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Cerebral Microvascular Density, Permeability of the Blood-Brain Barrier, and Neuroinflammatory Responses Indicate
Abstract:
Marfan Syndrome (MFS) is a connective tissue disorder due to mutations in fibrillin-1 ( Fbn1 ), where a Fbn1 missense mutation ( Fbn1 ) can result in systemic increases in the bioavailability and signaling of transforming growth factor-β (TGF-β). In a well-established mouse model of MFS ( Fbn1 ), pre-mature aging of the aortic wall and the progression of aortic root aneurysm are observed by 6-months-of-age. TGF-β signaling has been implicated in cerebrovascular dysfunction, loss of blood-brain barrier (BBB) integrity, and age-related neuroinflammation. We have reported that pre-mature vascular aging in MFS mice could extend to cerebrovasculature, where peak blood flow velocity in the posterior cerebral artery (PCA) of 6-month-old (6M) MFS mice was reduced, similarly to 12-month-old (12M) control mice. Case studies of MFS patients have documented neurovascular manifestations, including intracranial aneurysms, stroke, arterial tortuosity, as well as headaches and migraines, with reported incidence of pain and chronic fatigue. Despite these significant clinical observations, investigation into cerebrovascular dysfunction and neuropathology in MFS remains limited. Using 6M-control ( C57BL/6 ) and 6M-MFS ( Fbn1 ) and healthy 12M-control male and female mice, we test the hypothesis that abnormal Fbn1 protein expression is associated with altered cerebral microvascular density, BBB permeability, and neuroinflammation in the PCA-perfused hippocampus, all indicative of a pre-mature aging brain phenotype. Using Glut1 staining, 6M-MFS mice and 12M-CTRL similarly present decreased microvascular density in the dentate gyrus (DG), cornu ammonis 1 (CA1), and cornu ammonis 3 (CA3) regions of the hippocampus. 6M-MFS mice exhibit increased BBB permeability in the DG, CA1, and CA3 as evident by Immunoglobulin G (IgG) staining, which was more comparable to 12M-CTRL mice. 6M-MFS mice show a higher number of microglia in the hippocampus compared to age-matched control mice, a pattern resembling that of 12M-CTRL mice. This study represents the first known investigation into neuropathology in a mouse model of MFS and indicates that the pathophysiology underlying MFS leads to a systemic pre-mature aging phenotype. This study is crucial for identifying and understanding MFS-associated neurovascular and neurological abnormalities, underscoring the need for research aimed at improving the quality of life and managing pre-mature aging symptoms in MFS and related connective tissue disorders.
Insights
Marfan Syndrome (MFS) causes premature aging in mice, affecting the brain. This study reveals early-onset cerebrovascular and neuropathological changes in MFS mice, similar to aged controls, highlighting a systemic aging phenotype.
Area of Science:
- Neuroscience
- Genetics
- Vascular Biology
Background:
- Marfan Syndrome (MFS) is a genetic connective tissue disorder caused by fibrillin-1 (Fbn1) mutations.
- MFS is linked to increased transforming growth factor-β (TGF-β) signaling, leading to premature aortic aging.
- TGF-β signaling is implicated in cerebrovascular dysfunction, blood-brain barrier (BBB) integrity, and neuroinflammation.
Purpose of the Study:
- To investigate if MFS-associated Fbn1 mutations lead to premature aging in the cerebrovasculature and brain.
- To examine cerebral microvascular density, BBB permeability, and neuroinflammation in a mouse model of MFS.
- To determine if these changes mimic age-related neuropathology.
Main Methods:
- Utilized a well-established mouse model of Marfan Syndrome (MFS) with Fbn1 mutations.
- Compared 6-month-old MFS mice (6M-MFS) with age-matched controls (6M-CTRL) and 12-month-old controls (12M-CTRL).
- Assessed microvascular density (Glut1 staining), BBB permeability (IgG staining), and microglial activation in hippocampal regions.
Main Results:
- 6M-MFS mice exhibited decreased microvascular density in the hippocampus (DG, CA1, CA3), similar to 12M-CTRL mice.
- Increased BBB permeability was observed in 6M-MFS mice across hippocampal regions, comparable to 12M-CTRL mice.
- 6M-MFS mice showed elevated microglial numbers in the hippocampus, mirroring the pattern in 12M-CTRL mice.
Conclusions:
- This study provides the first neuropathological investigation in an MFS mouse model.
- Findings indicate that MFS pathophysiology induces a systemic premature aging phenotype, extending to the brain.
- Results underscore the need for research into MFS-associated neurovascular and neurological abnormalities to improve patient quality of life.

