Literature DB >> 18978678

Candidate gene/loci studies in cleft lip/palate and dental anomalies finds novel susceptibility genes for clefts.

Alexandre R Vieira1, Toby G McHenry, Sandra Daack-Hirsch, Jeffrey C Murray, Mary L Marazita.   

Abstract

PURPOSE: We revisited 42 families with two or more cleft-affected siblings who participated in previous studies. Complete dental information was collected to test the hypothesis that dental anomalies are part of the cleft phenotype spectrum, and can provide new opportunities for identification of cleft susceptibility genes.
METHODS: Genotypes from 1489 single nucleotide polymorphism markers located in 150 candidate genes/loci were reanalyzed. Two sets of association analyses were carried out. First, we ran the analysis solely on the cleft status. Second, we assigned affection to any cleft or dental anomaly (tooth agenesis, supernumerary teeth, and microdontia) and repeated the analysis.
RESULTS: Significant over-transmission was seen for a single nucleotide polymorphism in ankyrin repeat and sterile alpha motif domain containing 6 (rs4742741, 9q22.33; P = 0.0004) when a dental anomaly phenotype was included in the analysis. Significant over-transmission was also seen for a single nucleotide polymorphism in ERBB2 (rs1810132, 17q21.1; P = 0.0006). In the clefts only data, the most significant result was also for ERBB2 (P = 0.0006). Other markers with suggestive P values included interferon regulatory factor 6 and 6q21-q23 loci. In contrast to the above results, suggestive over-transmission of markers in GART, DPF3, and neurexin 3 were seen only when the dental anomaly phenotype was included in the analysis.
CONCLUSIONS: These findings support the hypothesis that some loci may contribute to both clefts and congenital dental anomalies. Thus, including dental anomalies information in the genetics analysis of cleft lip and palate will provide new opportunities to map susceptibility loci for clefts.

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Mesh:

Year:  2008        PMID: 18978678      PMCID: PMC2734954          DOI: 10.1097/gim.0b013e3181833793

Source DB:  PubMed          Journal:  Genet Med        ISSN: 1098-3600            Impact factor:   8.822


  48 in total

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Authors:  W Lin; H B Sanchez; T Deerinck; J K Morris; M Ellisman; K F Lee
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2.  Testing candidate genes for non-syndromic oral clefts using a case-parent trio design.

Authors:  Terri H Beaty; J B Hetmanski; J S Zeiger; Y T Fan; K Y Liang; C A VanderKolk; I McIntosh
Journal:  Genet Epidemiol       Date:  2002-01       Impact factor: 2.135

3.  The family based association test method: strategies for studying general genotype--phenotype associations.

Authors:  S Horvath; X Xu; N M Laird
Journal:  Eur J Hum Genet       Date:  2001-04       Impact factor: 4.246

4.  A case-control study of nonsyndromic oral clefts in Maryland.

Authors:  T H Beaty; H Wang; J B Hetmanski; Y T Fan; J S Zeiger; K Y Liang; Y F Chiu; C A Vanderkolk; K C Seifert; E A Wulfsberg; G Raymond; S R Panny; I McIntosh
Journal:  Ann Epidemiol       Date:  2001-08       Impact factor: 3.797

Review 5.  Gene/environment causes of cleft lip and/or palate.

Authors:  J C Murray
Journal:  Clin Genet       Date:  2002-04       Impact factor: 4.438

6.  Studies of the candidate genes TGFB2, MSX1, TGFA, and TGFB3 in the etiology of cleft lip and palate in the Philippines.

Authors:  A C Lidral; J C Murray; K H Buetow; A M Basart; H Schearer; R Shiang; A Naval; E Layda; K Magee; W Magee
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7.  Evidence of a sex-dependent association between the MSX1 locus and nonsyndromic cleft lip with or without cleft palate in the Chilean population.

Authors:  R Blanco; R Chakraborty; S A Barton; H Carreño; M Paredes; L Jara; H Palomino; W J Schull
Journal:  Hum Biol       Date:  2001-02       Impact factor: 0.553

8.  Linkage disequilibrium between MSX1 and non-syndromic cleft lip/palate in the Chilean population.

Authors:  J Suazo; J L Santos; H Carreño; L Jara; R Blanco
Journal:  J Dent Res       Date:  2004-10       Impact factor: 6.116

9.  In a Vietnamese population, MSX1 variants contribute to cleft lip and palate.

Authors:  Yasushi Suzuki; Peter A Jezewski; Junichiro Machida; Yoriko Watanabe; Min Shi; Margaret E Cooper; Le Thi Viet; Thi Duc Tin Nguyen; Huynh Hai; Nagato Natsume; Kazuo Shimozato; Mary L Marazita; Jeffrey C Murray
Journal:  Genet Med       Date:  2004 May-Jun       Impact factor: 8.822

10.  Rescue of cleft palate in Msx1-deficient mice by transgenic Bmp4 reveals a network of BMP and Shh signaling in the regulation of mammalian palatogenesis.

Authors:  Zunyi Zhang; Yiqiang Song; Xiang Zhao; Xiaoyun Zhang; Cesar Fermin; YiPing Chen
Journal:  Development       Date:  2002-09       Impact factor: 6.868

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  26 in total

1.  Wavelet Screening identifies regions highly enriched for differentially methylated loci for orofacial clefts.

Authors:  William R P Denault; Julia Romanowska; Øystein A Haaland; Robert Lyle; Jack A Taylor; Zongli Xu; Rolv T Lie; Håkon K Gjessing; Astanand Jugessur
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2.  Role of TRAV locus in low caries experience.

Authors:  Jessica Briseño-Ruiz; Takehiko Shimizu; Kathleen Deeley; Piper M Dizak; Timothy D Ruff; Italo M Faraco; Fernando A Poletta; João A Brancher; Giovana D Pecharki; Erika C Küchler; Patricia N Tannure; Andrea Lips; Thays C S Vieira; Asli Patir; Mine Koruyucu; Juan C Mereb; Judith M Resick; Carla A Brandon; Ariadne Letra; Renato M Silva; Margaret E Cooper; Figen Seymen; Marcelo C Costa; José M Granjeiro; Paula C Trevilatto; Iêda M Orioli; Eduardo E Castilla; Mary L Marazita; Alexandre R Vieira
Journal:  Hum Genet       Date:  2013-05-09       Impact factor: 4.132

Review 3.  Cleft lip and palate: understanding genetic and environmental influences.

Authors:  Michael J Dixon; Mary L Marazita; Terri H Beaty; Jeffrey C Murray
Journal:  Nat Rev Genet       Date:  2011-03       Impact factor: 53.242

4.  GWAS of dental caries patterns in the permanent dentition.

Authors:  J R Shaffer; E Feingold; X Wang; M Lee; K Tcuenco; D E Weeks; R J Weyant; R Crout; D W McNeil; M L Marazita
Journal:  J Dent Res       Date:  2012-10-11       Impact factor: 6.116

5.  Fine mapping of locus Xq25.1-27-2 for a low caries experience phenotype.

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Journal:  Arch Oral Biol       Date:  2014-02-23       Impact factor: 2.633

6.  Temporomandibular Joint Condyle-Disc Morphometric Sexual Dimorphisms Independent of Skull Scaling.

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7.  Genetic variation in myosin 1H contributes to mandibular prognathism.

Authors:  Maria Tassopoulou-Fishell; Kathleen Deeley; Erica M Harvey; James Sciote; Alexandre R Vieira
Journal:  Am J Orthod Dentofacial Orthop       Date:  2012-01       Impact factor: 2.650

8.  Confirmation of 6q21-6q22.1 deletion in acro-cardio-facial syndrome and further delineation of this contiguous gene deletion syndrome.

Authors:  Cindy Hudson; Corbin Schwanke; John P Johnson; Abdallah F Elias; Sandy Phillips; Tammy Schwalbe; Mary Tunby; Dongbin Xu
Journal:  Am J Med Genet A       Date:  2014-04-08       Impact factor: 2.802

9.  Genetic influences on dental enamel that impact caries differ between the primary and permanent dentitions.

Authors:  Merve Bayram; Kathleen Deeley; Maria F Reis; Vanessa M Trombetta; Timothy D Ruff; Regina C Sencak; Michael Hummel; Piper M Dizak; Kelly Washam; Helena F Romanos; Andrea Lips; Gutemberg Alves; Marcelo C Costa; José M Granjeiro; Leonardo S Antunes; Erika C Küchler; Figen Seymen; Alexandre R Vieira
Journal:  Eur J Oral Sci       Date:  2015-08-18       Impact factor: 2.612

10.  A quantitative method for defining high-arched palate using the Tcof1(+/-) mutant mouse as a model.

Authors:  Zachary R Conley; Molly Hague; Hiroshi Kurosaka; Jill Dixon; Michael J Dixon; Paul A Trainor
Journal:  Dev Biol       Date:  2016-01-06       Impact factor: 3.582

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