Skip to main content
Top
Published in: Pediatric Cardiology 2/2013

01-02-2013 | Original Article

HOXA1 Gene Is Not Potentially Related to Ventricular Septal Defect in Chinese Children

Authors: Jiangyan Liu, Binbin Wang, Xuehong Chen, Hang Li, Jing Wang, Longfei Cheng, Xu Ma, Bingren Gao

Published in: Pediatric Cardiology | Issue 2/2013

Login to get access

Abstract

The HOXA1 gene plays a fundamental role in embryonic morphogenesis. Recent studies in humans and mice have indicated that HOXA1 plays a previously unrecognized role in cardiovascular system development. Congenital heart disease (CHD), particularly ventricular septal defect (VSD), might be a clinically isolated manifestation of HOXA1 mutations. The purpose of the present study was to identify potential pathological mutations in the HOXA1 gene in Chinese children with VSD and to gain insight into the etiology of CHD. A total of 340 nonsyndromic VSD patients and 200 normal subjects were sampled. Two exons and the nearby introns of the human HOXA1 gene were amplified using polymerase chain reaction (PCR). The PCR products were purified and directly sequenced. However, no nonsynonymous mutations in the coding regions of the HOXA1 gene were observed: Only two novel synonymous mutations (c.C210T p.His70His, and c.T861A p.Arg287Arg) were found in two patients. Two previously reported single and multiple histidine-deletion variants were identified in both normal and VSD patients. To our knowledge, this is the first study to investigate the role of the HOXA1 gene in CHD. Although our results did not show any pathogenic HOXA1 mutation, our results suggest that VSD might not be a clinically isolated manifestation of HOXA1 mutations.
Literature
1.
go back to reference Bertrand N, Roux M, Ryckebüsch L et al (2011) Hox genes define distinct progenitor sub-domains within the second heart field. Dev Biol 353:266–274PubMedCrossRef Bertrand N, Roux M, Ryckebüsch L et al (2011) Hox genes define distinct progenitor sub-domains within the second heart field. Dev Biol 353:266–274PubMedCrossRef
2.
go back to reference Bosley TM, Alorainy IA, Salih MA, Aldhalaan HM, Abu-Amero KK, Oystreck DT et al (2008) The clinical spectrum of homozygous HOXA1 mutations. Am J Med Genet A 146:1235–1240 Bosley TM, Alorainy IA, Salih MA, Aldhalaan HM, Abu-Amero KK, Oystreck DT et al (2008) The clinical spectrum of homozygous HOXA1 mutations. Am J Med Genet A 146:1235–1240
3.
go back to reference Burke AC, Nelson CE, Morgan BA, Tabin C (1995) Hox genes and the evolution of vertebrate axial morphology. Development 121:333–346PubMed Burke AC, Nelson CE, Morgan BA, Tabin C (1995) Hox genes and the evolution of vertebrate axial morphology. Development 121:333–346PubMed
4.
go back to reference Cheng Z, Wang J, Su D, Pan H, Huang G, Li X et al (2011) Two novel mutations of the IRX4 gene in patients with congenital heart disease. Hum Genet 130:657–662PubMedCrossRef Cheng Z, Wang J, Su D, Pan H, Huang G, Li X et al (2011) Two novel mutations of the IRX4 gene in patients with congenital heart disease. Hum Genet 130:657–662PubMedCrossRef
5.
go back to reference Garg V, Kathiriya IS, Barnes R, Schluterman MK, King IN, Butler CA et al (2003) GATA4 mutations cause human congenital heart defects and reveal an interaction with TBX5. Nature 424:443–447PubMedCrossRef Garg V, Kathiriya IS, Barnes R, Schluterman MK, King IN, Butler CA et al (2003) GATA4 mutations cause human congenital heart defects and reveal an interaction with TBX5. Nature 424:443–447PubMedCrossRef
6.
go back to reference Gong W, Gottlieb S, Collins J et al (2001) Mutation analysis of TBX1 in non-deleted patients with features of DGS/VCFS or isolated cardiovascular defects. J Med Genet 38:E45PubMedCrossRef Gong W, Gottlieb S, Collins J et al (2001) Mutation analysis of TBX1 in non-deleted patients with features of DGS/VCFS or isolated cardiovascular defects. J Med Genet 38:E45PubMedCrossRef
7.
go back to reference Hoffman JI, Kaplan S (2002) The incidence of congenital heart disease. J Am Coll Cardiol 39:1890–1900PubMedCrossRef Hoffman JI, Kaplan S (2002) The incidence of congenital heart disease. J Am Coll Cardiol 39:1890–1900PubMedCrossRef
8.
go back to reference Hong YS, Kim SY, Bhattacharya A, Pratt DR, Hong WK, Tainsky MA (1995) Structure and function of the HOXA1 human homeobox gene cDNA. Gene 159:209–214PubMedCrossRef Hong YS, Kim SY, Bhattacharya A, Pratt DR, Hong WK, Tainsky MA (1995) Structure and function of the HOXA1 human homeobox gene cDNA. Gene 159:209–214PubMedCrossRef
9.
go back to reference Kappen C, Ruddle FH (1993) Evolution of a regulatory gene family: HOM/HOX genes. Curr Opin Genet Dev 3:931–938PubMedCrossRef Kappen C, Ruddle FH (1993) Evolution of a regulatory gene family: HOM/HOX genes. Curr Opin Genet Dev 3:931–938PubMedCrossRef
10.
go back to reference Kelly RG, Brown NA, Buckingham ME (2001) The arterial pole of the mouse heart forms from Fgf10-expressing cells in pharyngeal mesoderm. Dev Cell 1:435–440PubMedCrossRef Kelly RG, Brown NA, Buckingham ME (2001) The arterial pole of the mouse heart forms from Fgf10-expressing cells in pharyngeal mesoderm. Dev Cell 1:435–440PubMedCrossRef
11.
go back to reference Kessel M, Gruss P (1990) Murine developmental control genes. Science 249:347–379CrossRef Kessel M, Gruss P (1990) Murine developmental control genes. Science 249:347–379CrossRef
12.
go back to reference Makki N, Capecchi MR (2010) Hoxa1 lineage tracing indicates a direct role for Hoxa1 in the development of the inner ear, the heart, and the third rhombomere. Dev Biol 341:499–509PubMedCrossRef Makki N, Capecchi MR (2010) Hoxa1 lineage tracing indicates a direct role for Hoxa1 in the development of the inner ear, the heart, and the third rhombomere. Dev Biol 341:499–509PubMedCrossRef
13.
go back to reference Makki N, Capecchi MR (2012) Cardiovascular defects in a mouse model of HOXA1 syndrome. Hum Mol Genet 21:26–31PubMedCrossRef Makki N, Capecchi MR (2012) Cardiovascular defects in a mouse model of HOXA1 syndrome. Hum Mol Genet 21:26–31PubMedCrossRef
14.
go back to reference Martinez P, Amemiya CT (2002) Genomics of the HOX gene cluster. Comp Biochem Physiol B Biochem Mol Biol 133:571–580PubMedCrossRef Martinez P, Amemiya CT (2002) Genomics of the HOX gene cluster. Comp Biochem Physiol B Biochem Mol Biol 133:571–580PubMedCrossRef
15.
go back to reference Mjaatvedt CH, Nakaoka T, Moreno-Rodriguez R et al (2001) The outflow tract of the heart is recruited from a novel heart-forming field. Dev Biol 238:97–109PubMedCrossRef Mjaatvedt CH, Nakaoka T, Moreno-Rodriguez R et al (2001) The outflow tract of the heart is recruited from a novel heart-forming field. Dev Biol 238:97–109PubMedCrossRef
16.
go back to reference Paraguison RC, Higaki K, Sakamoto Y, Hashimoto O, Miyake N, Matsumoto H et al (2005) Polyhistidine tract expansions in HOXA1 result in intranuclear aggregation and increased cell death. Biochem Biophys Res Commun 336:1033–1039PubMedCrossRef Paraguison RC, Higaki K, Sakamoto Y, Hashimoto O, Miyake N, Matsumoto H et al (2005) Polyhistidine tract expansions in HOXA1 result in intranuclear aggregation and increased cell death. Biochem Biophys Res Commun 336:1033–1039PubMedCrossRef
17.
go back to reference Sakata Y, Kamei CN, Nakagami H, Bronson R, Liao JK, Chin MT (2002) Ventricular septal defect and cardiomyopathy in mice lacking the transcription factor CHF1/Hey2. Proc Natl Acad Sci USA 99:16197–16202PubMedCrossRef Sakata Y, Kamei CN, Nakagami H, Bronson R, Liao JK, Chin MT (2002) Ventricular septal defect and cardiomyopathy in mice lacking the transcription factor CHF1/Hey2. Proc Natl Acad Sci USA 99:16197–16202PubMedCrossRef
18.
go back to reference Tischfield MA, Bosley TM, Salih MA, Alorainy IA, Sener EC, Nester MJ et al (2005) Homozygous HOXA1 mutations disrupt human brainstem, inner ear, cardiovascular and cognitive development. Nat Genet 37:1035–1037PubMedCrossRef Tischfield MA, Bosley TM, Salih MA, Alorainy IA, Sener EC, Nester MJ et al (2005) Homozygous HOXA1 mutations disrupt human brainstem, inner ear, cardiovascular and cognitive development. Nat Genet 37:1035–1037PubMedCrossRef
19.
go back to reference Wang B, Yan J, Peng Z et al (2009) Teratocarcinoma-derived growth factor 1 (TDGF1) sequence variants in patients with congenital heart defect. Int J Cardiol 146:225–227PubMedCrossRef Wang B, Yan J, Peng Z et al (2009) Teratocarcinoma-derived growth factor 1 (TDGF1) sequence variants in patients with congenital heart defect. Int J Cardiol 146:225–227PubMedCrossRef
20.
go back to reference Wang B, Li L, Xie X et al (2009) Genetic variation of SAL-Like 4 (SALL4) in ventricular septal defect. Int J Cardiol 145:224–226PubMedCrossRef Wang B, Li L, Xie X et al (2009) Genetic variation of SAL-Like 4 (SALL4) in ventricular septal defect. Int J Cardiol 145:224–226PubMedCrossRef
21.
go back to reference Wang B, Wen Q, Xie X et al (2009) Mutation analysis of Connexon43 gene in Chinese patients with congenital heart defects. Int J Cardiol 145:487–489PubMedCrossRef Wang B, Wen Q, Xie X et al (2009) Mutation analysis of Connexon43 gene in Chinese patients with congenital heart defects. Int J Cardiol 145:487–489PubMedCrossRef
Metadata
Title
HOXA1 Gene Is Not Potentially Related to Ventricular Septal Defect in Chinese Children
Authors
Jiangyan Liu
Binbin Wang
Xuehong Chen
Hang Li
Jing Wang
Longfei Cheng
Xu Ma
Bingren Gao
Publication date
01-02-2013
Publisher
Springer-Verlag
Published in
Pediatric Cardiology / Issue 2/2013
Print ISSN: 0172-0643
Electronic ISSN: 1432-1971
DOI
https://doi.org/10.1007/s00246-012-0418-1

Other articles of this Issue 2/2013

Pediatric Cardiology 2/2013 Go to the issue