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Irisin Mitigates Oxidative Stress, Chondrocyte Dysfunction and Osteoarthritis Development through Regulating
Feng-Sheng Wang1,2,3,4, Chung-Wen Kuo1,2, Jih-Yang Ko5
1Core Laboratory for Phenomics and Diagnostics, Kaohsiung Chang Gung Memorial Hospital, Kaohsiung 83301, Taiwan.
Abstract:
Compromised autophagy and mitochondrial dysfunction downregulate chondrocytic activity, accelerating the development of osteoarthritis (OA). Irisin, a cleaved form of fibronectin type III domain containing 5 (FNDC5), regulates bone turnover and muscle homeostasis. Little is known about the effect of Irisin on chondrocytes and the development of osteoarthritis. This study revealed that human osteoarthritic articular chondrocytes express decreased level of FNDC5 and autophagosome marker LC3-II but upregulated levels of oxidative DNA damage marker 8-hydroxydeoxyguanosine (8-OHdG) and apoptosis. Intra-articular administration of Irisin further alleviated symptoms of medial meniscus destabilization, like cartilage erosion and synovitis, while improved the gait profiles of the injured legs. Irisin treatment upregulated autophagy, 8-OHdG and apoptosis in chondrocytes of the injured cartilage. In vitro, Irisin improved IL-1β-mediated growth inhibition, loss of specific cartilage markers and glycosaminoglycan production by chondrocytes. Irisin also reversed Sirt3 and UCP-1 pathways, thereby improving mitochondrial membrane potential, ATP production, and catalase to attenuated IL-1β-mediated reactive oxygen radical production, mitochondrial fusion, mitophagy, and autophagosome formation. Taken together, FNDC5 loss in chondrocytes is correlated with human knee OA. Irisin repressed inflammation-mediated oxidative stress and extracellular matrix underproduction through retaining mitochondrial biogenesis, dynamics and autophagic program. Our analyses shed new light on the chondroprotective actions of this myokine, and highlight the remedial effects of Irisin on OA development.
Insights
Irisin, a myokine, may treat osteoarthritis (OA) by improving chondrocyte function. It boosts autophagy and mitochondrial health, reducing inflammation and oxidative stress in OA cartilage.
Area of Science:
- Cell Biology
- Biochemistry
- Orthopedics
Background:
- Osteoarthritis (OA) involves chondrocyte dysfunction, impaired autophagy, and mitochondrial issues.
- Irisin, derived from FNDC5, influences bone and muscle but its role in OA is unclear.
Purpose of the Study:
- To investigate Irisin's effects on chondrocytes and osteoarthritis.
- To explore Irisin's impact on autophagy, mitochondrial function, and oxidative stress in OA.
Main Methods:
- Assessed FNDC5, LC3-II, 8-OHdG, and apoptosis in human osteoarthritic chondrocytes.
- Administered Irisin intra-articularly in an OA mouse model (medial meniscus destabilization).
- Evaluated Irisin's in vitro effects on chondrocytes exposed to IL-1β, focusing on mitochondrial and autophagic pathways.
Main Results:
- Human OA chondrocytes showed reduced FNDC5 and LC3-II, with increased 8-OHdG and apoptosis.
- Intra-articular Irisin improved OA symptoms, cartilage integrity, and gait in mice.
- Irisin upregulated autophagy and apoptosis in injured cartilage, while in vitro it counteracted IL-1β effects.
Conclusions:
- FNDC5 deficiency in chondrocytes correlates with human knee OA.
- Irisin demonstrates chondroprotective effects by mitigating inflammation-induced oxidative stress and ECM underproduction.
- Irisin preserves mitochondrial function and autophagy, offering potential therapeutic benefits for OA.
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