Submitted:
28 February 2025
Posted:
03 March 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Molecular Mediators of Exercise-Induced Neuroplasticity
2.1. Neutrophic Factors
2.2. Neuroendocrine Responses
2.3. Epigenetic Mechanisms
2.4. Metabolic Signaling Pathways
3. Structural and Functional Adaptations
3.1. Hippocampal Neurogenesis
3.2. Synaptic Plasticity and Dendritic Remodeling
3.3. Cerebrovascular Adaptations
3.4. Network Connectivity Changes
4. Neuroimmune and Inflammatory Pathways
4.1. Anti-inflammatory Effects
4.2. Microglial Phenotype Regulation
4.3. Cytokine Profiles
4.4. Blood-Brain Barrier Integrity
5. Exercise Effects on Pathological Features of Neurodegenerative Diseases
5.1. Amyloid-β and Tau Pathology
5.3. Excitotoxity and Oxidative Stress
5.4. Mitochondrial Function and Bioenergetics
6. Clinical and Epidemiological Evidence
6.1. Exercise and Cognitive Outcomes
6.2. Preventive Potential Across Neurodegenerative Conditions
6.3. Dose-Response Relationships
6.4. Exercise Modality Considerations
7. Translational Implications
7.1. Exercise Prescription Considerations
7.2. Personalization Approaches for At-Risk Populations
7.3. Integration with other Lifestyle Interventions
7.4. Challenges in Implementation
8. Future Research Directions
8.1. Mechanistic Gaps
8.2. Methological Considerations
8.3. Novel Biomarkers of Exercise-Induced Neuroplasticity
8.4. Precision Approaches to Prevention
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| MDPI | Multidisciplinary Digital Publishing Institute |
| DOAJ | Directory of open access journals |
| TLA | Three letter acronym |
| LD | Linear dichroism |
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