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Erschienen in: Pediatric Cardiology 4/2018

21.02.2018 | Original Article

A Novel MEF2C Loss-of-Function Mutation Associated with Congenital Double Outlet Right Ventricle

verfasst von: Cai-Xia Lu, Wei Wang, Qian Wang, Xing-Yuan Liu, Yi-Qing Yang

Erschienen in: Pediatric Cardiology | Ausgabe 4/2018

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Abstract

Congenital heart defect (CHD) represents the most prevalent birth defect, and accounts for substantial morbidity and mortality in humans. Aggregating evidence demonstrates the genetic basis for CHD. However, CHD is a heterogeneous disease, and the genetic determinants underlying CHD in most patients remain unknown. In the present study, a cohort of 186 unrelated cases with CHD and 300 unrelated control individuals were recruited. The coding exons and flanking introns of the MEF2C gene, which encodes a transcription factor crucial for proper cardiovascular development, were sequenced in all study participants. The functional effect of an identified MEF2C mutation was characterized using a dual-luciferase reporter assay system. As a result, a novel heterozygous MEF2C mutation, p.R15C, was detected in an index patient with congenital double outlet right ventricle (DORV) as well as ventricular septal defect. Analysis of the proband’s pedigree showed that the mutation co-segregated with CHD with complete penetrance. The missense mutation, which changed the evolutionarily conserved amino acid, was absent in 300 control individuals. Functional deciphers revealed that the mutant MEF2C protein had a significantly decreased transcriptional activity. Furthermore, the mutation significantly reduced the synergistic activation between MEF2C and GATA4, another transcription factor linked to CHD. This study firstly associates MEF2C loss-of-function mutation with DORV in humans, which provides novel insight into the molecular pathogenesis of CHD, suggesting potential implications for genetic counseling and personalized treatment of CHD patients.
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Literatur
1.
Zurück zum Zitat Benjamin EJ, Blaha MJ, Chiuve SE, Cushman M, Das SR, Deo R, de Ferranti SD, Floyd J, Fornage M, Gillespie C, Isasi CR, Jiménez MC, Jordan LC, Judd SE, Lackland D, Lichtman JH, Lisabeth L, Liu S, Longenecker CT, Mackey RH, Matsushita K, Mozaffarian D, Mussolino ME, Nasir K, Neumar RW, Palaniappan L, Pandey DK, Thiagarajan RR, Reeves MJ, Ritchey M, Rodriguez CJ, Roth GA, Rosamond WD, Sasson C, Towfighi A, Tsao CW, Turner MB, Virani SS, Voeks JH, Willey JZ, Wilkins JT, Wu JH, Alger HM, Wong SS, Muntner P, American Heart Association Statistics Committee and Stroke Statistics Subcommittee (2017) Heart disease and stroke statistics—2017 update: a report from the American Heart Association. Circulation 135:e146–e603CrossRefPubMedPubMedCentral Benjamin EJ, Blaha MJ, Chiuve SE, Cushman M, Das SR, Deo R, de Ferranti SD, Floyd J, Fornage M, Gillespie C, Isasi CR, Jiménez MC, Jordan LC, Judd SE, Lackland D, Lichtman JH, Lisabeth L, Liu S, Longenecker CT, Mackey RH, Matsushita K, Mozaffarian D, Mussolino ME, Nasir K, Neumar RW, Palaniappan L, Pandey DK, Thiagarajan RR, Reeves MJ, Ritchey M, Rodriguez CJ, Roth GA, Rosamond WD, Sasson C, Towfighi A, Tsao CW, Turner MB, Virani SS, Voeks JH, Willey JZ, Wilkins JT, Wu JH, Alger HM, Wong SS, Muntner P, American Heart Association Statistics Committee and Stroke Statistics Subcommittee (2017) Heart disease and stroke statistics—2017 update: a report from the American Heart Association. Circulation 135:e146–e603CrossRefPubMedPubMedCentral
2.
Zurück zum Zitat Postma AV, Bezzina CR, Christoffels VM (2016) Genetics of congenital heart disease: the contribution of the noncoding regulatory genome. J Hum Genet 61:13–19CrossRefPubMed Postma AV, Bezzina CR, Christoffels VM (2016) Genetics of congenital heart disease: the contribution of the noncoding regulatory genome. J Hum Genet 61:13–19CrossRefPubMed
4.
Zurück zum Zitat Kahr PC, Radke RM, Orwat S, Baumgartner H, Diller GP (2015) Analysis of associations between congenital heart defect complexity and health-related quality of life using a meta-analytic strategy. Int J Cardiol 199:197–203CrossRefPubMed Kahr PC, Radke RM, Orwat S, Baumgartner H, Diller GP (2015) Analysis of associations between congenital heart defect complexity and health-related quality of life using a meta-analytic strategy. Int J Cardiol 199:197–203CrossRefPubMed
5.
Zurück zum Zitat Gomes-Neto M, Saquetto MB, da Silva e Silva CM, Conceição CS, Carvalho VO (2016) Impact of exercise training in aerobic capacity and pulmonary function in children and adolescents after congenital heart disease surgery: a systematic review with meta-analysis. Pediatr Cardiol 37:217–224CrossRefPubMed Gomes-Neto M, Saquetto MB, da Silva e Silva CM, Conceição CS, Carvalho VO (2016) Impact of exercise training in aerobic capacity and pulmonary function in children and adolescents after congenital heart disease surgery: a systematic review with meta-analysis. Pediatr Cardiol 37:217–224CrossRefPubMed
6.
Zurück zum Zitat Morton PD, Ishibashi N, Jonas RA (2017) Neurodevelopmental abnormalities and congenital heart disease: insights into altered brain maturation. Circ Res 120:960–977CrossRefPubMedPubMedCentral Morton PD, Ishibashi N, Jonas RA (2017) Neurodevelopmental abnormalities and congenital heart disease: insights into altered brain maturation. Circ Res 120:960–977CrossRefPubMedPubMedCentral
7.
Zurück zum Zitat Peyvandi S, De Santiago V, Chakkarapani E, Chau V, Campbell A, Poskitt KJ, Xu D, Barkovich AJ, Miller S, McQuillen P (2016) Association of prenatal diagnosis of critical congenital heart disease with postnatal brain development and the risk of brain injury. JAMA Pediatr 170:e154450CrossRefPubMedPubMedCentral Peyvandi S, De Santiago V, Chakkarapani E, Chau V, Campbell A, Poskitt KJ, Xu D, Barkovich AJ, Miller S, McQuillen P (2016) Association of prenatal diagnosis of critical congenital heart disease with postnatal brain development and the risk of brain injury. JAMA Pediatr 170:e154450CrossRefPubMedPubMedCentral
8.
Zurück zum Zitat Marelli A, Miller SP, Marino BS, Jefferson AL, Newburger JW (2016) Brain in congenital heart disease across the lifespan: the cumulative burden of injury. Circulation 133:1951–1962CrossRefPubMedPubMedCentral Marelli A, Miller SP, Marino BS, Jefferson AL, Newburger JW (2016) Brain in congenital heart disease across the lifespan: the cumulative burden of injury. Circulation 133:1951–1962CrossRefPubMedPubMedCentral
9.
Zurück zum Zitat Jensen AS, Idorn L, Thomsen C, von der Recke P, Mortensen J, Sørensen KE, Thilén U, Nagy E, Kofoed KF, Ostrowski SR, Søndergaard L (2015) Prevalence of cerebral and pulmonary thrombosis in patients with cyanotic congenital heart disease. Heart 101:1540–1546CrossRefPubMed Jensen AS, Idorn L, Thomsen C, von der Recke P, Mortensen J, Sørensen KE, Thilén U, Nagy E, Kofoed KF, Ostrowski SR, Søndergaard L (2015) Prevalence of cerebral and pulmonary thrombosis in patients with cyanotic congenital heart disease. Heart 101:1540–1546CrossRefPubMed
10.
Zurück zum Zitat Diller GP, Baumgartner H (2017) Endocarditis in adults with congenital heart disease: new answers-new questions. Eur Heart J 38:2057–2059CrossRefPubMed Diller GP, Baumgartner H (2017) Endocarditis in adults with congenital heart disease: new answers-new questions. Eur Heart J 38:2057–2059CrossRefPubMed
11.
Zurück zum Zitat Kuijpers JM, Koolbergen DR, Groenink M, Peels KC, Reichert CL, Post MC, Bosker HA, Wajon EM, Zwinderman AH, Mulder BJ, Bouma BJ (2017) Incidence, risk factors, and predictors of infective endocarditis in adult congenital heart disease: focus on the use of prosthetic material. Eur Heart J 38:2048–2056CrossRefPubMed Kuijpers JM, Koolbergen DR, Groenink M, Peels KC, Reichert CL, Post MC, Bosker HA, Wajon EM, Zwinderman AH, Mulder BJ, Bouma BJ (2017) Incidence, risk factors, and predictors of infective endocarditis in adult congenital heart disease: focus on the use of prosthetic material. Eur Heart J 38:2048–2056CrossRefPubMed
12.
Zurück zum Zitat Li G, Li Y, Tan XQ, Jia P, Zhao J, Liu D, Wang T, Liu B (2017) Plasma growth differentiation factor-15 is a potential biomarker for pediatric pulmonary arterial hypertension associated with congenital heart disease. Pediatr Cardiol 38:1620–1626CrossRefPubMed Li G, Li Y, Tan XQ, Jia P, Zhao J, Liu D, Wang T, Liu B (2017) Plasma growth differentiation factor-15 is a potential biomarker for pediatric pulmonary arterial hypertension associated with congenital heart disease. Pediatr Cardiol 38:1620–1626CrossRefPubMed
13.
Zurück zum Zitat Li G, Tang L, Jia P, Zhao J, Liu D, Liu B (2016) Elevated plasma connective tissue growth factor levels in children with pulmonary arterial hypertension associated with congenital heart disease. Pediatr Cardiol 37:714–721CrossRefPubMed Li G, Tang L, Jia P, Zhao J, Liu D, Liu B (2016) Elevated plasma connective tissue growth factor levels in children with pulmonary arterial hypertension associated with congenital heart disease. Pediatr Cardiol 37:714–721CrossRefPubMed
14.
Zurück zum Zitat Müller J, Heck PB, Ewert P, Hager A (2017) Noninvasive screening for pulmonary hypertension by exercise testing in congenital heart disease. Ann Thorac Surg 103:1544–1549CrossRefPubMed Müller J, Heck PB, Ewert P, Hager A (2017) Noninvasive screening for pulmonary hypertension by exercise testing in congenital heart disease. Ann Thorac Surg 103:1544–1549CrossRefPubMed
15.
Zurück zum Zitat van der Feen DE, Bartelds B, de Boer RA, Berger RM (2017) Pulmonary arterial hypertension in congenital heart disease: translational opportunities to study the reversibility of pulmonary vascular disease. Eur Heart J 38:2034–2041CrossRefPubMed van der Feen DE, Bartelds B, de Boer RA, Berger RM (2017) Pulmonary arterial hypertension in congenital heart disease: translational opportunities to study the reversibility of pulmonary vascular disease. Eur Heart J 38:2034–2041CrossRefPubMed
16.
Zurück zum Zitat Budts W, Roos-Hesselink J, Rädle-Hurst T, Eicken A, McDonagh TA, Lambrinou E, Crespo-Leiro MG, Walker F, Frogoudaki AA (2016) Treatment of heart failure in adult congenital heart disease: a position paper of the Working Group of Grown-Up Congenital Heart Disease and the Heart Failure Association of the European Society of Cardiology. Eur Heart J 37:1419–1427CrossRefPubMedPubMedCentral Budts W, Roos-Hesselink J, Rädle-Hurst T, Eicken A, McDonagh TA, Lambrinou E, Crespo-Leiro MG, Walker F, Frogoudaki AA (2016) Treatment of heart failure in adult congenital heart disease: a position paper of the Working Group of Grown-Up Congenital Heart Disease and the Heart Failure Association of the European Society of Cardiology. Eur Heart J 37:1419–1427CrossRefPubMedPubMedCentral
18.
Zurück zum Zitat Nandi D, Rossano JW, Wang Y, Jerrell JM (2017) Risk factors for heart failure and Its costs among children with complex congenital heart disease in a medicaid cohort. Pediatr Cardiol 38:1672–1679CrossRefPubMed Nandi D, Rossano JW, Wang Y, Jerrell JM (2017) Risk factors for heart failure and Its costs among children with complex congenital heart disease in a medicaid cohort. Pediatr Cardiol 38:1672–1679CrossRefPubMed
19.
Zurück zum Zitat Stout KK, Broberg CS, Book WM, Cecchin F, Chen JM, Dimopoulos K, Everitt MD, Gatzoulis M, Harris L, Hsu DT, Kuvin JT, Law Y, Martin CM, Murphy AM, Ross HJ, Singh G, Spray TL, American Heart Association Council on Clinical Cardiology, Council on Functional Genomics and Translational Biology, and Council on Cardiovascular Radiology and Imaging (2016) Chronic heart failure in congenital heart disease: a scientific statement from the American Heart Association. Circulation 133:770–801 Stout KK, Broberg CS, Book WM, Cecchin F, Chen JM, Dimopoulos K, Everitt MD, Gatzoulis M, Harris L, Hsu DT, Kuvin JT, Law Y, Martin CM, Murphy AM, Ross HJ, Singh G, Spray TL, American Heart Association Council on Clinical Cardiology, Council on Functional Genomics and Translational Biology, and Council on Cardiovascular Radiology and Imaging (2016) Chronic heart failure in congenital heart disease: a scientific statement from the American Heart Association. Circulation 133:770–801
20.
Zurück zum Zitat Holst KA, Said SM, Nelson TJ, Cannon BC, Dearani JA (2017) Current interventional and surgical management of congenital heart disease: specific focus on valvular disease and cardiac arrhythmias. Circ Res 120:1027–1044CrossRefPubMed Holst KA, Said SM, Nelson TJ, Cannon BC, Dearani JA (2017) Current interventional and surgical management of congenital heart disease: specific focus on valvular disease and cardiac arrhythmias. Circ Res 120:1027–1044CrossRefPubMed
21.
Zurück zum Zitat Khairy P (2016) Ventricular arrhythmias and sudden cardiac death in adults with congenital heart disease. Heart 102:1703–1709CrossRefPubMed Khairy P (2016) Ventricular arrhythmias and sudden cardiac death in adults with congenital heart disease. Heart 102:1703–1709CrossRefPubMed
22.
Zurück zum Zitat Loomba RS, Aggarwal S, Gupta N, Buelow M, Alla V, Arora RR, Anderson RH (2016) Arrhythmias in adult congenital patients with bodily isomerism. Pediatr Cardiol 37:330–337CrossRefPubMed Loomba RS, Aggarwal S, Gupta N, Buelow M, Alla V, Arora RR, Anderson RH (2016) Arrhythmias in adult congenital patients with bodily isomerism. Pediatr Cardiol 37:330–337CrossRefPubMed
23.
24.
Zurück zum Zitat McLeod CJ, Warnes C (2016) Recognition and management of arrhythmias in adult congenital heart disease. Curr Opin Cardiol 31:117–123CrossRefPubMed McLeod CJ, Warnes C (2016) Recognition and management of arrhythmias in adult congenital heart disease. Curr Opin Cardiol 31:117–123CrossRefPubMed
25.
Zurück zum Zitat Diller GP, Baumgartner H (2016) Sudden cardiac death during exercise in patients with congenital heart disease: the exercise paradox and the challenge of appropriate counselling. Eur Heart J 37:627–629CrossRefPubMed Diller GP, Baumgartner H (2016) Sudden cardiac death during exercise in patients with congenital heart disease: the exercise paradox and the challenge of appropriate counselling. Eur Heart J 37:627–629CrossRefPubMed
26.
Zurück zum Zitat Diller GP, Kempny A, Alonso-Gonzalez R, Swan L, Uebing A, Li W, Babu-Narayan S, Wort SJ, Dimopoulos K, Gatzoulis MA (2015) Survival prospects and circumstances of death in contemporary adult congenital heart disease patients under follow-up at a large tertiary center. Circulation 13:2118–2125CrossRef Diller GP, Kempny A, Alonso-Gonzalez R, Swan L, Uebing A, Li W, Babu-Narayan S, Wort SJ, Dimopoulos K, Gatzoulis MA (2015) Survival prospects and circumstances of death in contemporary adult congenital heart disease patients under follow-up at a large tertiary center. Circulation 13:2118–2125CrossRef
27.
Zurück zum Zitat Engelings CC, Helm PC, Abdul-Khaliq H, Asfour B, Bauer UM, Baumgartner H, Kececioglu D, Körten MA, Diller GP, Tutarel O (2016) Cause of death in adults with congenital heart disease—an analysis of the German National Register for Congenital Heart Defects. Int J Cardiol 211:31–36CrossRefPubMed Engelings CC, Helm PC, Abdul-Khaliq H, Asfour B, Bauer UM, Baumgartner H, Kececioglu D, Körten MA, Diller GP, Tutarel O (2016) Cause of death in adults with congenital heart disease—an analysis of the German National Register for Congenital Heart Defects. Int J Cardiol 211:31–36CrossRefPubMed
28.
Zurück zum Zitat Jortveit J, Eskedal L, Hirth A, Fomina T, Døhlen G, Hagemo P, Tell GS, Birkeland S, Øyen N, Holmstrøm H (2016) Sudden unexpected death in children with congenital heart defects. Eur Heart J 37:621–626CrossRefPubMed Jortveit J, Eskedal L, Hirth A, Fomina T, Døhlen G, Hagemo P, Tell GS, Birkeland S, Øyen N, Holmstrøm H (2016) Sudden unexpected death in children with congenital heart defects. Eur Heart J 37:621–626CrossRefPubMed
29.
Zurück zum Zitat Koyak Z, de Groot JR, Bouma BJ, Zwinderman AH, Silversides CK, Oechslin EN, Budts W, Van Gelder IC, Mulder BJ, Harris L (2017) Sudden cardiac death in adult congenital heart disease: can the unpredictable be foreseen? Europace 19:401–406PubMed Koyak Z, de Groot JR, Bouma BJ, Zwinderman AH, Silversides CK, Oechslin EN, Budts W, Van Gelder IC, Mulder BJ, Harris L (2017) Sudden cardiac death in adult congenital heart disease: can the unpredictable be foreseen? Europace 19:401–406PubMed
30.
Zurück zum Zitat Bouma BJ, Mulder BJ (2017) Changing landscape of congenital heart disease. Circ Res 120:908–922CrossRefPubMed Bouma BJ, Mulder BJ (2017) Changing landscape of congenital heart disease. Circ Res 120:908–922CrossRefPubMed
31.
Zurück zum Zitat Mandalenakis Z, Rosengren A, Skoglund K, Lappas G, Eriksson P, Dellborg M (2017) Survivorship in children and young adults with congenital heart disease in Sweden. JAMA Int 177:224–230CrossRef Mandalenakis Z, Rosengren A, Skoglund K, Lappas G, Eriksson P, Dellborg M (2017) Survivorship in children and young adults with congenital heart disease in Sweden. JAMA Int 177:224–230CrossRef
32.
Zurück zum Zitat Williams RG (2016) Late causes of death after congenital heart defects: a population-based study from Finland. J Am Coll Cardiol 68:499–501CrossRefPubMed Williams RG (2016) Late causes of death after congenital heart defects: a population-based study from Finland. J Am Coll Cardiol 68:499–501CrossRefPubMed
33.
Zurück zum Zitat Andersen TA, Troelsen Kde L, Larsen LA (2014) Of mice and men: molecular genetics of congenital heart disease. Cell Mol Life Sci 71:1327–1352CrossRefPubMed Andersen TA, Troelsen Kde L, Larsen LA (2014) Of mice and men: molecular genetics of congenital heart disease. Cell Mol Life Sci 71:1327–1352CrossRefPubMed
34.
Zurück zum Zitat Blue GM, Kirk EP, Giannoulatou E, Sholler GF, Dunwoodie SL, Harvey RP, Winlaw DS (2017) Advances in the genetics of congenital heart disease: a clinician’s guide. J Am Coll Cardiol 69:859–870CrossRefPubMed Blue GM, Kirk EP, Giannoulatou E, Sholler GF, Dunwoodie SL, Harvey RP, Winlaw DS (2017) Advances in the genetics of congenital heart disease: a clinician’s guide. J Am Coll Cardiol 69:859–870CrossRefPubMed
36.
Zurück zum Zitat Fahed AC, Gelb BD, Seidman JG, Seidman CE (2013) Genetics of congenital heart disease: the glass half empty. Circ Res 112:707–720CrossRefPubMed Fahed AC, Gelb BD, Seidman JG, Seidman CE (2013) Genetics of congenital heart disease: the glass half empty. Circ Res 112:707–720CrossRefPubMed
37.
Zurück zum Zitat Boyle L, Wamelink MM, Salomons GS, Roos B, Pop A, Dauber A, Hwa V, Andrew M, Douglas J, Feingold M, Kramer N, Saitta S, Retterer K, Cho MT, Begtrup A, Monaghan KG, Wynn J, Chung WK (2016) Mutations in TKT are the cause of a syndrome including short stature, developmental delay, and congenital heart defects. Am J Hum Genet 98:1235–1242CrossRefPubMedPubMedCentral Boyle L, Wamelink MM, Salomons GS, Roos B, Pop A, Dauber A, Hwa V, Andrew M, Douglas J, Feingold M, Kramer N, Saitta S, Retterer K, Cho MT, Begtrup A, Monaghan KG, Wynn J, Chung WK (2016) Mutations in TKT are the cause of a syndrome including short stature, developmental delay, and congenital heart defects. Am J Hum Genet 98:1235–1242CrossRefPubMedPubMedCentral
38.
Zurück zum Zitat Cao Y, Wang J, Wei C, Hou Z, Li Y, Zou H, Meng M, Wang W, Jiang L (2016) Genetic variations of NKX2-5 in sporadic atrial septal defect and ventricular septal defect in Chinese Yunnan population. Gene 575:29–33CrossRefPubMed Cao Y, Wang J, Wei C, Hou Z, Li Y, Zou H, Meng M, Wang W, Jiang L (2016) Genetic variations of NKX2-5 in sporadic atrial septal defect and ventricular septal defect in Chinese Yunnan population. Gene 575:29–33CrossRefPubMed
39.
Zurück zum Zitat Chen J, Qi B, Zhao J, Liu W, Duan R, Zhang M (2016) A novel mutation of GATA4 (K300T) associated with familial atrial septal defect. Gene 575:473–477CrossRefPubMed Chen J, Qi B, Zhao J, Liu W, Duan R, Zhang M (2016) A novel mutation of GATA4 (K300T) associated with familial atrial septal defect. Gene 575:473–477CrossRefPubMed
40.
Zurück zum Zitat Ellesøe SG, Johansen MM, Bjerre JV, Hjortdal VE, Brunak S, Larsen LA (2016) Familial atrial septal defect and sudden cardiac death: identification of a novel NKX2-5 mutation and a review of the literature. Congenit Heart Dis 11:283–290CrossRefPubMed Ellesøe SG, Johansen MM, Bjerre JV, Hjortdal VE, Brunak S, Larsen LA (2016) Familial atrial septal defect and sudden cardiac death: identification of a novel NKX2-5 mutation and a review of the literature. Congenit Heart Dis 11:283–290CrossRefPubMed
41.
Zurück zum Zitat Huang RT, Wang J, Xue S, Qiu XB, Shi HY, Li RG, Qu XK, Yang XX, Liu H, Li N, Li YJ, Xu YJ, Yang YQ (2017) TBX20 loss-of-function mutation responsible for familial tetralogy of Fallot or sporadic persistent truncus arteriosus. Int J Med Sci 14:323–332CrossRefPubMedPubMedCentral Huang RT, Wang J, Xue S, Qiu XB, Shi HY, Li RG, Qu XK, Yang XX, Liu H, Li N, Li YJ, Xu YJ, Yang YQ (2017) TBX20 loss-of-function mutation responsible for familial tetralogy of Fallot or sporadic persistent truncus arteriosus. Int J Med Sci 14:323–332CrossRefPubMedPubMedCentral
42.
Zurück zum Zitat Huang RT, Xue S, Wang J, Gu JY, Xu JH, Li YJ, Li N, Yang XX, Liu H, Zhang XD, Qu XK, Xu YJ, Qiu XB, Li RG, Yang YQ (2016) CASZ1 loss-of-function mutation associated with congenital heart disease. Gene 595:62–68CrossRefPubMed Huang RT, Xue S, Wang J, Gu JY, Xu JH, Li YJ, Li N, Yang XX, Liu H, Zhang XD, Qu XK, Xu YJ, Qiu XB, Li RG, Yang YQ (2016) CASZ1 loss-of-function mutation associated with congenital heart disease. Gene 595:62–68CrossRefPubMed
43.
Zurück zum Zitat Li FF, Deng X, Zhou J, Yan P, Zhao EY, Liu SL (2016) Characterization of human bone morphogenetic protein gene variants for possible roles in congenital heart disease. Mol Med Rep 14:1459–1464CrossRefPubMedPubMedCentral Li FF, Deng X, Zhou J, Yan P, Zhao EY, Liu SL (2016) Characterization of human bone morphogenetic protein gene variants for possible roles in congenital heart disease. Mol Med Rep 14:1459–1464CrossRefPubMedPubMedCentral
44.
Zurück zum Zitat Li L, Wang J, Liu XY, Liu H, Shi HY, Yang XX, Li N, Li YJ, Huang RT, Xue S, Qiu XB, Yang YQ (2017) HAND1 loss-of-function mutation contributes to congenital double outlet right ventricle. Int J Mol Med 39:711–718CrossRefPubMed Li L, Wang J, Liu XY, Liu H, Shi HY, Yang XX, Li N, Li YJ, Huang RT, Xue S, Qiu XB, Yang YQ (2017) HAND1 loss-of-function mutation contributes to congenital double outlet right ventricle. Int J Mol Med 39:711–718CrossRefPubMed
45.
Zurück zum Zitat Li N, Subrahmanyan L, Smith E, Yu X, Zaidi S, Choi M, Mane S, Nelson-Williams C, Bahjati M, Kazemi M, Hashemi M, Fathzadeh M, Narayanan A, Tian L, Montazeri F, Mani M, Begleiter ML, Coon BG, Lynch HT, Olson EN, Zhao H, Ruland J, Lifton RP, Mani A (2016) Mutations in the histone modifier PRDM6 are associated with isolated nonsyndromic patent ductus arteriosus. Am J Hum Genet 98:1082–1091CrossRefPubMedPubMedCentral Li N, Subrahmanyan L, Smith E, Yu X, Zaidi S, Choi M, Mane S, Nelson-Williams C, Bahjati M, Kazemi M, Hashemi M, Fathzadeh M, Narayanan A, Tian L, Montazeri F, Mani M, Begleiter ML, Coon BG, Lynch HT, Olson EN, Zhao H, Ruland J, Lifton RP, Mani A (2016) Mutations in the histone modifier PRDM6 are associated with isolated nonsyndromic patent ductus arteriosus. Am J Hum Genet 98:1082–1091CrossRefPubMedPubMedCentral
48.
Zurück zum Zitat Li YJ, Yang YQ (2017) An update on the molecular diagnosis of congenital heart disease: focus on loss-of-function mutations. Expert Rev Mol Diagn 17:393–401CrossRefPubMed Li YJ, Yang YQ (2017) An update on the molecular diagnosis of congenital heart disease: focus on loss-of-function mutations. Expert Rev Mol Diagn 17:393–401CrossRefPubMed
49.
Zurück zum Zitat Liu D, Liu QQ, Guan LH, Jiang X, Zhou DX, Beghetti M, Qu JM, Jing ZC (2016) BMPR2 mutation is a potential predisposing genetic risk factor for congenital heart disease associated pulmonary vascular disease. Int J Cardiol 211:132–136CrossRefPubMed Liu D, Liu QQ, Guan LH, Jiang X, Zhou DX, Beghetti M, Qu JM, Jing ZC (2016) BMPR2 mutation is a potential predisposing genetic risk factor for congenital heart disease associated pulmonary vascular disease. Int J Cardiol 211:132–136CrossRefPubMed
50.
Zurück zum Zitat Liu S, Su Z, Tan S, Ni B, Pan H, Liu B, Wang J, Xiao J, Chen Q (2017) Functional analyses of a novel CITED2 nonsynonymous mutation in Chinese Tibetan patients with congenital heart disease. Pediatr Cardiol 38:1226–1231CrossRefPubMed Liu S, Su Z, Tan S, Ni B, Pan H, Liu B, Wang J, Xiao J, Chen Q (2017) Functional analyses of a novel CITED2 nonsynonymous mutation in Chinese Tibetan patients with congenital heart disease. Pediatr Cardiol 38:1226–1231CrossRefPubMed
51.
Zurück zum Zitat Lu CX, Gong HR, Liu XY, Wang J, Zhao CM, Huang RT, Xue S, Yang YQ (2016) A novel HAND2 loss-of-function mutation responsible for tetralogy of Fallot. Int J Mol Med 37:445–451CrossRefPubMed Lu CX, Gong HR, Liu XY, Wang J, Zhao CM, Huang RT, Xue S, Yang YQ (2016) A novel HAND2 loss-of-function mutation responsible for tetralogy of Fallot. Int J Mol Med 37:445–451CrossRefPubMed
52.
Zurück zum Zitat Priest JR, Osoegawa K, Mohammed N, Nanda V, Kundu R, Schultz K, Lammer EJ, Girirajan S, Scheetz T, Waggott D, Haddad F, Reddy S, Bernstein D, Burns T, Steimle JD, Yang XH, Moskowitz IP, Hurles M, Lifton RP, Nickerson D, Bamshad M, Eichler EE, Mital S, Sheffield V, Quertermous T, Gelb BD, Portman M, Ashley EA (2016) De novo and rare variants at multiple loci support the oligogenic origins of atrioventricular septal heart defects. PLoS Genet 12:e100596CrossRef Priest JR, Osoegawa K, Mohammed N, Nanda V, Kundu R, Schultz K, Lammer EJ, Girirajan S, Scheetz T, Waggott D, Haddad F, Reddy S, Bernstein D, Burns T, Steimle JD, Yang XH, Moskowitz IP, Hurles M, Lifton RP, Nickerson D, Bamshad M, Eichler EE, Mital S, Sheffield V, Quertermous T, Gelb BD, Portman M, Ashley EA (2016) De novo and rare variants at multiple loci support the oligogenic origins of atrioventricular septal heart defects. PLoS Genet 12:e100596CrossRef
53.
Zurück zum Zitat Qiao XH, Wang F, Zhang XL, Huang RT, Xue S, Wang J, Qiu XB, Liu XY, Yang YQ (2017) MEF2C loss-of-function mutation contributes to congenital heart defects. Int J Med Sci 14:1143–1153CrossRefPubMedPubMedCentral Qiao XH, Wang F, Zhang XL, Huang RT, Xue S, Wang J, Qiu XB, Liu XY, Yang YQ (2017) MEF2C loss-of-function mutation contributes to congenital heart defects. Int J Med Sci 14:1143–1153CrossRefPubMedPubMedCentral
56.
Zurück zum Zitat Shi LM, Tao JW, Qiu XB, Wang J, Yuan F, Xu L, Liu H, Li RG, Xu YJ, Wang Q, Zheng HZ, Li X, Wang XZ, Zhang M, Qu XK, Yang YQ (2014) GATA5 loss-of-function mutations associated with congenital bicuspid aortic valve. Int J Mol Med 33:1219–1226CrossRefPubMed Shi LM, Tao JW, Qiu XB, Wang J, Yuan F, Xu L, Liu H, Li RG, Xu YJ, Wang Q, Zheng HZ, Li X, Wang XZ, Zhang M, Qu XK, Yang YQ (2014) GATA5 loss-of-function mutations associated with congenital bicuspid aortic valve. Int J Mol Med 33:1219–1226CrossRefPubMed
57.
Zurück zum Zitat Sifrim A, Hitz MP, Wilsdon A, Breckpot J, Turki SH, Thienpont B, McRae J, Fitzgerald TW, Singh T, Swaminathan GJ, Prigmore E, Rajan D, Abdul-Khaliq H, Banka S, Bauer UM, Bentham J, Berger F, Bhattacharya S, Bu’Lock F, Canham N, Colgiu IG, Cosgrove C, Cox H, Daehnert I, Daly A, Danesh J, Fryer A, Gewillig M, Hobson E, Hoff K, Homfray T, INTERVAL Study, Kahlert AK, Ketley A, Kramer HH, Lachlan K, Lampe AK, Louw JJ, Manickara AK, Manase D, McCarthy KP, Metcalfe K, Moore C, Newbury-Ecob R, Omer SO, Ouwehand WH, Park SM, Parker MJ, Pickardt T, Pollard MO, Robert L, Roberts DJ, Sambrook J, Setchfield K, Stiller B, Thornborough C, Toka O, Watkins H, Williams D, Wright M, Mital S, Daubeney PE, Keavney B, Goodship J, UK10K Consortium, Abu-Sulaiman RM, Klaassen S, Wright CF, Firth HV, Barrett JC, Devriendt K, FitzPatrick DR, Brook JD, Deciphering Developmental Disorders Study, Hurles ME (2016) Distinct genetic architectures for syndromic and nonsyndromic congenital heart defects identified by exome sequencing. Nat Genet 48:1060–1065CrossRefPubMed Sifrim A, Hitz MP, Wilsdon A, Breckpot J, Turki SH, Thienpont B, McRae J, Fitzgerald TW, Singh T, Swaminathan GJ, Prigmore E, Rajan D, Abdul-Khaliq H, Banka S, Bauer UM, Bentham J, Berger F, Bhattacharya S, Bu’Lock F, Canham N, Colgiu IG, Cosgrove C, Cox H, Daehnert I, Daly A, Danesh J, Fryer A, Gewillig M, Hobson E, Hoff K, Homfray T, INTERVAL Study, Kahlert AK, Ketley A, Kramer HH, Lachlan K, Lampe AK, Louw JJ, Manickara AK, Manase D, McCarthy KP, Metcalfe K, Moore C, Newbury-Ecob R, Omer SO, Ouwehand WH, Park SM, Parker MJ, Pickardt T, Pollard MO, Robert L, Roberts DJ, Sambrook J, Setchfield K, Stiller B, Thornborough C, Toka O, Watkins H, Williams D, Wright M, Mital S, Daubeney PE, Keavney B, Goodship J, UK10K Consortium, Abu-Sulaiman RM, Klaassen S, Wright CF, Firth HV, Barrett JC, Devriendt K, FitzPatrick DR, Brook JD, Deciphering Developmental Disorders Study, Hurles ME (2016) Distinct genetic architectures for syndromic and nonsyndromic congenital heart defects identified by exome sequencing. Nat Genet 48:1060–1065CrossRefPubMed
58.
Zurück zum Zitat Sun YM, Wang J, Qiu XB, Yuan F, Li RG, Xu YJ, Qu XK, Shi HY, Hou XM, Huang RT, Xue S, Yang YQ (2016) A HAND2 loss-of-function mutation causes familial ventricular septal defect and pulmonary stenosis. G3 6:987–992CrossRefPubMedPubMedCentral Sun YM, Wang J, Qiu XB, Yuan F, Li RG, Xu YJ, Qu XK, Shi HY, Hou XM, Huang RT, Xue S, Yang YQ (2016) A HAND2 loss-of-function mutation causes familial ventricular septal defect and pulmonary stenosis. G3 6:987–992CrossRefPubMedPubMedCentral
59.
Zurück zum Zitat Sun YM, Wang J, Qiu XB, Yuan F, Xu YJ, Li RG, Qu XK, Huang RT, Xue S, Yang YQ (2016) PITX2 loss-of-function mutation contributes to tetralogy of Fallot. Gene 577:258–264CrossRefPubMed Sun YM, Wang J, Qiu XB, Yuan F, Xu YJ, Li RG, Qu XK, Huang RT, Xue S, Yang YQ (2016) PITX2 loss-of-function mutation contributes to tetralogy of Fallot. Gene 577:258–264CrossRefPubMed
60.
Zurück zum Zitat Tong YF (2016) Mutations of NKX2.5 and GATA4 genes in the development of congenital heart disease. Gene 588:86–94CrossRefPubMed Tong YF (2016) Mutations of NKX2.5 and GATA4 genes in the development of congenital heart disease. Gene 588:86–94CrossRefPubMed
61.
Zurück zum Zitat Wang F, Wang H, Wang L, Zhou S, Chang M, Zhou J, Dou Y, Wang Y, Shi X (2016) Association between single nucleotide polymorphisms in NFATC1 signaling pathway genes and susceptibility to congenital heart disease in the Chinese population. Pediatr Cardiol 37:1548–1561CrossRefPubMed Wang F, Wang H, Wang L, Zhou S, Chang M, Zhou J, Dou Y, Wang Y, Shi X (2016) Association between single nucleotide polymorphisms in NFATC1 signaling pathway genes and susceptibility to congenital heart disease in the Chinese population. Pediatr Cardiol 37:1548–1561CrossRefPubMed
62.
Zurück zum Zitat Wang J, Hu XQ, Guo YH, Gu JY, Xu JH, Li YJ, Li N, Yang XX, Yang YQ (2017) HAND1 loss-of-function mutation causes tetralogy of Fallot. Pediatr Cardiol 38:547–557CrossRefPubMed Wang J, Hu XQ, Guo YH, Gu JY, Xu JH, Li YJ, Li N, Yang XX, Yang YQ (2017) HAND1 loss-of-function mutation causes tetralogy of Fallot. Pediatr Cardiol 38:547–557CrossRefPubMed
63.
Zurück zum Zitat Wang J, Mao JH, Ding KK, Xu WJ, Liu XY, Qiu XB, Li RG, Qu XK, Xu YJ, Huang RT, Xue S, Yang YQ (2015) A novel NKX2.6 mutation associated with congenital ventricular septal defect. Pediatr Cardiol 36:646–656CrossRefPubMed Wang J, Mao JH, Ding KK, Xu WJ, Liu XY, Qiu XB, Li RG, Qu XK, Xu YJ, Huang RT, Xue S, Yang YQ (2015) A novel NKX2.6 mutation associated with congenital ventricular septal defect. Pediatr Cardiol 36:646–656CrossRefPubMed
64.
Zurück zum Zitat Wang X, Chang WL, Chen CA, Rosenfeld JA, Al Shamsi A, Al-Gazali L, McGuire M, Mew NA, Arnold GL, Qu C, Ding Y, Muzny DM, Gibbs RA, Eng CM, Walkiewicz M, Xia F, Plon SE, Lupski JR, Schaaf CP, Yang Y (2017) Germline mutations in ABL1 cause an autosomal dominant syndrome characterized by congenital heart defects and skeletal malformations. Nat Genet 49:613–617CrossRefPubMedPubMedCentral Wang X, Chang WL, Chen CA, Rosenfeld JA, Al Shamsi A, Al-Gazali L, McGuire M, Mew NA, Arnold GL, Qu C, Ding Y, Muzny DM, Gibbs RA, Eng CM, Walkiewicz M, Xia F, Plon SE, Lupski JR, Schaaf CP, Yang Y (2017) Germline mutations in ABL1 cause an autosomal dominant syndrome characterized by congenital heart defects and skeletal malformations. Nat Genet 49:613–617CrossRefPubMedPubMedCentral
65.
66.
Zurück zum Zitat Xie X, Shi X, Xun X, Rao L (2016) Association of NKX2-5 genetic polymorphisms with the risk of congenital heart disease: a meta-analysis. Pediatr Cardiol 37:953–961CrossRefPubMed Xie X, Shi X, Xun X, Rao L (2016) Association of NKX2-5 genetic polymorphisms with the risk of congenital heart disease: a meta-analysis. Pediatr Cardiol 37:953–961CrossRefPubMed
67.
Zurück zum Zitat Xu YJ, Qiu XB, Yuan F, Shi HY, Xu L, Hou XM, Qu XK, Liu X, Huang RT, Xue S, Yang YQ, Li RG (2017) Prevalence and spectrum of NKX2.5 mutations in patients with congenital atrial septal defect and atrioventricular block. Mol Med Rep 15:2247–2254CrossRefPubMed Xu YJ, Qiu XB, Yuan F, Shi HY, Xu L, Hou XM, Qu XK, Liu X, Huang RT, Xue S, Yang YQ, Li RG (2017) Prevalence and spectrum of NKX2.5 mutations in patients with congenital atrial septal defect and atrioventricular block. Mol Med Rep 15:2247–2254CrossRefPubMed
68.
Zurück zum Zitat Yoshida A, Morisaki H, Nakaji M, Kitano M, Kim KS, Sagawa K, Ishikawa S, Satokata I, Mitani Y, Kato H, Hamaoka K, Echigo S, Shiraishi I, Morisaki T (2016) Genetic mutation analysis in Japanese patients with non-syndromic congenital heart disease. J Hum Genet 61:157–162CrossRefPubMed Yoshida A, Morisaki H, Nakaji M, Kitano M, Kim KS, Sagawa K, Ishikawa S, Satokata I, Mitani Y, Kato H, Hamaoka K, Echigo S, Shiraishi I, Morisaki T (2016) Genetic mutation analysis in Japanese patients with non-syndromic congenital heart disease. J Hum Genet 61:157–162CrossRefPubMed
69.
Zurück zum Zitat Zhang M, Li FX, Liu XY, Huang RT, Xue S, Yang XX, Li YJ, Liu H, Shi HY, Pan X, Qiu XB, Yang YQ (2017) MESP1 loss of function mutation contributes to double outlet right ventricle. Mol Med Rep 16:2747–2754CrossRefPubMed Zhang M, Li FX, Liu XY, Huang RT, Xue S, Yang XX, Li YJ, Liu H, Shi HY, Pan X, Qiu XB, Yang YQ (2017) MESP1 loss of function mutation contributes to double outlet right ventricle. Mol Med Rep 16:2747–2754CrossRefPubMed
70.
Zurück zum Zitat Zhao CM, Sun B, Song HM, Wang J, Xu WJ, Jiang JF, Qiu XB, Yuan F, Xu JH, Yang YQ (2016) TBX20 loss-of-function mutation associated with familial dilated cardiomyopathy. Clin Chem Lab Med 54:325–332CrossRefPubMed Zhao CM, Sun B, Song HM, Wang J, Xu WJ, Jiang JF, Qiu XB, Yuan F, Xu JH, Yang YQ (2016) TBX20 loss-of-function mutation associated with familial dilated cardiomyopathy. Clin Chem Lab Med 54:325–332CrossRefPubMed
71.
Zurück zum Zitat Zheng GF, Wei D, Zhao H, Zhou N, Yang YQ, Liu XY (2012) A novel GATA6 mutation associated with congenital ventricular septal defect. Int J Mol Med 29:1065–1071PubMed Zheng GF, Wei D, Zhao H, Zhou N, Yang YQ, Liu XY (2012) A novel GATA6 mutation associated with congenital ventricular septal defect. Int J Mol Med 29:1065–1071PubMed
72.
Zurück zum Zitat Zhou YM, Dai XY, Huang RT, Xue S, Xu YJ, Qiu XB, Yang YQ (2016) A novel TBX20 loss of function mutation contributes to adult onset dilated cardiomyopathy or congenital atrial septal defect. Mol Med Rep 14:3307–3314CrossRefPubMed Zhou YM, Dai XY, Huang RT, Xue S, Xu YJ, Qiu XB, Yang YQ (2016) A novel TBX20 loss of function mutation contributes to adult onset dilated cardiomyopathy or congenital atrial septal defect. Mol Med Rep 14:3307–3314CrossRefPubMed
73.
Zurück zum Zitat Zhou YM, Dai XY, Qiu XB, Yuan F, Li RG, Xu YJ, Qu XK, Huang RT, Xue S, Yang YQ (2016) HAND1 loss-of-function mutation associated with familial dilated cardiomyopathy. Clin Chem Lab Med 54:1161–1167CrossRefPubMed Zhou YM, Dai XY, Qiu XB, Yuan F, Li RG, Xu YJ, Qu XK, Huang RT, Xue S, Yang YQ (2016) HAND1 loss-of-function mutation associated with familial dilated cardiomyopathy. Clin Chem Lab Med 54:1161–1167CrossRefPubMed
75.
Zurück zum Zitat Lin Q, Schwarz J, Bucana C, Olson EN (1997) Control of mouse cardiac morphogenesis and myogenesis by transcription factor MEF2C. Science 276:1404–1407CrossRefPubMedPubMedCentral Lin Q, Schwarz J, Bucana C, Olson EN (1997) Control of mouse cardiac morphogenesis and myogenesis by transcription factor MEF2C. Science 276:1404–1407CrossRefPubMedPubMedCentral
76.
Zurück zum Zitat Barnes RM, Harris IS, Jaehnig EJ, Sauls K, Sinha T, Rojas A, Schachterle W, McCulley DJ, Norris RA, Black BL (2016) MEF2C regulates outflow tract alignment and transcriptional control of Tdgf1. Development 143:774–779CrossRefPubMedPubMedCentral Barnes RM, Harris IS, Jaehnig EJ, Sauls K, Sinha T, Rojas A, Schachterle W, McCulley DJ, Norris RA, Black BL (2016) MEF2C regulates outflow tract alignment and transcriptional control of Tdgf1. Development 143:774–779CrossRefPubMedPubMedCentral
77.
78.
Zurück zum Zitat Dong C, Yang XZ, Zhang CY, Liu YY, Zhou RB, Cheng QD, Yan EK, Yin DC (2017) Myocyte enhancer factor 2C and its directly-interacting proteins: a review. Prog Biophys Mol Biol 126:22–30CrossRefPubMed Dong C, Yang XZ, Zhang CY, Liu YY, Zhou RB, Cheng QD, Yan EK, Yin DC (2017) Myocyte enhancer factor 2C and its directly-interacting proteins: a review. Prog Biophys Mol Biol 126:22–30CrossRefPubMed
79.
Zurück zum Zitat Pan Y, Wang ZG, Liu XY, Zhao H, Zhou N, Zheng GF, Qiu XB, Li RG, Yuan F, Shi HY, Hou XM, Yang YQ (2015) A novel TBX1 loss-of-function mutation associated with congenital heart disease. Pediatr Cardiol 36:1400–1410CrossRefPubMed Pan Y, Wang ZG, Liu XY, Zhao H, Zhou N, Zheng GF, Qiu XB, Li RG, Yuan F, Shi HY, Hou XM, Yang YQ (2015) A novel TBX1 loss-of-function mutation associated with congenital heart disease. Pediatr Cardiol 36:1400–1410CrossRefPubMed
80.
Zurück zum Zitat Guo DF, Li RG, Yuan F, Shi HY, Hou XM, Qu XK, Xu YJ, Zhang M, Liu X, Jiang JQ, Yang YQ, Qiu XB (2016) TBX5 loss-of-function mutation contributes to atrial fibrillation and atypical Holt-Oram syndrome. Mol Med Rep 13:4349–4356CrossRefPubMed Guo DF, Li RG, Yuan F, Shi HY, Hou XM, Qu XK, Xu YJ, Zhang M, Liu X, Jiang JQ, Yang YQ, Qiu XB (2016) TBX5 loss-of-function mutation contributes to atrial fibrillation and atypical Holt-Oram syndrome. Mol Med Rep 13:4349–4356CrossRefPubMed
81.
Zurück zum Zitat Rocha H, Sampaio M, Rocha R, Fernandes S, Leão M (2016) MEF2C haploinsufficiency syndrome: report of a new MEF2C mutation and review. Eur J Med Genet 59:478–482CrossRefPubMed Rocha H, Sampaio M, Rocha R, Fernandes S, Leão M (2016) MEF2C haploinsufficiency syndrome: report of a new MEF2C mutation and review. Eur J Med Genet 59:478–482CrossRefPubMed
82.
Zurück zum Zitat Yuan F, Qiu ZH, Wang XH, Sun YM, Wang J, Li RG, Liu H, Zhang M, Shi HY, Zhao L, Jiang WF, Liu X, Qiu XB, Qu XK, Yang YQ (2017) MEF2C loss-of-function mutation associated with familial dilated cardiomyopathy. Clin Chem Lab Med. https://doi.org/10.1515/cclm-2017-0461 Yuan F, Qiu ZH, Wang XH, Sun YM, Wang J, Li RG, Liu H, Zhang M, Shi HY, Zhao L, Jiang WF, Liu X, Qiu XB, Qu XK, Yang YQ (2017) MEF2C loss-of-function mutation associated with familial dilated cardiomyopathy. Clin Chem Lab Med. https://​doi.​org/​10.​1515/​cclm-2017-0461
83.
Zurück zum Zitat Kodo K, Nishizawa T, Furutani M, Arai S, Ishihara K, Oda M, Makino S, Fukuda K, Takahashi T, Matsuoka R, Nakanishi T, Yamagishi H (2012) Genetic analysis of essential cardiac transcription factors in 256 patients with non-syndromic congenital heart defects. Circ J 76:1703–1711CrossRefPubMed Kodo K, Nishizawa T, Furutani M, Arai S, Ishihara K, Oda M, Makino S, Fukuda K, Takahashi T, Matsuoka R, Nakanishi T, Yamagishi H (2012) Genetic analysis of essential cardiac transcription factors in 256 patients with non-syndromic congenital heart defects. Circ J 76:1703–1711CrossRefPubMed
Metadaten
Titel
A Novel MEF2C Loss-of-Function Mutation Associated with Congenital Double Outlet Right Ventricle
verfasst von
Cai-Xia Lu
Wei Wang
Qian Wang
Xing-Yuan Liu
Yi-Qing Yang
Publikationsdatum
21.02.2018
Verlag
Springer US
Erschienen in
Pediatric Cardiology / Ausgabe 4/2018
Print ISSN: 0172-0643
Elektronische ISSN: 1432-1971
DOI
https://doi.org/10.1007/s00246-018-1822-y

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