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Published on: March 8, 2015
Irisin-BDNF axis mediates muscle-brain communication: a complete molecular cascade and potential bidirectional
Xiuyan Duan1, Zixuan Chen1, Xiangli Tong1
1Hunan Provincial Key Laboratory of Physical Fitness and Sports Rehabilitation, Hunan Normal University, Changsha, 410012, China.
Abstract:
Alzheimer's disease (AD) is a neurodegenerative disorder primarily characterized by cognitive decline, with core pathological mechanisms including β-amyloid (Aβ) deposition, tau protein hyperphosphorylation, neuroinflammation, and impaired synaptic plasticity. Although exercise has neuroprotective effects, the molecular mechanisms by which it mediates peripheral-central communication remain unclear. The concept of the 'muscle-brain dialogue' offers a new perspective on this process. irisin, secreted by skeletal muscle in response to exercise, forms a molecular link between peripheral exercise and central neuroprotection by specifically regulating brain-derived neurotrophic factor (BDNF). This review summarizes the molecular cascade mechanisms of the irisin-BDNF axis in mediating the muscle-brain dialogue: Irisin is synthesized via the peroxisome proliferator-activated receptor γ co-activator 1α (PGC-1α)/fibronectin domain-containing protein 5 (FNDC5) pathway. Current evidence suggests that peripheral irisin may communicate with the central nervous system through mechanisms related to the blood-brain barrier, including potential αVβ5 integrin-mediated interactions, thereby participating in the regulation of BDNF. As a core effector molecule, BDNF improves cognitive decline in AD by enhancing neuroplasticity, reducing Aβ deposition, inhibiting tau hyperphosphorylation, and alleviating neuroinflammation. However, oxidative stress and mitochondrial dysfunction associated with AD pathology negatively regulate this axis, creating a vicious cycle. Therefore, this paper explores potential intervention strategies and the prospects for future translational research, including upstream exercise interventions, midstream barrier-crossing enhancing peptides, and downstream small-molecule TrkB agonists. Targeting this axis provides a new theoretical foundation and translational direction for the early prevention and treatment of AD, as well as for drug development.
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