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Updated: Nov 11, 2025

Software-Assisted Quantitative Measurement of Osteoarthritic Subchondral Bone Thickness
Published on: March 18, 2022
LncRNA KCNQ1OT1 attenuates osteoarthritic chondrocyte dysfunction via the miR-218-5p/PIK3C2A axis
Yijun Liu1, Ding Zhao1, Xue Wang2
1Department of Orthopaedics, The First Hospital of Jilin University, 3302 Jilin Road, Changchun, 130000, Jilin, China.
Abstract:
The occurrence of osteoarthritis is closely related to chondrocyte dysfunction caused by cellular inflammatory response and matrix degradation, which seriously affect the quality of life of patients. Therefore, this study aimed to investigate the role of potassium voltage-gated channel subfamily Q member 1 overlapping transcript 1 (KCNQ1OT1), a member of the lncRNA voltage-gated channel subfamily Q, in the development of osteoarthritis. In this study, RT-qPCR results showed that KCNQ1OT1 expression was downregulated in osteoarthritic chondrocytes compared with normal chondrocytes. In addition, upregulation of KCNQ1OT1 significantly enhanced the viability of osteoarthritic chondrocytes, inhibited cell apoptosis, and reduced the release of inflammatory cytokines and metal matrix enzymes. Next, bioinformatics analysis and luciferase reporter gene analysis predicted and validated the targeting relationship between KCNQ1OT1 and miR-218-5p. We found that the expression of miR-218-5p was significantly upregulated in osteoarthritic chondrocytes, and knockdown of miR-218-5p significantly enhanced the viability of osteoarthritic chondrocytes, inhibited apoptosis, and decreased the abundance of inflammatory cytokines and metal matrix enzymes. Furthermore, the targeting relationship between miR-218-5p and recombinant phosphoinositide-3-kinase class-2-alpha polypeptide (PIK3C2A) was identified, and overexpression of PIK3C2A enhanced cell viability, and reduced apoptosis and secretion of inflammatory factors. Finally, we found that miR-218-5p overexpression reversed the protective effect of overexpression of KCNQ1OT1 or PIK3C2A on osteoarthritic chondrocytes. In conclusion, our results demonstrated that KCNQ1OT1 upregulated PIK3C2A and activated the PI3K/AKT/mTOR pathway to reduce chondrocyte dysfunction by targeting miR-218-5p, providing new insights into the pathogenesis of osteoarthritis.
Insights
Potassium voltage-gated channel KCNQ1OT1 protects against osteoarthritis by upregulating PIK3C2A and activating the PI3K/AKT/mTOR pathway, reducing chondrocyte dysfunction via targeting miR-218-5p.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Osteoarthritis (OA) is characterized by chondrocyte dysfunction, inflammation, and matrix degradation, significantly impacting patient quality of life.
- Understanding the molecular mechanisms underlying chondrocyte dysfunction in OA is crucial for developing effective therapeutic strategies.
Purpose of the Study:
- To investigate the role of potassium voltage-gated channel subfamily Q member 1 overlapping transcript 1 (KCNQ1OT1) in osteoarthritis development.
- To elucidate the molecular pathway involving KCNQ1OT1, miR-218-5p, and PIK3C2A in regulating chondrocyte function.
Main Methods:
- Quantitative real-time PCR (RT-qPCR) to assess gene expression levels.
- Bioinformatics analysis and luciferase reporter assays to predict and validate microRNA targeting.
- Cell viability assays, apoptosis assays, and inflammatory cytokine/enzyme level measurements.
Main Results:
- KCNQ1OT1 expression was downregulated in osteoarthritic chondrocytes; its upregulation enhanced viability, inhibited apoptosis, and reduced inflammation.
- KCNQ1OT1 targets miR-218-5p, which is upregulated in OA chondrocytes. Knockdown of miR-218-5p mimicked the protective effects of KCNQ1OT1.
- miR-218-5p targets PIK3C2A; PIK3C2A overexpression also conferred protective effects. miR-218-5p overexpression reversed the benefits of KCNQ1OT1 or PIK3C2A.
Conclusions:
- KCNQ1OT1 plays a protective role in osteoarthritis by upregulating PIK3C2A and activating the PI3K/AKT/mTOR pathway through targeting miR-218-5p.
- This study provides novel insights into the pathogenesis of osteoarthritis and identifies a potential therapeutic target.
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