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Published on: November 22, 2024
Catechin treatment improves cerebrovascular flow-mediated dilation and learning abilities in atherosclerotic mice
Annick Drouin1, Virginie Bolduc, Nathalie Thorin-Trescases
1Department of Surgery, Montreal Heart Institute Research Center, Université de Montréal, Montreal, Quebec, Canada. eric.thorin@umontreal.ca
Insights
Catechin treatment improved cerebrovascular endothelial function and cerebral blood flow (CBF) in atherosclerotic mice, preventing cognitive decline and learning impairment associated with aging.
Area of Science:
- Neuroscience
- Cardiovascular Science
- Pharmacology
Background:
- Severe dyslipidemia and oxidative stress accelerate age-related decline in cerebrovascular endothelial function and cerebral blood flow (CBF).
- This decline can lead to neuronal loss and impaired learning abilities.
Purpose of the Study:
- To investigate the hypothesis that chronic catechin treatment prevents endothelial dysfunction, maintains CBF responses, and protects learning abilities in atherosclerotic (ATX) mice.
Main Methods:
- ATX mice were treated with catechin for 3 months.
- Cerebral artery endothelial function was assessed using acetylcholine (ACh) and flow-mediated dilation (FMD).
- Cerebral blood flow (CBF) and learning capacities (Morris water maze) were measured.
Main Results:
- ATX mice exhibited endothelial dysfunction, reduced CBF, and impaired learning compared to wild-type (WT) controls.
- Catechin treatment reduced oxidative stress, restored endothelial function, and improved CBF responses during stimulation.
- Catechin treatment prevented the decline in learning abilities in ATX mice.
Conclusions:
- Chronic catechin treatment effectively prevents age-related cerebrovascular dysfunction in atherosclerotic mice.
- Catechin protects against cognitive decline and learning impairment by improving endothelial function and CBF.
- Polyphenol catechin shows therapeutic potential for mitigating age-related cognitive deficits in dyslipidemic conditions.
Abstract:
Severe dyslipidemia and the associated oxidative stress could accelerate the age-related decline in cerebrovascular endothelial function and cerebral blood flow (CBF), leading to neuronal loss and impaired learning abilities. We hypothesized that a chronic treatment with the polyphenol catechin would prevent endothelial dysfunction, maintain CBF responses, and protect learning abilities in atherosclerotic (ATX) mice. We treated ATX (C57Bl/6-LDLR(-/-)hApoB(+/+); 3 mo old) mice with catechin (30 mg · kg(-1) · day(-1)) for 3 mo, and C57Bl/6 [wild type (WT), 3 and 6 mo old] mice were used as controls. ACh- and flow-mediated dilations (FMD) were recorded in pressurized cerebral arteries. Basal CBF and increases in CBF induced by whisker stimulation were measured by optical coherence tomography and Doppler, respectively. Learning capacities were evaluated with the Morris water maze test. Compared with 6-mo-old WT mice, cerebral arteries from 6-mo-old ATX mice displayed a higher myogenic tone, lower responses to ACh and FMD, and were insensitive to NOS inhibition (P < 0.05), suggesting endothelial dysfunction. Basal and increases in CBF were lower in 6-mo-old ATX than WT mice (P < 0.05). A decline in the learning capabilities was also observed in ATX mice (P < 0.05). Catechin 1) reduced cerebral superoxide staining (P < 0.05) in ATX mice, 2) restored endothelial function by reducing myogenic tone, improving ACh- and FMD and restoring the sensitivity to nitric oxide synthase inhibition (P < 0.05), 3) increased the changes in CBF during stimulation but not basal CBF, and 4) prevented the decline in learning abilities (P < 0.05). In conclusion, catechin treatment of ATX mice prevents cerebrovascular dysfunctions and the associated decline in learning capacities.
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