Li Xiao, Jeshka Meihua Green, Mai Mochizuki, Taka Nakahara
Alzheimer's disease (AD) is the most common neurodegenerative disorder worldwide and remains a major unmet medical challenge in aging societies. Although amyloid-β (Aβ) plaques and tau pathology are hallmark features of AD, the limited efficacy of many Aβ- and tau-targeted therapies suggests that AD arises from systemic and cerebral dysfunction. Aging-associated homeostatic failure-including hepatic metabolic, vascular, neuroendocrine, inflammatory, oxidative, and mitochondrial dysfunctions-promotes the accumulation of neurotoxic Aβ and tau species, ultimately driving neurodegeneration and impairing endogenous neuroregeneration. Emerging evidence suggests that regular physical exercise induces metabolic, cardiovascular, and neuroendocrine adaptations, improving hepatic metabolic function, cerebral blood flow, oxygen delivery, mitochondrial activity, waste clearance pathways, and brain health. Exercise-induced musculoskeletal-brain crosstalk further contributes to these benefits through the release of myokines and extracellular vesicles, which facilitate systemic intercellular communication to regulate neurovascular function, neuroplasticity, and neuroregeneration. Collectively, these adaptations reduce chronic inflammation and oxidative stress while enhancing resilience across interconnected peripheral and cerebral systems. Therefore, physical exercise may represent a multifaceted preventive and therapeutic strategy capable of restoring brain-body homeostasis and mitigating AD progression. This comprehensive review discusses aging-associated systemic mechanisms underlying AD pathogenesis and summarizes recent advances in the understanding of exercise-mediated protection against AD progression.