R. O. Lisboa, C. Martins, Maria Elisabete Silva Santos, D. L. A. Pereira, F. M. Carvalho, I. Orioli, J. Guerreiro, A. Vieira, L. C. Santana-da-Silva
{"title":"IRF6基因在Van der Woude综合征体征中的差异表达:是否有不同的基因修饰因子在起作用?","authors":"R. O. Lisboa, C. Martins, Maria Elisabete Silva Santos, D. L. A. Pereira, F. M. Carvalho, I. Orioli, J. Guerreiro, A. Vieira, L. C. Santana-da-Silva","doi":"10.5195/d3000.2021.164","DOIUrl":null,"url":null,"abstract":"Objective: The purpose of this study was to report a new variant in the Interferon Regulatory Factor 6 gene (IRF6) and to determine phenotype-genotype correlations in a family segregating Van der Woude syndrome.Methods: A five-generation family of 80 individuals segregating VWS was investigated using a tabulated pedigree but considering that three individuals registered in the pedigree died shortly after birth, the final sample size was 77 individuals. Five individuals had a complete dental clinical examination and molecular analysis performed using direct sequencing of the exon 4 and an adjacent region with 23 base pairs of the IRF6 gene.Results: Features of VWS reported in family history were present in 36.4% (28/77) of all family members; of these 57% (16/28) had pits in the lower lip, 36% (10/28) had both pits and orofacial clefts and 7 % (2/28) had only orofacial clefts. Developmental dental anomalies were observed in three individuals. The sequence analysis of exon 4 of the IRF6 gene carried out for 4 family members revealed the presence of the SNP rs7552506 (c.175-5C> G) located in five base pairs before the start of exon. The analysis of exon 4 of the IRF6 gene also revealed a new variant c.269G>C (p.Ser90Thr) which causes exchange of the Serine amino acid residue for the Threonine residue. Conclusions: The c.269G>C(p.Ser90Thr) can interfere with multimeric interactions and with protein conformation that will be slightly destabilized, because the mutant residue is bigger than the wild-type residue. The phenotypic variations in the cases studied, despite carrying the same genetic mutation, suggest that distinct genetic modifiers operate on the formation of clefts and dental development.","PeriodicalId":37056,"journal":{"name":"Dentistry 3000","volume":" ","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2021-11-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Differential expression of the IRF6 gene in the signs of Van der Woude Syndrome: Are distinct genetic modifiers operating?\",\"authors\":\"R. O. Lisboa, C. Martins, Maria Elisabete Silva Santos, D. L. A. Pereira, F. M. Carvalho, I. Orioli, J. Guerreiro, A. Vieira, L. C. Santana-da-Silva\",\"doi\":\"10.5195/d3000.2021.164\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Objective: The purpose of this study was to report a new variant in the Interferon Regulatory Factor 6 gene (IRF6) and to determine phenotype-genotype correlations in a family segregating Van der Woude syndrome.Methods: A five-generation family of 80 individuals segregating VWS was investigated using a tabulated pedigree but considering that three individuals registered in the pedigree died shortly after birth, the final sample size was 77 individuals. Five individuals had a complete dental clinical examination and molecular analysis performed using direct sequencing of the exon 4 and an adjacent region with 23 base pairs of the IRF6 gene.Results: Features of VWS reported in family history were present in 36.4% (28/77) of all family members; of these 57% (16/28) had pits in the lower lip, 36% (10/28) had both pits and orofacial clefts and 7 % (2/28) had only orofacial clefts. Developmental dental anomalies were observed in three individuals. The sequence analysis of exon 4 of the IRF6 gene carried out for 4 family members revealed the presence of the SNP rs7552506 (c.175-5C> G) located in five base pairs before the start of exon. The analysis of exon 4 of the IRF6 gene also revealed a new variant c.269G>C (p.Ser90Thr) which causes exchange of the Serine amino acid residue for the Threonine residue. Conclusions: The c.269G>C(p.Ser90Thr) can interfere with multimeric interactions and with protein conformation that will be slightly destabilized, because the mutant residue is bigger than the wild-type residue. 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引用次数: 0
摘要
目的:本研究的目的是报道干扰素调节因子6基因(IRF6)的一个新变体,并确定分离Van der Woude综合征家族的表型-基因型相关性。方法:使用表中的系谱对一个由80个分离VWS的个体组成的五代家族进行调查,但考虑到该系谱中登记的三个个体在出生后不久死亡,最终样本量为77个个体。五个人进行了完整的牙科临床检查,并使用外显子4和具有23个碱基对的IRF6基因的相邻区域的直接测序进行了分子分析。结果:家族史报道的VWS特征在所有家族成员中占36.4%(28/77);其中57%(16/28)的下唇有凹陷,36%(10/28)同时有凹陷和口裂,7%(2/28)只有口裂。在三个个体中观察到发育性牙齿异常。对4个家族成员进行的IRF6基因外显子4的序列分析显示,在外显子开始前的5个碱基对中存在SNP rs7552506(c.175-5C>G)。对IRF6基因外显子4的分析还揭示了一种新的变体c.269G>c(p.Ser90Thr),其导致丝氨酸氨基酸残基与苏氨酸残基的交换。结论:c.269G>c(p.Ser90Thr)可以干扰多聚体相互作用和蛋白质构象,这将稍微不稳定,因为突变残基比野生型残基大。尽管携带相同的遗传突变,但所研究病例的表型变异表明,不同的遗传修饰物对腭裂的形成和牙齿发育起作用。
Differential expression of the IRF6 gene in the signs of Van der Woude Syndrome: Are distinct genetic modifiers operating?
Objective: The purpose of this study was to report a new variant in the Interferon Regulatory Factor 6 gene (IRF6) and to determine phenotype-genotype correlations in a family segregating Van der Woude syndrome.Methods: A five-generation family of 80 individuals segregating VWS was investigated using a tabulated pedigree but considering that three individuals registered in the pedigree died shortly after birth, the final sample size was 77 individuals. Five individuals had a complete dental clinical examination and molecular analysis performed using direct sequencing of the exon 4 and an adjacent region with 23 base pairs of the IRF6 gene.Results: Features of VWS reported in family history were present in 36.4% (28/77) of all family members; of these 57% (16/28) had pits in the lower lip, 36% (10/28) had both pits and orofacial clefts and 7 % (2/28) had only orofacial clefts. Developmental dental anomalies were observed in three individuals. The sequence analysis of exon 4 of the IRF6 gene carried out for 4 family members revealed the presence of the SNP rs7552506 (c.175-5C> G) located in five base pairs before the start of exon. The analysis of exon 4 of the IRF6 gene also revealed a new variant c.269G>C (p.Ser90Thr) which causes exchange of the Serine amino acid residue for the Threonine residue. Conclusions: The c.269G>C(p.Ser90Thr) can interfere with multimeric interactions and with protein conformation that will be slightly destabilized, because the mutant residue is bigger than the wild-type residue. The phenotypic variations in the cases studied, despite carrying the same genetic mutation, suggest that distinct genetic modifiers operate on the formation of clefts and dental development.