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Published on: November 22, 2024
Stroke Exacerbates Respiratory Disorder and Cognition Impairment in Mice with Cerebral Amyloid Angiopathy
Abstract:
Stroke is a known risk factor for dementia. Most Alzheimer's patients exhibit mixed neuropathology, with evidence of both ischemic damage and amyloid-beta (Aβ) plaque accumulation. Breathing disorders, such as apnea, are also associated with cognitive dysfunction and dementia progression. We hypothesized that stroke exacerbates respiratory dysfunction and cognitive impairment in Tg-SwDI mice, a model of cerebral amyloid angiopathy (CAA). Female CAA mice (11-13 months old) underwent permanent distal middle cerebral artery occlusion (pd-MCAO) surgery, with age- and sex-matched wild-type and sham-operated controls. Cognitive assessments included the Barnes maze, and novel object recognition test (NORT). Respiratory metrics were quantified using whole-body plethysmography, while immunohistochemistry measured Aβ deposition in the hippocampus and cortex, astrocytic markers (C3⁺GFAP⁺ for A1; S100A10⁺GFAP⁺ for A2) in the retrotrapezoid nucleus (RTN), and lymphatic vessel area (LYVE1) in deep cervical lymph nodes (dCLNs). Aβ in cerebrospinal fluid was also assessed. CAA mice without stroke exhibited higher apnea rates and impaired cognitive performance compared to wild-type controls. Stroke further increased apnea events and worsened Barnes maze escape latencies in CAA mice. Molecular analysis revealed an increase in GFAP as well as in A1 astrocytes and a reduction in A2 astrocytes in the RTN following stroke. Additionally, stroke accelerated Aβ deposition in the hippocampus and cortex while reducing Aβ clearance via cerebrospinal fluid and dCLNs. These findings suggest that stroke exacerbates respiratory dysfunction, impairs glymphatic-lymphatic clearance, and accelerates cognitive decline in CAA mice. Targeting post-stroke respiratory dysfunction may offer therapeutic potential for mitigating ischemic damage in dementia patients.
Insights
Stroke worsens breathing problems and cognitive decline in mice with cerebral amyloid angiopathy (CAA). This suggests targeting post-stroke respiratory issues could help treat dementia.
Area of Science:
- Neuroscience
- Neuropathology
- Respiratory Physiology
Background:
- Stroke is a significant risk factor for dementia, often co-occurring with Alzheimer's disease pathology.
- Breathing disorders like apnea are linked to cognitive decline and dementia progression.
- Cerebral amyloid angiopathy (CAA) involves amyloid-beta (Aβ) accumulation in brain vasculature, contributing to cognitive impairment.
Purpose of the Study:
- To investigate the impact of stroke on respiratory function and cognitive impairment in a mouse model of CAA.
- To explore how stroke affects Aβ deposition, astrocytic changes, and clearance pathways in the context of CAA.
Main Methods:
- Tg-SwDI mice (a model for CAA) underwent permanent distal middle cerebral artery occlusion (pd-MCAO) or sham surgery.
- Cognitive function was assessed using Barnes maze and novel object recognition tests.
- Respiratory metrics, Aβ deposition, astrocytic markers in the retrotrapezoid nucleus (RTN), and lymphatic vessel area in deep cervical lymph nodes (dCLNs) were analyzed.
Main Results:
- CAA mice exhibited higher apnea rates and poorer cognitive performance than wild-type controls.
- Stroke exacerbated apnea events and worsened cognitive deficits in CAA mice.
- Stroke increased A1 astrocytes and decreased A2 astrocytes in the RTN, accelerated Aβ deposition, and impaired Aβ clearance via cerebrospinal fluid and dCLNs.
Conclusions:
- Stroke significantly worsens respiratory dysfunction and cognitive impairment in mice with cerebral amyloid angiopathy.
- Stroke impairs glymphatic-lymphatic clearance mechanisms, contributing to accelerated neuropathology.
- Therapeutic strategies targeting post-stroke respiratory dysfunction may be beneficial for mitigating dementia progression in CAA patients.

