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Published on: March 22, 2016
Intermittent fasting reprograms the brain proteome to prevent synaptic degeneration and cognitive impairment in
Nishat I Tabassum1,2, Sharmelee Selvaraji3,4, Yibo Fan1,2
1Department of Microbiology, Anatomy, Physiology and Pharmacology, School of Agriculture, Biomedicine and Environment, La Trobe University, Melbourne, Australia.
Insights
Intermittent fasting (IF) protects against cognitive decline in vascular dementia by preserving synaptic integrity and function. This study shows IF enhances synaptic resilience through metabolic reprogramming and reduced neuroinflammation.
Area of Science:
- Neuroscience
- Vascular Biology
- Metabolic Research
Background:
- Vascular dementia (VaD) stems from chronic cerebral hypoperfusion (CCH), causing synaptic degeneration and cognitive decline.
- Mechanisms linking vascular issues to synaptic loss in VaD are not fully understood.
- Intermittent fasting (IF) is a potential intervention, but its effects on synaptic health in VaD are unknown.
Purpose of the Study:
- To investigate the effects of IF on synaptic degeneration and cognitive impairment induced by CCH.
- To explore the molecular mechanisms underlying IF's neuroprotective effects in a mouse model of VaD.
Main Methods:
- Chronic cerebral hypoperfusion (CCH) induced via bilateral common carotid artery stenosis (BCAS) in mice.
- Intermittent fasting (16-hour daily) implemented prior to BCAS induction.
- Cognitive function assessed using Barnes maze; synaptic integrity evaluated via electron microscopy, immunoblotting, and immunohistochemistry; hippocampal proteomic analysis performed.
Main Results:
- IF preserved cognitive function and synaptic density in BCAS mice, preventing spatial memory deficits.
- Electron microscopy confirmed synaptic preservation without changes in baseline architecture; key synaptic protein levels were unchanged.
- Proteomic analysis revealed IF upregulates synaptic stabilizers, enhances GABAergic signaling, and suppresses neuroinflammation, with a multi-phase neuroprotective effect.
Conclusions:
- Intermittent fasting (IF) acts as a potent modulator of synaptic resilience in vascular dementia (VaD).
- IF protects synaptic structure, inhibits inflammatory synapse loss, and reprograms metabolism, offering a non-pharmacological strategy for vascular cognitive impairment.
Abstract:
Rationale: Vascular dementia (VaD), driven by chronic cerebral hypoperfusion (CCH), leads to synaptic degeneration and cognitive decline, yet mechanisms linking vascular dysfunction to synaptic loss remain unclear. Intermittent fasting (IF) has emerged as a potential intervention, but its effects on synaptic integrity in VaD are unknown. This study aims to investigate the effects of IF against synaptic degeneration and cognitive impairment induced by CCH. Methods: Bilateral common carotid artery stenosis (BCAS) was employed to induce chronic CCH by placing 0.18 mm micro-coils around each common carotid artery in mice. To assess temporal differences, the coils remained in place for 1, 7, 14, or 30 days. IF was implemented for 16 hours daily over three months prior to BCAS induction. Cognitive impairment was evaluated using the Barnes maze test. White matter lesions (WMLs) and neuronal loss were assessed using Luxol fast blue and cresyl violet staining, respectively. Immunoblotting and immunohistochemistry were performed to quantify synaptic protein levels. Synaptic integrity was examined using transmission electron microscopy. Proteomic analysis of the hippocampus was conducted to investigate molecular adaptations to IF following CCH. Results: We demonstrate that a 16-hour IF regimen preserves cognitive function and synaptic density despite persistent hypoperfusion. Behavioral assays revealed that IF prevented spatial memory deficits in BCAS mice, while electron microscopy confirmed synaptic preservation without altering baseline architecture. Surprisingly, key synaptic protein levels remained unchanged, suggesting IF protects synaptic function rather than abundance. Proteomic profiling revealed dynamic hippocampal adaptations under IF, including upregulation of synaptic stabilizers, enhanced GABAergic signaling, and suppression of neuroinflammatory mediators. CCH induced microglial engulfment of synapses, suggesting a role in complement-mediated synaptic pruning. Temporal pathway analysis revealed IF's multi-phase neuroprotection: early synaptic reinforcement, mid-phase metabolic optimization, and late-phase suppression of chronic neuroinflammation. Conclusion: These findings establish IF as a potent modulator of synaptic resilience in VaD, acting through coordinated preservation of synaptic structure, inhibition of inflammatory synapse loss, and metabolic reprogramming. Our results highlight IF's potential as a non-pharmacological strategy to combat vascular cognitive impairment by targeting the synaptic vulnerability underlying dementia progression.
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