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Updated: Jan 20, 2026

Differentiation of Functional Osteoclasts from Human Peripheral Blood CD14+ Monocytes
Published on: January 27, 2023
Proteasome inhibition suppress microgravity elevated RANK signaling during osteoclast differentiation
Purushoth Ethiraj1, Allie M Ottinger1, Toolika Singh1
1Darby Children's Research Institute, Department of Pediatrics, Medical University of South Carolina, Charleston, SC, USA.
Abstract:
Microgravity (µXg) induces bone loss in astronauts during space missions. Therefore, it is necessary to delineate the underlying mechanisms which leads to bone loss for developing countermeasures. Osteoclasts (OCLs) are multinucleated cells, which resorb bone. Previously, we have demonstrated that simulated µXg enhances OCL formation. However, control of osteoclast bone resorption activity under μXg remains unclear. The OCL formation has been shown to be regulated by ubiquitin-proteasome pathway. Hence, we hypothesized that proteasome inhibition could regulate osteoclast differentiation under μXg. In this study, we identified that RAW264.7 preosteoclast cells treated with proteasome inhibitor (MG-132) suppress RANK receptor expression essential for OCL differentiation, but no effect on TRAF-6. We identified that MG-132 treatment abolished K48-linked poly-ubiquitination under μXg. Immunostaining confirms inhibition of protein ubiquitination and RANK expression in preosteoclast cells. Furthermore, proteasome inhibition suppresses the expression of SQSTM1/p62 under both the ground based Xg and μXg conditions. Also, confocal microscopy using Lyso-Tracker demonstrated that proteasomal inhibition suppress the co-localization of p62 and lysosomes. MG-132 inhibited RANKL induced proteasome activity. RAW264.7 cells treated with the proteasome inhibitor showed an increased level of p-c-Jun activity in control cultures, however decreased under µXg. In contrast, c-Fos and NFATc1 expression was decreased. In-addition, mouse bone marrow cultures treated with MG-132 suppress OCL formation and bone resorption activity. Thus, our findings suggest that proteasome inhibition represents a novel therapeutic approach for bone loss under µXg in space environment.
Insights
Proteasome inhibition prevents microgravity-induced bone loss by suppressing osteoclast activity. This approach targets key pathways regulating bone resorption, offering a potential countermeasure for astronauts.
Area of Science:
- Space biology
- Cell biology
- Biochemistry
Background:
- Microgravity (µXg) causes bone loss in astronauts, necessitating countermeasures.
- Osteoclasts (OCLs) resorb bone, and their formation is enhanced under simulated µXg.
- The ubiquitin-proteasome pathway regulates OCL formation, but its role in µXg-induced bone resorption is unclear.
Purpose of the Study:
- To investigate the effect of proteasome inhibition on osteoclast differentiation and function under microgravity conditions.
- To elucidate the molecular mechanisms by which proteasome inhibition impacts osteoclastogenesis in µXg.
Main Methods:
- RAW264.7 preosteoclast cells and mouse bone marrow cultures were used.
- Cells were treated with proteasome inhibitor MG-132 under normal gravity and simulated µXg.
- RANK receptor expression, K48-linked poly-ubiquitination, SQSTM1/p62, c-Fos, c-Jun, and NFATc1 levels were analyzed.
- Osteoclast formation and bone resorption activity were assessed.
Main Results:
- MG-132 suppressed RANK expression and K48-linked poly-ubiquitination in preosteoclasts under µXg.
- Proteasome inhibition reduced SQSTM1/p62 expression and its co-localization with lysosomes.
- MG-132 decreased c-Fos and NFATc1 expression while altering p-c-Jun activity under µXg.
- Inhibition of osteoclast formation and bone resorption was observed in mouse bone marrow cultures.
Conclusions:
- Proteasome inhibition effectively suppresses osteoclast differentiation and bone resorption under microgravity.
- Targeting the ubiquitin-proteasome pathway, specifically K48-linked ubiquitination and p62 degradation, is a viable strategy.
- Proteasome inhibition offers a novel therapeutic approach to mitigate bone loss during space missions.
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