MTHFR*677C>T produces distinct prodromal disease signatures in a mouse model of late-onset Alzheimer's disease
Kotredes, K. P.; Pandey, R. S.; Reagan, A. M.; Sarica, Z.; O'Rourke, R.; Herrick, S.; Davis, A.; Garceau, D.; Sasner, M.; Carter, G. W.; Howell, G. R.
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Background: Late-onset Alzheimer's disease (LOAD) comprises more than 95% of all AD cases. Transgenic, overexpression animal models have off target side effects, do not effectively produce the heterogeneity observed clinically in LOAD patients, and are therefore not best suited for preclinical therapeutic development. The Model Organism Development and Evaluation for Late-onset Alzheimer's Disease (MODEL-AD) Consortium was established to develop novel mouse strains to model human-relevant genetic and environmental risk factors for LOAD. Methylenetetrahydrofolate reductase (MTHFR) is an enzyme in the folate/methionine pathway. Variants in the MTHFR gene, notably 677C>T, are associated with ADRD, and we have previously shown the Mthfr677C>T mouse model phenocopies humans carrying the variant and develop cerebrovascular deficits. Methods: To examine the contributions of Mthfr677C>T in the context of late-onset Alzheimer's disease (LOAD), MODEL-AD created a novel mouse strain on the C57BL/6J (B6) background that was homozygous for Mthfr677C>T, in combination with humanized Abeta;, APOEe4, and Trem2*R47H (referred to as LOAD2.Mthfr677C>T). Mice were assessed over multiple ages for disease-relevant phenotypes. Regular behavior measurements and biometric samples were collected longitudinally to 24 months of age. Blood and brain tissue were collected for transcriptomics, proteomics, human disease correlation, and neuropathology. Results: Despite lacking hallmark pathologies such as amyloid deposition and significant neuroinflammation, compared to LOAD2 controls, LOAD2.Mthfr677C>T mice showed transcriptional and proteomic signatures in the brain that relate to the cerebrovasculature, myelination, and synaptic biology, similar to those seen in human LOAD patients. Conclusions: These data further support the use of the LOAD2.Mthfr677C>T mouse model to study aspects of ADRD such as cerebrovascular compromise.
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