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Assessment of the Metabolic Effects of Isocaloric 2:1 Intermittent Fasting in Mice
Published on: November 27, 2019
Intermittent Fasting Attenuates Hallmark Vascular and Neuronal Pathologies in a Mouse Model of Vascular Cognitive
Vismitha Rajeev1, David Y Fann2,3,4, Quynh Nhu Dinh5
1Memory Aging and Cognition Centre, Department of Pharmacology, Yong Loo Lin School of Medicine, National University of Singapore, Singapore.
Insights
Intermittent fasting (IF) may protect the brain from chronic cerebral hypoperfusion (CCH) by reducing neurovascular damage and oxidative stress. This study suggests IF could be a potential therapy for vascular cognitive impairment (VCI) and vascular dementia (VaD).
Area of Science:
- Neuroscience
- Pathophysiology
- Nutritional Science
Background:
- Chronic cerebral hypoperfusion (CCH) is a key factor in vascular cognitive impairment (VCI) and vascular dementia (VaD).
- The complex mechanisms of CCH make single-target therapies challenging.
- Intermittent fasting (IF) shows neuroprotective potential but its effects on CCH-induced damage are not fully understood.
Purpose of the Study:
- To investigate the efficacy of intermittent fasting (IF) in mitigating CCH-induced neurovascular pathologies.
- To elucidate the underlying mechanisms by which IF exerts its neuroprotective effects against CCH.
Main Methods:
- Male mice were subjected to either ad libitum feeding or IF (16 hours fasting/day) for 4 months.
- Chronic cerebral hypoperfusion (CCH) was induced via bilateral common carotid artery stenosis (BCAS).
- Neurovascular integrity was assessed by measuring microvessel leakage, blood-brain barrier (BBB) permeability, tight junction proteins, white matter integrity, and neuronal cell death.
Main Results:
- IF significantly reduced microvessel leakage, BBB breakdown, and loss of tight junction proteins in CCH mice.
- IF mitigated white matter lesions, preserved myelin basic protein, and decreased hippocampal neuronal death.
- IF normalized levels of matrix metalloproteinase (MMP)-2, MT1-MMP, malondialdehyde, and increased glutathione and superoxide dismutase, indicating reduced oxidative stress and extracellular matrix degradation.
Conclusions:
- Intermittent fasting (IF) attenuates CCH-induced neurovascular damage, metalloproteinase activity, oxidative stress, and neuronal cell death in a mouse model of VCI.
- IF demonstrates potential as a preventative or therapeutic strategy for neurovascular pathologies associated with VCI and VaD.
Abstract:
Background - Chronic cerebral hypoperfusion (CCH) is an important pathophysiological mechanism of vascular cognitive impairment (VCI). The heterogeneous effects of CCH complicate establishing single target therapies against VCI and its more severe form, vascular dementia (VaD). Intermittent fasting (IF) has multiple targets and is neuroprotective across a range of disease conditions including stroke, but its effects against CCH-induced neurovascular pathologies remain to be elucidated. We therefore assessed the effect of IF against CCH-associated neurovascular pathologies and investigated its underlying mechanisms. Methods - Male C57BL/6NTac mice were subjected to either ad libitum feeding (AL) or IF (16 hours of fasting per day) for 4 months. In both groups, CCH was experimentally induced by the bilateral common carotid artery stenosis (BCAS) method. Sham operated groups were used as controls. Measures of leaky microvessels, blood-brain barrier (BBB) permeability, protein expression of tight junctions, extracellular matrix components and white matter changes were determined to investigate the effect of IF against CCH-induced neurovascular pathologies. Results - IF alleviated CCH-induced neurovascular pathologies by reducing the number of leaky microvessels, BBB breakdown and loss of tight junctional proteins. In addition, IF mitigated the severity of white matter lesions, and maintained myelin basic protein levels, while concurrently reducing hippocampal neuronal cell death. Furthermore, IF reduced the CCH-induced increase in levels of matrix metalloproteinase (MMP)-2 and its upstream activator MT1-MMP, which are involved in the breakdown of the extracellular matrix that is a core component of the BBB. Additionally, we observed that IF reduced CCH-induced increase in the oxidative stress marker malondialdehyde, and increased antioxidant markers glutathione and superoxide dismutase. Overall, our data suggest that IF attenuates neurovascular damage, metalloproteinase and oxidative stress-associated pathways, and cell death in the brain following CCH in a mouse model of VCI. Conclusion - Although IF has yet to be assessed in human patients with VaD, our data suggest that IF may be an effective means of preventing the onset or suppressing the development of neurovascular pathologies in VCI and VaD.
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