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PINK1-mediated mitophagy contributes to glucocorticoid-induced cathepsin K production in osteocytes
Jun Yuan1,2, You-Shui Gao3, De-Lin Liu1,2
1Centre for Orthopaedic Translational Research, Medical School, The University of Western Australia, Nedlands, Western Australia, 6009, Australia.
Background:
Glucocorticoid (GC) is one of frequently used anti-inflammatory agents, but its administration is unfortunately accompanied with bone loss. Although sporadic studies indicated that osteocytes are subject to a series of pathological changes under GC stress, including overexpression of cathepsin K, the definite role of osteocytes in GC-induced bone loss remains largely unclear.
Methods:
Gene expression of Ctsk and protein levels of cathepsin K were assessed in MLO-Y4 cell lines exposed to dexamethasone (Dex) of different time (0, 12, 24 hours) and dose (0, 10-8 and 10-6 M) courses by RT-qPCR and western blotting, respectively. Confocal imaging and immunostaining were then performed to evaluate the effects of osteocyte-derived cathepsin K on type I collagen in a primary osteocyte ex vivo culture system. MitoTracker Red was used to stain mitochondria for mitochondria morphology assessment and JC-1 assay was employed to evaluate the mitochondria membrane potential in MLO-Y4 cells following Dex treatment. Activation of PINK1-mediated mitophagy was evaluated by immunostaining of the PINK1 protein and CytoID assay. Mdivi-1 was used to inhibit mitophagy and siRNAs were used for the inhibition of Pink1 and Atg5.
Results:
GC triggered osteocytes to produce excessive cathepsin K which in turn led to the degradation of type I collagen in the extracellular matrix in a primary osteocyte ex vivo culture system. Meanwhile, GC administration increased mitochondrial fission and membrane depolarization in osteocytes. Further, the activation of PINK1-mediated mitophagy was demonstrated to be responsible for the diminishment of dysfunctional mitochondria in osteocytes. Examination of relationship between mitophagy and cathepsin K production revealed that inhibition of mitophagy via knocking down Pink1 gene abolished the GC-triggered cathepsin K production. Interestingly, GC's activation effect towards cathepsin K via mitophagy was found to be independent on the canonical autophagy as this effect was not impeded when inhibiting the canonical autophagy via Atg5 suppression.
Conclusion:
GC-induced PINK1-mediated mitophagy substantially modulates the production of cathepsin K in osteocytes, which could be an underlying mechanism by which osteocytes contribute to the extracellular matrix degradation during bone loss.
The Translational Potential Of This Article:
Findings of the current study indicate a possible role of osteocyte mitophagy in GC-induced bone loss, which provides a potential therapeutic approach to alleviate GC-induced osteoporosis by targeting PINK1-mediated osteocytic mitophagy.
Insights
Glucocorticoids cause bone loss by increasing cathepsin K in osteocytes via PINK1-mediated mitophagy. Inhibiting this pathway may treat glucocorticoid-induced osteoporosis.
Area of Science:
- Cell Biology
- Bone Biology
- Pathology
Background:
- Glucocorticoids (GCs) are potent anti-inflammatory drugs but induce bone loss.
- Osteocytes, crucial bone cells, undergo pathological changes under GC stress, including cathepsin K overexpression.
- The precise role of osteocytes in GC-induced bone loss is not fully understood.
Purpose of the Study:
- To investigate the role of osteocytes in GC-induced bone loss.
- To elucidate the mechanism by which GCs affect osteocytes, focusing on cathepsin K and mitophagy.
- To explore potential therapeutic targets for GC-induced osteoporosis.
Main Methods:
- Assessed cathepsin K gene and protein expression in osteocyte cell lines (MLO-Y4) treated with dexamethasone (Dex).
- Evaluated the impact of osteocyte-derived cathepsin K on type I collagen using primary osteocyte cultures.
- Analyzed mitochondrial function and PINK1-mediated mitophagy in osteocytes following Dex treatment.
- Investigated the role of mitophagy in cathepsin K production using gene silencing (siRNAs) for Pink1 and Atg5.
Main Results:
- GCs induced osteocytes to overproduce cathepsin K, leading to type I collagen degradation.
- GCs caused mitochondrial fission and membrane depolarization in osteocytes.
- PINK1-mediated mitophagy was activated by GCs and responsible for removing dysfunctional mitochondria.
- Inhibiting PINK1-mediated mitophagy abolished GC-induced cathepsin K production, independent of canonical autophagy (Atg5).
Conclusions:
- GC-induced PINK1-mediated mitophagy significantly modulates cathepsin K production in osteocytes.
- This mechanism contributes to extracellular matrix degradation and bone loss.
- Targeting osteocytic mitophagy presents a potential therapeutic strategy for GC-induced osteoporosis.
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