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Published on: February 24, 2017
Glycogen Synthase Kinase-3β Inhibition Links Mitochondrial Dysfunction, Extracellular Matrix Remodelling and Terminal
S Guidotti1,2, M Minguzzi1,2, D Platano1,2
1Laboratorio di Immunoreumatologia e Rigenerazione Tessutale, Istituto Ortopedico Rizzoli, Bologna, Italy.
Abstract:
Following inflammatory stimuli, GSK3 inhibition functions as a hub with pleiotropic effects leading to cartilage degradation. However, little is known about the effects triggered by its direct inhibition as well as the effects on mitochondrial pathology, that contributes to osteoarthritis pathogenesis. To this aim we assessed the molecular mechanisms triggered by GSK3β inactivating stimuli on 3-D (micromass) cultures of human articular chondrocytes. Stimuli were delivered either at micromass seeding (long term) or after maturation (short term) to explore "late" effects on terminal differentiation or "early" mitochondrial effects, respectively. GSK3β inhibition significantly enhanced mitochondrial oxidative stress and damage and endochondral ossification based on increased nuclear translocation of Runx-2 and β-catenin, calcium deposition, cell death and enhanced remodelling of the extracellular matrix as demonstrated by the increased collagenolytic activity of supernatants, despite unmodified (MMP-1) or even reduced (MMP-13) collagenase gene/protein expression. Molecular dissection of the underlying mechanisms showed that GSK3β inhibition achieved with pharmacological/silencing strategies impacted on the control of collagenolytic activity, via both decreased inhibition (reduced TIMP-3) and increased activation (increased MMP-10 and MMP-14). To conclude, the inhibition of GSK3β enhances terminal differentiation via concerted effects on ECM and therefore its activity represents a tool to keep articular cartilage homeostasis.
Insights
Inhibiting GSK3 beta (Glycogen Synthase Kinase 3 beta) promotes cartilage degradation and endochondral ossification, impacting mitochondrial health and extracellular matrix remodeling in osteoarthritis.
Area of Science:
- Biochemistry
- Cell Biology
- Osteoarthritis Pathogenesis
Background:
- Glycogen Synthase Kinase 3 beta (GSK3β) inhibition is implicated in cartilage degradation.
- The specific effects of direct GSK3β inhibition and its role in mitochondrial pathology within osteoarthritis (OA) remain unclear.
Purpose of the Study:
- To investigate the molecular mechanisms of GSK3β inactivation on human articular chondrocytes.
- To explore the impact of GSK3β inhibition on mitochondrial function and endochondral ossification in OA.
Main Methods:
- Utilized 3-D (micromass) cultures of human articular chondrocytes.
- Applied GSK3β inactivating stimuli at different time points (seeding vs. maturation) to assess short-term and long-term effects.
- Employed pharmacological and silencing strategies for molecular dissection.
Main Results:
- GSK3β inhibition significantly increased mitochondrial oxidative stress and damage.
- Observed enhanced endochondral ossification, indicated by Runx-2 and β-catenin nuclear translocation, calcium deposition, and cell death.
- Demonstrated enhanced extracellular matrix remodeling via increased collagenolytic activity, despite unchanged MMP-1 and reduced MMP-13 expression.
- Identified that GSK3β inhibition affects collagenolytic activity through reduced TIMP-3 and increased MMP-10 and MMP-14.
Conclusions:
- GSK3β inhibition promotes terminal differentiation and cartilage degradation through coordinated effects on the extracellular matrix.
- GSK3β activity is crucial for maintaining articular cartilage homeostasis.
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