Global genetic analysis in mice unveils central role for cilia in congenital heart disease
Autor: | Anita Vescovi, Laura G. Reinholdt, Hisato Yagi, Janan T. Eppig, Caroline Lawhead, Gregory J. Pazour, C. Herbert Pratt, Xiaoqin Liu, Bishwanath Chatterjee, Nikolai Klena, Mohamed Thahir, George C. Gabriel, Richard Francis, Madhavi K. Ganapathiraju, William A. Devine, Andrew J. Kim, Judy Morgan, Kimimasa Tobita, Linda Leatherbury, Cynthia L. Smith, Chienfu Chang, Cecilia W. Lo, Yu Chen, Jovenal T. San Agustin, Leslie Haynes, Kristi Lemke, Rama Rao Damerla, You Li, Shane Anderton |
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Rok vydání: | 2014 |
Předmět: |
Heart Defects
Congenital Male Candidate gene Population DNA Mutational Analysis Context (language use) Genes Recessive Biology Genetic analysis Article Electrocardiography Mice Ciliogenesis Animals Humans Exome cardiovascular diseases Cilia Genetic Testing education Gene Ultrasonography Genetics education.field_of_study Multidisciplinary Cilium Mice Inbred C57BL Mutation Genetic screen Signal Transduction |
Zdroj: | Nature. 521(7553) |
ISSN: | 1476-4687 |
Popis: | A forward genetic screen in fetal mice to identify genes involved in congenital heart disease (CHD) reveals that a large proportion of genes associated with CHD are related to cilia and cilia-transduced cell signalling, with potential implications for the human disease. The identification of genes causing congenital heart disease (CHD) has been challenging, in part because of the difficulty of distinguishing pathogenic mutations from random sequence genetic variability. Cecilia Lo and colleagues have therefore used a large-scale mouse forward genetic screen with chemical mutagenesis to recover mutations causing congenital heart disease. They identify 218 mouse models of the condition and, using whole-exome sequencing, 91 recessive mutations in 61 genes. A larger than expected proportion of these genes was found to be related to cilia and cilia-transduced cell signalling. Congenital heart disease (CHD) is the most prevalent birth defect, affecting nearly 1% of live births1; the incidence of CHD is up to tenfold higher in human fetuses2,3. A genetic contribution is strongly suggested by the association of CHD with chromosome abnormalities and high recurrence risk4. Here we report findings from a recessive forward genetic screen in fetal mice, showing that cilia and cilia-transduced cell signalling have important roles in the pathogenesis of CHD. The cilium is an evolutionarily conserved organelle projecting from the cell surface with essential roles in diverse cellular processes. Using echocardiography, we ultrasound scanned 87,355 chemically mutagenized C57BL/6J fetal mice and recovered 218 CHD mouse models. Whole-exome sequencing identified 91 recessive CHD mutations in 61 genes. This included 34 cilia-related genes, 16 genes involved in cilia-transduced cell signalling, and 10 genes regulating vesicular trafficking, a pathway important for ciliogenesis and cell signalling. Surprisingly, many CHD genes encoded interacting proteins, suggesting that an interactome protein network may provide a larger genomic context for CHD pathogenesis. These findings provide novel insights into the potential Mendelian genetic contribution to CHD in the fetal population, a segment of the human population not well studied. We note that the pathways identified show overlap with CHD candidate genes recovered in CHD patients5, suggesting that they may have relevance to the more complex genetics of CHD overall. These CHD mouse models and >8,000 incidental mutations have been sperm archived, creating a rich public resource for human disease modelling. |
Databáze: | OpenAIRE |
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