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FNDC5/irisin, a molecular target for boosting reward-related learning and motivation
Judit Zsuga1, Gabor Tajti1, Csaba Papp1
1Department of Health Systems Management and Quality Management for Health Care, Faculty of Public Health, University of Debrecen, Nagyerdei krt 98, 4032 Debrecen, Hungary.
Abstract:
Interventions focusing on the prevention and treatment of chronic non-communicable diseases are on rise. In the current article, we propose that dysfunction of the mesocortico-limbic reward system contributes to the emergence of the WHO-identified risk behaviors (tobacco use, unhealthy diet, physical inactivity and harmful use of alcohol), behaviors that underlie the evolution of major non-communicable diseases (e.g. cardiovascular diseases, cancer, diabetes and chronic respiratory diseases). Given that dopaminergic neurons of the mesocortico-limbic system are tightly associated with reward-related processes and motivation, their dysfunction may fundamentally influence behavior. While nicotine and alcohol alter dopamine neuron function by influencing some receptors, mesocortico-limbic system dysfunction was associated with elevation of metabolic set-point leading to hedonic over-eating. Although there is some empirical evidence, precise molecular mechanism for linking physical inactivity and mesocortico-limbic dysfunction per se seems to be missing; identification of which may contribute to higher success rates for interventions targeting lifestyle changes pertaining to physical activity. In the current article, we compile evidence in support of a link between exercise and the mesocortico-limbic system by elucidating interactions on the axis of muscle - irisin - brain derived neurotrophic factor (BDNF) - and dopaminergic function of the midbrain. Irisin is a contraction-regulated myokine formed primarily in skeletal muscle but also in the brain. Irisin stirred considerable interest, when its ability to induce browning of white adipose tissue parallel to increasing thermogenesis was discovered. Furthermore, it may also play a role in the regulation of behavior given it readily enters the central nervous system, where it induces BDNF expression in several brain areas linked to reward processing, e.g. the ventral tegmental area and the hippocampus. BDNF is a neurotropic factor that increases neuronal dopamine content, modulates dopamine release relevant for neuronal plasticity and increased neuronal survival as well as learning and memory. Further linking BDNF to dopaminergic function is BDNF's ability to activate tropomyosin-related kinase B receptor that shares signalization with presynaptic dopamine-3 receptors in the ventral tegmental area. Summarizing, we propose that the skeletal muscle derived irisin may be the link between physical activity and reward-related processes and motivation. Moreover alteration of this axis may contribute to sedentary lifestyle and subsequent non-communicable diseases. Preclinical and clinical experimental models to test this hypothesis are also proposed.
Insights
Dysfunctional reward systems contribute to non-communicable diseases. Exercise, via muscle-derived irisin, may activate brain pathways, promoting motivation and potentially preventing chronic diseases.
Area of Science:
- Neuroscience and Metabolic Health
- Behavioral Medicine and Chronic Disease Prevention
Background:
- Chronic non-communicable diseases (NCDs) are a growing global health concern.
- WHO-identified risk behaviors like tobacco use, unhealthy diet, physical inactivity, and alcohol misuse are linked to NCDs.
- Dysfunction in the mesocortico-limbic reward system is proposed to underlie these risk behaviors.
Purpose of the Study:
- To propose a molecular mechanism linking physical inactivity to mesocortico-limbic dysfunction.
- To elucidate the role of the muscle-brain axis in mediating the effects of exercise on reward pathways.
- To identify potential targets for interventions aimed at promoting lifestyle changes and preventing NCDs.
Main Methods:
- Compilation and synthesis of existing preclinical and clinical evidence.
- Elucidation of the irisin-brain derived neurotrophic factor (BDNF)-dopaminergic signaling pathway.
- Proposed experimental models to test the central hypothesis.
Main Results:
- Evidence suggests physical inactivity is linked to mesocortico-limbic dysfunction, though precise mechanisms are unclear.
- Irisin, a myokine released during muscle contraction, crosses the blood-brain barrier.
- Irisin induces BDNF expression in reward-related brain areas, influencing dopaminergic function and neuronal plasticity.
Conclusions:
- Skeletal muscle-derived irisin may serve as a crucial link between physical activity and the mesocortico-limbic reward system.
- Alterations in the irisin-BDNF-dopaminergic axis could contribute to sedentary behavior and the development of NCDs.
- Targeting this axis offers a promising avenue for novel interventions against lifestyle-related diseases.
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