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Inhibition of osteoclastogenesis by mechanically loaded osteocytes: involvement of MEPE
Rishikesh N Kulkarni1, Astrid D Bakker, Vincent Everts
1Department of Oral Cell Biology, Academic Centre for Dentistry Amsterdam, University of Amsterdam and VU University Amsterdam, Research Institute MOVE, Van der Boechorststraat 7, 1081 BT, Amsterdam, The Netherlands.
Abstract:
In regions of high bone loading, the mechanoresponsive osteocytes inhibit osteoclastic bone resorption by producing signaling molecules. One possible candidate is matrix extracellular phosphoglycoprotein (MEPE) because acidic serine- and aspartate-rich MEPE-associated motif peptides upregulate osteoprotegerin (OPG) gene expression, a negative regulator of osteoclastogenesis. These peptides are cleaved from MEPE when relatively more MEPE than PHEX (phosphate-regulating gene with homology to endopeptidases on the X chromosome) is present. We investigated whether mechanical loading of osteocytes affects osteocyte-stimulated osteoclastogenesis by involvement of MEPE. MLO-Y4 osteocytes were mechanically loaded by 1-h pulsating fluid flow (PFF; 0.7 ± 0.3 Pa, 5 Hz) or kept under static control conditions. Recombinant MEPE (0.05, 0.5, or 5 μg/ml) was added to some static cultures. Mouse bone marrow cells were seeded on top of the osteocytes to determine osteoclastogenesis. Gene expression of MEPE, PHEX, receptor activator of nuclear factor kappa-B ligand (RANKL), and OPG by osteocytes was determined after PFF. Osteocytes supported osteoclast formation under static control conditions. Both PFF and recombinant MEPE inhibited osteocyte-stimulated osteoclastogenesis. PFF upregulated MEPE gene expression by 2.5-fold, but not PHEX expression. PFF decreased the RANKL/OPG ratio at 1-h PFF treatment. Our data suggest that mechanical loading induces changes in gene expression by osteocytes, which likely contributes to the inhibition of osteoclastogenesis after mechanical loading of bone. Because mechanical loading upregulated gene expression of MEPE but not PHEX, possibly resulting in the upregulation of OPG gene expression, we speculate that MEPE is a soluble factor involved in the inhibition of osteoclastogenesis by osteocytes.
Insights
Mechanical loading of bone osteocytes inhibits bone resorption by upregulating matrix extracellular phosphoglycoprotein (MEPE). This process involves MEPE signaling to reduce osteoclastogenesis, crucial for bone health.
Area of Science:
- Bone Biology
- Mechanobiology
- Cell Signaling
Background:
- Osteocytes in high bone loading regions inhibit osteoclastic bone resorption via signaling molecules.
- Matrix extracellular phosphoglycoprotein (MEPE) and its peptides are candidates for regulating osteoclastogenesis.
- MEPE-associated motif peptides upregulate osteoprotegerin (OPG) gene expression, a key inhibitor of osteoclast formation.
Purpose of the Study:
- To investigate the role of mechanical loading on osteocyte-stimulated osteoclastogenesis.
- To determine the involvement of MEPE in the response of osteocytes to mechanical stimuli.
- To analyze the effect of mechanical loading on the expression of MEPE, PHEX, RANKL, and OPG in osteocytes.
Main Methods:
- MLO-Y4 osteocytes subjected to 1-hour pulsating fluid flow (PFF) or static conditions.
- Assessment of osteoclastogenesis using mouse bone marrow cells seeded on osteocytes.
- Quantification of gene expression for MEPE, PHEX, RANKL, and OPG in osteocytes post-PFF.
Main Results:
- Mechanical loading (PFF) and recombinant MEPE inhibited osteocyte-stimulated osteoclastogenesis.
- PFF significantly upregulated MEPE gene expression (2.5-fold) but not PHEX expression.
- PFF treatment decreased the RANKL/OPG ratio, indicating reduced osteoclastogenesis signaling.
Conclusions:
- Mechanical loading induces changes in osteocyte gene expression, contributing to the inhibition of osteoclastogenesis.
- MEPE appears to be a soluble factor involved in osteocyte-mediated inhibition of osteoclastogenesis.
- Upregulation of MEPE and subsequent OPG expression by mechanical loading is a key mechanism for bone resorption regulation.
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