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6 result(s) for "McElwee, Melissa L."
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High-throughput discovery of novel developmental phenotypes
Approximately one-third of all mammalian genes are essential for life. Phenotypes resulting from knockouts of these genes in mice have provided tremendous insight into gene function and congenital disorders. As part of the International Mouse Phenotyping Consortium effort to generate and phenotypically characterize 5,000 knockout mouse lines, here we identify 410 lethal genes during the production of the first 1,751 unique gene knockouts. Using a standardized phenotyping platform that incorporates high-resolution 3D imaging, we identify phenotypes at multiple time points for previously uncharacterized genes and additional phenotypes for genes with previously reported mutant phenotypes. Unexpectedly, our analysis reveals that incomplete penetrance and variable expressivity are common even on a defined genetic background. In addition, we show that human disease genes are enriched for essential genes, thus providing a dataset that facilitates the prioritization and validation of mutations identified in clinical sequencing efforts. Identification and characterization, using a comprehensive embryonic phenotyping pipeline, of 410 lethal alleles during the generation of the first 1,751 of 5,000 unique gene knockouts produced by the International Mouse Phenotyping Consortium. Embryonic phenotypes and lethal genes Stephen Murray and colleagues, including those from the International Mouse Phenotyping Consortium, report on the first phase of the project to generate and phenotypically characterize 5,000 knockout mouse lines, the first systematic efforts to characterize the phenotypes of embryonic lethal mutations. They identify 410 lethal genes during the production of the first 1,751 unique gene knockouts, and characterize these in a comprehensive phenotyping pipeline that includes high-resolution 3D imaging methods. Unexpectedly, given the defined genetic background, they find a number of phenotypes with incomplete penetrance, including some gene knockouts with subviability. The authors also show that orthologues of these mouse essential genes are enriched in genes associated with human disease and show evidence of purifying selection in the human population.
Mendelian gene identification through mouse embryo viability screening
Background The diagnostic rate of Mendelian disorders in sequencing studies continues to increase, along with the pace of novel disease gene discovery. However, variant interpretation in novel genes not currently associated with disease is particularly challenging and strategies combining gene functional evidence with approaches that evaluate the phenotypic similarities between patients and model organisms have proven successful. A full spectrum of intolerance to loss-of-function variation has been previously described, providing evidence that gene essentiality should not be considered as a simple and fixed binary property. Methods Here we further dissected this spectrum by assessing the embryonic stage at which homozygous loss-of-function results in lethality in mice from the International Mouse Phenotyping Consortium, classifying the set of lethal genes into one of three windows of lethality: early, mid, or late gestation lethal. We studied the correlation between these windows of lethality and various gene features including expression across development, paralogy and constraint metrics together with human disease phenotypes. We explored a gene similarity approach for novel gene discovery and investigated unsolved cases from the 100,000 Genomes Project. Results We found that genes in the early gestation lethal category have distinct characteristics and are enriched for genes linked with recessive forms of inherited metabolic disease. We identified several genes sharing multiple features with known biallelic forms of inborn errors of the metabolism and found signs of enrichment of biallelic predicted pathogenic variants among early gestation lethal genes in patients recruited under this disease category. We highlight two novel gene candidates with phenotypic overlap between the patients and the mouse knockouts. Conclusions Information on the developmental period at which embryonic lethality occurs in the knockout mouse may be used for novel disease gene discovery that helps to prioritise variants in unsolved rare disease cases.
Correction: Corrigendum: High-throughput discovery of novel developmental phenotypes
Nature 537, 508–514 (2016); doi:10.1038/nature19356 In this Article, the author Wolfgang Wurst was erroneously omitted from the author list. They are associated with the affiliations: HelmholtzZentrum Munich, Institute of Developmental Genetics, 85764 Munich-Neuherberg, Germany; Technical Universityof Munich, Chair of Developmental Genetics, 85764 Munich-Neuherberg, Germany; German Center for Neurodegenerative Diseases (DZNE) Site Munich, 81377 Munich, Germany; and Munich Cluster for Systems Neurology (SyNergy), 81377 Munich, Germany.