Generation of C9orf72h370 mice, an intron 1 humanised C9orf72 repeat-expansion knock-in model
Nair, R. R.; Carcole, M.; Thompson, D.; Tibbit, C.; McLeod, R.; Cammack, A.; Jakubcova, T.; Biggs, D.; Wyles, M.; Parker, M.; Caulder, A.; Teboul, L.; Fisher-Ward, C. L.; Awan, A. R.; Flower, M.; Davies, B.; Isaacs, A. M.; Fisher, E. M.; Cunningham, T. J.
Show abstract
An autosomal dominant GGGGCC repeat expansion in intron 1 of the C9orf72 gene is the most common genetic cause of both amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Here, we set out to engineer a gene targeted mouse model harbouring a pathogenic length humanised C9orf72 repeat expansion allele, in order to model pathological mechanisms in a physiological context. In human disease, pathogenic repeats typically range from the hundreds to thousands of units in length, representing a considerable challenge for cellular and in vivo model generation given the instability of GC rich and repetitive DNA sequences during molecular cloning. To overcome this challenge, we developed new methodology to synthetically and iteratively build pure GGGGCC repeats within a linear vector system, which we then seamlessly and scarlessly embedded within the native human genomic sequence. This created a gene targeting DNA vector for homologous recombination of the human sequence in mouse embryonic stem cells. We used this novel targeting vector to generate a new gene targeted mouse allele, C9orf72h370, that for the first time has mouse C9orf72 intron 1 scarlessly replaced with human intron 1 including a pure (GGGGCC)370 hexanucleotide repeat expansion. We confirm that the mouse model expresses human intron 1-derived RNA and produces dipeptide repeat proteins derived from the GGGGCC repeat expansion. We now provide this model as a new freely available resource for the field. In addition, we demonstrate the utility of our cloning method for engineering diverse repeat expansion sequences for modelling other disorders, such as Fragile X Syndrome.
Matching journals
The top 8 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Rapid and Quantitative Functional Interrogation of Human Enhancer Variant Activity in Live Mice 95%
- CRISPR/Cas9-Mediated Excision of ALS/FTD-Causing Hexanucleotide Repeat Expansion in C9ORF72 rescues major disease mechanisms in vivo and in vitro 94%
- PMS1 as a target for splice modulation to prevent somatic CAG repeat expansion in Huntington's disease 93%
Similar papers in this journal
- Characterization of full-length CNBP expanded alleles in myotonic dystrophy type 2 patients by Cas9-mediated enrichment and nanopore sequencing 94%
- Base editing strategies to convert CAG to CAA diminish the disease-causing mutation in Huntington's disease 94%
- Rapid and precise genome engineering in a naturally short-lived vertebrate 94%
Similar papers in this journal
- Optimized nickase- and nuclease-based prime editing in human and mouse cells 94%
- ONE-STEP tagging: a versatile method for rapid site-specific integration by simultaneous reagent delivery 94%
- Evolutionary hotspots of structural variation drive inter-individual differences in the expression of fusion transcripts in the human brain 93%
Similar papers in this journal
- Mouse L1s fade with age: a methylation-enforced mechanism for attenuation of L1 retrotransposition potential 93%
- Versatile and robust genome editing with Streptococcus thermophilus CRISPR1-Cas9 93%
- Mutational scanning of CRX classifies clinical variants and reveals biochemical properties of the transcriptional effector domain 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.