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与颅面发育相关的基因多态性对巴西人群非综合征型唇腭裂风险的影响。

Contribution of polymorphisms in genes associated with craniofacial development to the risk of nonsyndromic cleft lip and/or palate in the Brazilian population.

机构信息

Stomatology Clinic, Dental School, State University of Montes Claros, Montes Claros, Minas Gerais, Brazil.

出版信息

Med Oral Patol Oral Cir Bucal. 2013 May 1;18(3):e414-20. doi: 10.4317/medoral.18357.


DOI:10.4317/medoral.18357
PMID:23524414
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3668866/
Abstract

BACKGROUND AND OBJECTIVE: Nonsyndromic cleft lip and/or palate (NSCL/P) is a complex disease associated with both genetic and environmental factors. One strategy for identifying of possible NSCL/P genetic causes is to evaluate polymorphic variants in genes involved in the craniofacial development. DESIGN: We carried out a case-control analysis of 13 single nucleotide polymorphisms in 9 genes related to craniofacial development, including TBX1, PVRL1, MID1, RUNX2, TP63, TGFβ3, MSX1, MYH9 and JAG2, in 367 patients with NSCL/P and 413 unaffected controls from Brazil to determine their association with NSCL/P. RESULTS: Four out of 13 polymorphisms (rs28649236 and rs4819522 of TBX1, rs7940667 of PVRL1 and rs1057744 of JAG2) were presented in our population. Comparisons of allele and genotype frequencies revealed that the G variant allele and the AG/GG genotypes of TBX1 rs28649236 occurred in a frequency significantly higher in controls than in the NSCL/P group (OR: 0.41; 95% CI: 0.25-0.67; p=0.0002). The frequencies of rs4819522, rs7940667 and rs1057744 minor alleles and genotypes were similar between control and NSCL/P group, without significant differences. No significant associations among cleft types and polymorphisms were observed. CONCLUSION: The study suggests for the first time evidences to an association of the G allele of TBX1 rs28649236 polymorphism and NSCL/P.

摘要

背景与目的:非综合征性唇腭裂(NSCL/P)是一种与遗传和环境因素均有关的复杂疾病。鉴定可能的 NSCL/P 遗传病因的策略之一是评估涉及颅面发育的基因中的多态性变异。

设计:我们对来自巴西的 367 例 NSCL/P 患者和 413 名无影响对照者进行了 9 个与颅面发育相关基因的 13 个单核苷酸多态性的病例对照分析,包括 TBX1、PVRL1、MID1、RUNX2、TP63、TGFβ3、MSX1、MYH9 和 JAG2,以确定它们与 NSCL/P 的关联。

结果:我们的人群中存在 13 个多态性中的 4 个(TBX1 的 rs28649236 和 rs4819522、PVRL1 的 rs7940667 和 JAG2 的 rs1057744)。等位基因和基因型频率的比较显示,TBX1 rs28649236 的 G 变体等位基因和 AG/GG 基因型在对照者中的频率明显高于 NSCL/P 组(OR:0.41;95%CI:0.25-0.67;p=0.0002)。rs4819522、rs7940667 和 rs1057744 的较小等位基因和基因型频率在对照者和 NSCL/P 组之间相似,无显著差异。在 cleft 类型和多态性之间未观察到显著关联。

结论:该研究首次提出了 TBX1 rs28649236 多态性的 G 等位基因与 NSCL/P 之间存在关联的证据。

相似文献

[1]
Contribution of polymorphisms in genes associated with craniofacial development to the risk of nonsyndromic cleft lip and/or palate in the Brazilian population.

Med Oral Patol Oral Cir Bucal. 2013-5-1

[2]
Association Between Genes Involved in Craniofacial Development and Nonsyndromic Cleft Lip and/or Palate in the Brazilian Population.

Cleft Palate Craniofac J. 2016-9

[3]
Evidence of the involvement of the polymorphisms near MSX1 gene in non-syndromic cleft lip with or without cleft palate.

Int J Pediatr Otorhinolaryngol. 2015-7

[4]
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Birth Defects Res A Clin Mol Teratol. 2015-4

[5]
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Ann Hum Genet. 2019-7

[6]
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Birth Defects Res A Clin Mol Teratol. 2014-1

[7]
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Am J Med Genet A. 2015-10

[8]
Association of WNT Pathway Genes With Nonsyndromic Cleft Lip With or Without Cleft Palate.

Cleft Palate Craniofac J. 2018-3

[9]
Maternal polymorphisms in folic acid metabolic genes are associated with nonsyndromic cleft lip and/or palate in the Brazilian population.

Birth Defects Res A Clin Mol Teratol. 2010-11

[10]
Genetic Variants in Folate and Cobalamin Metabolism-Related Genes in Nonsyndromic Cleft Lip and/or Palate.

Braz Dent J. 2015

引用本文的文献

[1]
Association of MSX1 gene polymorphisms and maxillary lateral incisor agenesis in Non-syndromic cleft lip and/or palate individuals.

J Oral Biol Craniofac Res. 2025

[2]
Genetic associations and parent-of-origin effects of PVRL1 in non-syndromic cleft lip with or without cleft palate across multiple ethnic populations.

Epidemiol Health. 2024

[3]
The genetic factors contributing to the risk of cleft lip-cleft palate and their clinical utility.

Oral Maxillofac Surg. 2023-6

[4]
Non-syndromic Cleft Palate: An Overview on Human Genetic and Environmental Risk Factors.

Front Cell Dev Biol. 2020-10-20

[5]
Distinct DNA methylation profiles in subtypes of orofacial cleft.

Clin Epigenetics. 2017-6-8

[6]
Modeling a model: Mouse genetics, 22q11.2 Deletion Syndrome, and disorders of cortical circuit development.

Prog Neurobiol. 2015-7

[7]
Convergence and extrusion are required for normal fusion of the mammalian secondary palate.

PLoS Biol. 2015-4-7

本文引用的文献

[1]
Region 8q24 is a susceptibility locus for nonsyndromic oral clefting in Brazil.

Birth Defects Res A Clin Mol Teratol. 2012-6

[2]
Tbx1 regulates oral epithelial adhesion and palatal development.

Hum Mol Genet. 2012-2-27

[3]
Genetics of nonsyndromic orofacial clefts.

Cleft Palate Craniofac J. 2012-1

[4]
Cleft lip and palate: understanding genetic and environmental influences.

Nat Rev Genet. 2011-3

[5]
Generation of mice with a conditional null allele of the Jagged2 gene.

Genesis. 2010-6

[6]
Tbx1 is necessary for palatal elongation and elevation.

Mech Dev. 2010-3-7

[7]
Genetic interactions between Pax9 and Msx1 regulate lip development and several stages of tooth morphogenesis.

Dev Biol. 2010-2-1

[8]
Molecular basis of EEC (ectrodactyly, ectodermal dysplasia, clefting) syndrome: five new mutations in the DNA-binding domain of the TP63 gene and genotype-phenotype correlation.

Br J Dermatol. 2009-11-9

[9]
Mutation analysis of the PVRL1 gene in caucasians with nonsyndromic cleft lip/palate.

Genet Test Mol Biomarkers. 2009-10

[10]
Regulation of epithelial-mesenchymal transition in palatal fusion.

Exp Biol Med (Maywood). 2009-5

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