavito-Aguilar ZV, Yelon D, Bakkers J (2009) Distinct phases of cardiomyocyte differentiation regulate growth of the zebrafish heart. Development 136:1633–1641. doi:10.1242/dev.030924 PubMedCrossRef de Pater E, Clijsters L, Marques SR, Lin Y-F, Garavito-Aguilar ZV, Yelon D, Bakkers J (2009) Distinct phases of cardiomyocyte differentiation regulate growth of the zebrafish heart. Development 136:1633–1641. doi:10.​1242/​dev.​030924 PubMedCrossRef
13.
go back to reference Friedrich FW, Dilanian G, Khattar P, Juhr D, Gueneau L, Charron P, Fressart V, Vilquin JT, Isnard R, Gouya L, Richard P, Hammoudi N, Komajda M, Bonne G, Eschenhagen T, Dubourg O, Villard E, Carrier L (2012) A novel genetic variant in the transcription factor Islet-1 exerts gain of function on myocyte enhancer factor 2C promoter activity. Eur J Heart Fail. doi:10.1093/eurjhf/hfs178 PubMed Friedrich FW, Dilanian G, Khattar P, Juhr D, Gueneau L, Charron P, Fressart V, Vilquin JT, Isnard R, Gouya L, Richard P, Hammoudi N, Komajda M, Bonne G, Eschenhagen T, Dubourg O, Villard E, Carrier L (2012) A novel genetic variant in the transcription factor Islet-1 exerts gain of function on myocyte enhancer factor 2C promoter activity. Eur J Heart Fail. doi:10.​1093/​eurjhf/​hfs178 PubMed
14.
go back to reference Genead R, Danielsson C, Andersson AB, Corbascio M, Franco-Cereceda A, Sylven C, Grinnemo KH (2010) Islet-1 cells are cardiac progenitors present during the entire lifespan: from the embryonic stage to adulthood. Stem Cells Dev 19:1601–1615. doi:10.1089/scd.2009.0483 PubMedCrossRef Genead R, Danielsson C, Andersson AB, Corbascio M, Franco-Cereceda A, Sylven C, Grinnemo KH (2010) Islet-1 cells are cardiac progenitors present during the entire lifespan: from the embryonic stage to adulthood. Stem Cells Dev 19:1601–1615. doi:10.​1089/​scd.​2009.​0483 PubMedCrossRef
15.
go back to reference Gittenberger-de Groot AC, Mahtab EAF, Hahurij ND, Wisse LJ, Deruiter MC, Wijffels MCEF, Poelmann RE (2007) Nkx2.5-negative myocardium of the posterior heart field and its correlation with Podoplanin expression in cells from the developing cardiac pacemaking and conduction system. Heart 122:115–122. doi:10.1002/ar.20406 Gittenberger-de Groot AC, Mahtab EAF, Hahurij ND, Wisse LJ, Deruiter MC, Wijffels MCEF, Poelmann RE (2007) Nkx2.5-negative myocardium of the posterior heart field and its correlation with Podoplanin expression in cells from the developing cardiac pacemaking and conduction system. Heart 122:115–122. doi:10.​1002/​ar.​20406
18.
go back to reference Huang CJ, Tu CT, Hsiao CD, Hsieh FJ, Tsai HJ (2003) Germ-line transmission of a myocardium-specific GFP transgene reveals critical regulatory elements in the cardiac myosin light chain 2 promoter of zebrafish. Dev Dyn 228:30–40. doi:10.1002/dvdy.10356 PubMedCrossRef Huang CJ, Tu CT, Hsiao CD, Hsieh FJ, Tsai HJ (2003) Germ-line transmission of a myocardium-specific GFP transgene reveals critical regulatory elements in the cardiac myosin light chain 2 promoter of zebrafish. Dev Dyn 228:30–40. doi:10.​1002/​dvdy.​10356 PubMedCrossRef
19.
go back to reference Jongbloed MR, Mahtab EA, Blom NA, Schalij MJ, Gittenberger-de Groot AC (2008) Development of the cardiac conduction system and the possible relation to predilection sites of arrhythmogenesis. Sci World J 8:239–269. doi:10.1100/tsw.2008.40 CrossRef Jongbloed MR, Mahtab EA, Blom NA, Schalij MJ, Gittenberger-de Groot AC (2008) Development of the cardiac conduction system and the possible relation to predilection sites of arrhythmogenesis. Sci World J 8:239–269. doi:10.​1100/​tsw.​2008.​40 CrossRef
20.
go back to reference Just S, Berger IM, Meder B, Backs J, Keller A, Marquart S, Frese K, Patzel E, Rauch GJ, Katus HA, Rottbauer W (2011) Protein kinase D2 controls cardiac valve formation in zebrafish by regulating histone deacetylase 5 activity. Circulation 124:324–334. doi:10.1161/CIRCULATIONAHA.110.003301 PubMedCrossRef Just S, Berger IM, Meder B, Backs J, Keller A, Marquart S, Frese K, Patzel E, Rauch GJ, Katus HA, Rottbauer W (2011) Protein kinase D2 controls cardiac valve formation in zebrafish by regulating histone deacetylase 5 activity. Circulation 124:324–334. doi:10.​1161/​CIRCULATIONAHA.​110.​003301 PubMedCrossRef
21.
go back to reference Just S, Meder B, Berger IM, Etard C, Trano N, Patzel E, Hassel D, Marquart S, Dahme T, Vogel B, Fishman MC, Katus HA, Strahle U, Rottbauer W (2011) The myosin-interacting protein SMYD1 is essential for sarcomere organization. J Cell Sci 124:3127–3136. doi:10.1242/jcs.084772 PubMedCrossRef Just S, Meder B, Berger IM, Etard C, Trano N, Patzel E, Hassel D, Marquart S, Dahme T, Vogel B, Fishman MC, Katus HA, Strahle U, Rottbauer W (2011) The myosin-interacting protein SMYD1 is essential for sarcomere organization. J Cell Sci 124:3127–3136. doi:10.​1242/​jcs.​084772 PubMedCrossRef
24.
go back to reference Khattar P, Friedrich FW, Bonne G, Carrier L, Eschenhagen T, Evans SM, Schwartz K, Fiszman MY, Vilquin J-T (2011) Distinction between two populations of islet-1-positive cells in hearts of different murine strains. Stem Cells Dev 20:1043–1052. doi:10.1089/scd.2010.0374 PubMedCrossRef Khattar P, Friedrich FW, Bonne G, Carrier L, Eschenhagen T, Evans SM, Schwartz K, Fiszman MY, Vilquin J-T (2011) Distinction between two populations of islet-1-positive cells in hearts of different murine strains. Stem Cells Dev 20:1043–1052. doi:10.​1089/​scd.​2010.​0374 PubMedCrossRef
25.
go back to reference Kirchhof P, Kahr PC, Kaese S, Piccini I, Vokshi I, Scheld HH, Rotering H, Fortmueller L, Laakmann S, Verheule S, Schotten U, Fabritz L, Brown NA (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, Schotten U, Fabritz L, Brown NA (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
26.
go back to reference Kwon C, Qian L, Cheng P, Nigam V, Arnold J, Srivastava D (2009) A regulatory pathway involving Notch1/beta-catenin/Isl1 determines cardiac progenitor cell fate. Nat Cell Biol 11:951–957. doi:10.1038/ncb1906 PubMedCrossRef Kwon C, Qian L, Cheng P, Nigam V, Arnold J, Srivastava D (2009) A regulatory pathway involving Notch1/beta-catenin/Isl1 determines cardiac progenitor cell fate. Nat Cell Biol 11:951–957. doi:10.​1038/​ncb1906 PubMedCrossRef
28.
go back to reference Lin L, Cui L, Zhou W, Dufort D, Zhang X, Cai CL, Bu L, Yang L, Martin J, Kemler R, Rosenfeld MG, Chen J, Evans SM (2007) Beta-catenin directly regulates Islet1 expression in cardiovascular progenitors and is required for multiple aspects of cardiogenesis. Proc Natl Acad Sci USA 104:9313–9318. doi:10.1073/pnas.0700923104 PubMedCrossRef Lin L, Cui L, Zhou W, Dufort D, Zhang X, Cai CL, Bu L, Yang L, Martin J, Kemler R, Rosenfeld MG, Chen J, Evans SM (2007) Beta-catenin directly regulates Islet1 expression in cardiovascular progenitors and is required for multiple aspects of cardiogenesis. Proc Natl Acad Sci USA 104:9313–9318. doi:10.​1073/​pnas.​0700923104 PubMedCrossRef
29.
go back to reference Liu H, Chen CH, Espinoza-Lewis RA, Jiao Z, Sheu I, Hu X, Lin M, Zhang Y, Chen Y (2011) Functional redundancy between human SHOX and mouse Shox2 genes in the regulation of sinoatrial node formation and pacemaking function. J Biol Chem 286:17029–17038. doi:10.1074/jbc.M111.234252 PubMedCrossRef Liu H, Chen CH, Espinoza-Lewis RA, Jiao Z, Sheu I, Hu X, Lin M, Zhang Y, Chen Y (2011) Functional redundancy between human SHOX and mouse Shox2 genes in the regulation of sinoatrial node formation and pacemaking function. J Biol Chem 286:17029–17038. doi:10.​1074/​jbc.​M111.​234252 PubMedCrossRef
31.
go back to reference Liu Y, Li Y, Li T, Lu H, Jia Z, Wang W, Chen P, Ma K, Zhou C (2010) POU homeodomain protein OCT1 modulates islet 1 expression during cardiac differentiation of P19CL6 cells. Cell Mol Life Sci 68:1969–1982. doi:10.1007/s00018-010-0544-y PubMedCrossRef Liu Y, Li Y, Li T, Lu H, Jia Z, Wang W, Chen P, Ma K, Zhou C (2010) POU homeodomain protein OCT1 modulates islet 1 expression during cardiac differentiation of P19CL6 cells. Cell Mol Life Sci 68:1969–1982. doi:10.​1007/​s00018-010-0544-y PubMedCrossRef
35.
go back to reference Mommersteeg MTM, Domínguez JN, Wiese C, Norden J, de Gier-de Vries C, Burch JBE, Kispert A, Brown NA, Moorman AFM, Christoffels VM (2010) The sinus venosus progenitors separate and diversify from the first and second heart fields early in development. Cardiovasc Res 87:92–101. doi:10.1093/cvr/cvq033 PubMedCrossRef Mommersteeg MTM, Domínguez JN, Wiese C, Norden J, de Gier-de Vries C, Burch JBE, Kispert A, Brown NA, Moorman AFM, Christoffels VM (2010) The sinus venosus progenitors separate and diversify from the first and second heart fields early in development. Cardiovasc Res 87:92–101. doi:10.​1093/​cvr/​cvq033 PubMedCrossRef
36.
go back to reference Moretti A, Caron L, Nakano A, Lam JT, Bernshausen A, Chen Y, Qyang Y, Bu L, Sasaki M, Martin-Puig S, Sun Y, Evans SM, Laugwitz K-L, Chien KR (2006) Multipotent embryonic isl1+ progenitor cells lead to cardiac, smooth muscle, and endothelial cell diversification. Cell 127:1151–1165. doi:10.1016/j.cell.2006.10.029 PubMedCrossRef Moretti A, Caron L, Nakano A, Lam JT, Bernshausen A, Chen Y, Qyang Y, Bu L, Sasaki M, Martin-Puig S, Sun Y, Evans SM, Laugwitz K-L, Chien KR (2006) Multipotent embryonic isl1+ progenitor cells lead to cardiac, smooth muscle, and endothelial cell diversification. Cell 127:1151–1165. doi:10.​1016/​j.​cell.​2006.​10.​029 PubMedCrossRef
39.
go back to reference Park EJ, La Ogden, Talbot A, Evans S, Cai CL, Black BL, Frank DU, Moon AM (2006) Required, tissue-specific roles for Fgf8 in outflow tract formation and remodeling. Development 133:2419–2433. doi:10.1242/dev.02367 PubMedCrossRef Park EJ, La Ogden, Talbot A, Evans S, Cai CL, Black BL, Frank DU, Moon AM (2006) Required, tissue-specific roles for Fgf8 in outflow tract formation and remodeling. Development 133:2419–2433. doi:10.​1242/​dev.​02367 PubMedCrossRef
40.
42.
go back to reference Puskaric S, Schmitteckert S, Mori AD, Glaser A, Schneider KU, Bruneau BG, Blaschke RJ, Steinbeisser H, Rappold G (2010) Shox2 mediates Tbx5 activity by regulating Bmp4 in the pacemaker region of the developing heart. Hum Mol Genet 19:4625–4633. doi:10.1093/hmg/ddq393 PubMedCrossRef Puskaric S, Schmitteckert S, Mori AD, Glaser A, Schneider KU, Bruneau BG, Blaschke RJ, Steinbeisser H, Rappold G (2010) Shox2 mediates Tbx5 activity by regulating Bmp4 in the pacemaker region of the developing heart. Hum Mol Genet 19:4625–4633. doi:10.​1093/​hmg/​ddq393 PubMedCrossRef
43.
44.
go back to reference Schrickel JW, Lickfett L, Lewalter T, Tiemann K, Nickenig G, Baba H, Heusch G, Schulz R, Levkau B (2012) Cardiomyocyte-specific deletion of survivin causes global cardiac conduction defects. Basic Res Cardiol 107:299. doi:10.1007/s00395-012-0299-8 PubMedCrossRef Schrickel JW, Lickfett L, Lewalter T, Tiemann K, Nickenig G, Baba H, Heusch G, Schulz R, Levkau B (2012) Cardiomyocyte-specific deletion of survivin causes global cardiac conduction defects. Basic Res Cardiol 107:299. doi:10.​1007/​s00395-012-0299-8 PubMedCrossRef
45.
47.
go back to reference Stevens KN, Hakonarson H, Kim CE, Doevendans PA, Koeleman BP, Mital S, Raue J, Glessner JT, Coles JG, Moreno V, Granger A, Gruber SB, Gruber PJ (2010) Common variation in ISL1 confers genetic susceptibility for human congenital heart disease. PLoS ONE 5:e10855. doi:10.1371/journal.pone.0010855 PubMedCrossRef Stevens KN, Hakonarson H, Kim CE, Doevendans PA, Koeleman BP, Mital S, Raue J, Glessner JT, Coles JG, Moreno V, Granger A, Gruber SB, Gruber PJ (2010) Common variation in ISL1 confers genetic susceptibility for human congenital heart disease. PLoS ONE 5:e10855. doi:10.​1371/​journal.​pone.​0010855 PubMedCrossRef
50.
go back to reference Vaquerizas JM, Kummerfeld SK, Teichmann SA, Luscombe NM (2009) A census of human transcription factors: function, expression and evolution. Nat Rev Genet 10:252–263. doi:10.1038/nrg2538 PubMedCrossRef Vaquerizas JM, Kummerfeld SK, Teichmann SA, Luscombe NM (2009) A census of human transcription factors: function, expression and evolution. Nat Rev Genet 10:252–263. doi:10.​1038/​nrg2538 PubMedCrossRef
51.
go back to reference Vicente-Steijn R, Kolditz DP, Mahtab EA, Askar SF, Bax NA, Van Der Graaf LM, Wisse LJ, Passier R, Pijnappels DA, Schalij MJ, Poelmann RE, Gittenberger-de Groot AC, Jongbloed MR (2010) Electrical activation of sinus venosus myocardium and expression patterns of RhoA and Isl-1 in the chick embryo. J Cardiovasc Electrophysiol 21:1284–1292. doi:10.1111/j.1540-8167.2010.01790.x PubMedCrossRef Vicente-Steijn R, Kolditz DP, Mahtab EA, Askar SF, Bax NA, Van Der Graaf LM, Wisse LJ, Passier R, Pijnappels DA, Schalij MJ, Poelmann RE, Gittenberger-de Groot AC, Jongbloed MR (2010) Electrical activation of sinus venosus myocardium and expression patterns of RhoA and Isl-1 in the chick embryo. J Cardiovasc Electrophysiol 21:1284–1292. doi:10.​1111/​j.​1540-8167.​2010.​01790.​x PubMedCrossRef
53.
go back to reference Wang J, Klysik E, Sood S, Johnson RL, Wehrens XH, Martin JF (2010) Pitx2 prevents susceptibility to atrial arrhythmias by inhibiting left-sided pacemaker specification. Proc Natl Acad Sci USA 107:9753–9758. doi:10.1073/pnas.0912585107 PubMedCrossRef Wang J, Klysik E, Sood S, Johnson RL, Wehrens XH, Martin JF (2010) Pitx2 prevents susceptibility to atrial arrhythmias by inhibiting left-sided pacemaker specification. Proc Natl Acad Sci USA 107:9753–9758. doi:10.​1073/​pnas.​0912585107 PubMedCrossRef
54.
go back to reference Weinberger F, Mehrkens D, Friedrich FW, Stubbendorff M, Hua X, Muller JC, Schrepfer S, Evans SM, Carrier L, Eschenhagen T (2012) Localization of Islet-1-positive cells in the healthy and infarcted adult murine heart. Circ Res 110:1303–1310. doi:10.1161/CIRCRESAHA.111.259630 PubMedCrossRef Weinberger F, Mehrkens D, Friedrich FW, Stubbendorff M, Hua X, Muller JC, Schrepfer S, Evans SM, Carrier L, Eschenhagen T (2012) Localization of Islet-1-positive cells in the healthy and infarcted adult murine heart. Circ Res 110:1303–1310. doi:10.​1161/​CIRCRESAHA.​111.​259630 PubMedCrossRef
55.
go back to reference Westerfield M (1993) The zebrafish book; a guide for the laboratory use of zebrafish (Brachydanio rerio). University of Oregon Press, Eugene Westerfield M (1993) The zebrafish book; a guide for the laboratory use of zebrafish (Brachydanio rerio). University of Oregon Press, Eugene
56.
go back to reference Wiese C, Grieskamp T, Airik R, Mommersteeg MT, Gardiwal A, de Gier-de Vries C, Schuster-Gossler K, Moorman AF, Kispert A, Christoffels VM (2009) Formation of the sinus node head and differentiation of sinus node myocardium are independently regulated by Tbx18 and Tbx3. Circ Res 104:388–397. doi:10.1161/CIRCRESAHA.108.187062 PubMedCrossRef Wiese C, Grieskamp T, Airik R, Mommersteeg MT, Gardiwal A, de Gier-de Vries C, Schuster-Gossler K, Moorman AF, Kispert A, Christoffels VM (2009) Formation of the sinus node head and differentiation of sinus node myocardium are independently regulated by Tbx18 and Tbx3. Circ Res 104:388–397. doi:10.​1161/​CIRCRESAHA.​108.​187062 PubMedCrossRef
Metadata
Title
Islet1 is a direct transcriptional target of the homeodomain transcription factor Shox2 and rescues the Shox2-mediated bradycardia
Authors
Sandra Hoffmann
Ina M. Berger
Anne Glaser
Claire Bacon
Li Li
Norbert Gretz
Herbert Steinbeisser
Wolfgang Rottbauer
Steffen Just
Gudrun Rappold
Publication date
01-03-2013
Publisher
Springer-Verlag
Published in
Basic Research in Cardiology / Issue 2/2013
Print ISSN: 0300-8428
Electronic ISSN: 1435-1803
DOI
https://doi.org/10.1007/s00395-013-0339-z

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