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Targeting Cartilage miR-195/497 Cluster for Osteoarthritis Treatment Regulates the Circadian Clock
Shi Shi1,2,3,4, Lele Zhang5,6, Qi Wang5,6
1Department of Orthopedics, Shanghai General Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China, excalibur0520@163.com.
Introduction:
Osteoarthritis (OA) is the most prevalent and debilitating joint disease without an effective therapeutic option. Multiple risk factors for OA have been identified, including abnormal chondrocyte miRNA secretion and circadian rhythms disruption, both of which have been found to cause progressive damage and loss of articular cartilage. Environmental disruption of circadian rhythms in mice predisposes animals to cartilage injury and OA.
Methods:
The role of miR-195/497 cluster during OA progression was verified by mouse OA model with intra-articular injection of Agomir and Antagomir. We performed micro-CT analysis, Osteoarthritis Research Society International scores, and histological analysis in mouse knee joints. RNA sequencing was performed on the mouse cartilage cell line to explore the molecular mechanism of the miR-195/497 cluster and proteins in signaling pathway were evaluated using Western blot. Senescence-associated phenotypes were detected by Western blot, senescence β-galactosidase staining, and immunofluorescence.
Results:
This study demonstrated that miR-195/497-5p expression is disrupted in OA with senescent chondrocytes. In addition, miR-195/497-5p influenced the circadian rhythm of mice chondrocytes by modulating the expression of the Per2 protein, resulting in the gradual degradation of articular cartilage. We found that the miR-195/497 cluster targets DUSP3 expression. The deletion of the miR-195/497 cluster increased the level of DUSP3 expression and decreased the levels of phosphorylated ERK 1/2 and CREB. Per2 transcription is upregulated by stimulating CREB and ERK 1/2 phosphorylation.
Conclusion:
Our findings identify a regulatory mechanism connecting chondrocyte miR-195/497-5p to cartilage maintenance and repair and imply that circadian rhythm disturbances affected by miR-195/497-5p are risk factors for age-related joint diseases such as OA.
Insights
Disrupted miR-195/497-5p expression in osteoarthritis (OA) affects chondrocyte circadian rhythms by modulating Per2 protein, leading to cartilage degradation. This highlights a new risk factor for age-related joint diseases.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Osteoarthritis (OA) is a prevalent joint disease with no effective treatments.
- Abnormal chondrocyte microRNA (miRNA) secretion and disrupted circadian rhythms are identified risk factors for OA.
- These factors contribute to progressive damage and loss of articular cartilage.
Purpose of the Study:
- To investigate the role of the miR-195/497 cluster in osteoarthritis (OA) progression.
- To explore the molecular mechanisms by which miR-195/497-5p influences chondrocyte function and circadian rhythms.
- To identify potential therapeutic targets for OA related to miRNA and circadian pathways.
Main Methods:
- Utilized a mouse OA model with intra-articular injection of Agomir and Antagomir targeting miR-195/497.
- Performed micro-CT, OARSI scoring, and histological analysis of mouse knee joints.
- Conducted RNA sequencing, Western blot, and senescence assays to analyze molecular mechanisms.
Main Results:
- miR-195/497-5p expression is disrupted in OA chondrocytes, which exhibit senescence.
- miR-195/497-5p modulates Per2 protein expression, disrupting chondrocyte circadian rhythms and causing cartilage degradation.
- The miR-195/497 cluster targets DUSP3, affecting ERK 1/2 and CREB phosphorylation, which upregulates Per2 transcription.
Conclusions:
- Identified a regulatory mechanism linking chondrocyte miR-195/497-5p to cartilage maintenance and repair.
- Circadian rhythm disturbances mediated by miR-195/497-5p are implicated as risk factors for age-related joint diseases like OA.
- These findings suggest miR-195/497-5p as a potential therapeutic target for OA.
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