The 677C > T variant in methylenetetrahydrofolate reductase causes morphological and functional cerebrovascular deficits in mice

Author:

Reagan Alaina M1ORCID,Christensen Karen E2,Graham Leah C1,Bedwell Amanda A3,Eldridge Kierra3,Speedy Rachael3,Figueiredo Lucas L3,Persohn Scott C3,Bottiglieri Teodoro4,Nho Kwangsik5,Sasner Michael1ORCID,Territo Paul R3,Rozen Rima2,Howell Gareth R167

Affiliation:

1. The Jackson Laboratory, Bar Harbor, ME, USA

2. Departments of Human Genetics and Pediatrics, McGill University, Research Institute of the Health Center, Montreal, QC, Canada

3. Department of Medicine, Division of Clinical Pharmacology, Indiana University School of Medicine, Indianapolis, IN, USA

4. Center of Metabolomics, Institute of Metabolic Disease, Baylor Scott & White Research Institute, Dallas, TX, USA

5. Center for Neuroimaging, Indiana Alzheimer’s Disease Research Center, Department of Radiology and Imaging Sciences, Indiana University School of Medicine, Indianapolis, IN, USA

6. Graduate School of Biomedical Sciences, Tufts University School of Medicine, Boston, MA, USA

7. Graduate School of Biomedical Sciences and Engineering, University of Maine, Orono, ME, USA

Abstract

Vascular contributions to cognitive impairment and dementia (VCID) particularly Alzheimer’s disease and related dementias (ADRDs) are increasing; however, mechanisms driving cerebrovascular decline are poorly understood. Methylenetetrahydrofolate reductase (MTHFR) is a critical enzyme in the folate and methionine cycles. Variants in MTHFR, notably 677 C  > T, are associated with dementias, but no mouse model existed to identify mechanisms by which MTHFR677C > T increases risk. Therefore, MODEL-AD created a novel knock-in (KI) strain carrying the Mthfr677C > T allele on the C57BL/6J background ( Mthfr677C > T) to characterize morphology and function perturbed by the variant. Consistent with human clinical data, Mthfr677C > T mice have reduced enzyme activity in the liver and elevated plasma homocysteine levels. MTHFR enzyme activity is also reduced in the Mthfr677C > T brain. Mice showed reduced tissue perfusion in numerous brain regions by PET/CT as well as significantly reduced vascular density, pericyte number and increased GFAP-expressing astrocytes in frontal cortex. Electron microscopy revealed cerebrovascular damage including endothelial and pericyte apoptosis, reduced luminal size, and increased astrocyte and microglial presence in the microenvironment. Collectively, these data support a mechanism by which variations in MTHFR perturb cerebrovascular health laying the foundation to incorporate our new Mthfr677C > T mouse model in studies examining genetic susceptibility for cerebrovascular dysfunction in ADRDs.

Publisher

SAGE Publications

Subject

Cardiology and Cardiovascular Medicine,Neurology (clinical),Neurology

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