RNA-sequencing unveils FLT4 splice site variants in variable congenital heart disease.

IF 3.7 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Maxim Verlee, Erika D'haenens, Laurenz De Cock, Laura Muiño Mosquera, Katya De Groote, Kristof Vandekerckhove, Joseph Panzer, Ellen Roets, Björn Menten, Sofie Symoens, Paul Coucke, Tim Van Damme, Sarah Vergult, Bert Callewaert
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引用次数: 0

Abstract

The etiology of congenital heart disease (CHD) is complex, comprising both genetic and environmental factors. Despite documented familial occurrences, the genetic etiology remains largely elusive. Trio exome sequencing identified a heterozygous FLT4 splice site variant in two families with respectively tetralogy of Fallot (TOF), and variable CHD comprising both the TOF spectrum and aortic coarctation. In the first family, Sanger sequencing on cDNA confirmed aberrant splicing for the c.985+1G > A variant. In the second family, transcriptome sequencing uncovered altered splicing for the c.1657+6T > C variant, despite normal targeted Sanger sequencing. In conclusion, our study establishes FLT4 splice site variants as a molecular cause of both left and right-sided isolated CHD, with incomplete penetrance. RNA-sequencing emerges as a valuable technique in unraveling the missing inheritability of CHD.

rna测序揭示了可变先天性心脏病的FLT4剪接位点变异。
先天性心脏病(CHD)的病因是复杂的,包括遗传和环境因素。尽管有文献记载的家族性发病,但遗传病因在很大程度上仍然难以捉摸。三人外显子组测序在两个分别患有法洛四联症(TOF)和可变冠心病(包括TOF谱和主动脉缩窄)的家族中发现了FLT4剪接位点的杂合变异。在第一个家族中,Sanger测序证实了c.985+1G > A变异的异常剪接。在第二个家族中,转录组测序发现C .1657+6T > C变体剪接改变,尽管正常靶向Sanger测序。总之,我们的研究确定了FLT4剪接位点变异是左侧和右侧分离性冠心病的分子原因,具有不完全外显性。rna测序在揭示冠心病缺失的遗传性方面成为一种有价值的技术。
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来源期刊
European Journal of Human Genetics
European Journal of Human Genetics 生物-生化与分子生物学
CiteScore
9.90
自引率
5.80%
发文量
216
审稿时长
2 months
期刊介绍: The European Journal of Human Genetics is the official journal of the European Society of Human Genetics, publishing high-quality, original research papers, short reports and reviews in the rapidly expanding field of human genetics and genomics. It covers molecular, clinical and cytogenetics, interfacing between advanced biomedical research and the clinician, and bridging the great diversity of facilities, resources and viewpoints in the genetics community. Key areas include: -Monogenic and multifactorial disorders -Development and malformation -Hereditary cancer -Medical Genomics -Gene mapping and functional studies -Genotype-phenotype correlations -Genetic variation and genome diversity -Statistical and computational genetics -Bioinformatics -Advances in diagnostics -Therapy and prevention -Animal models -Genetic services -Community genetics
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