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Published on: March 15, 2018
A novel role for thrombopoietin in regulating osteoclast development in humans and mice
Monique Bethel1, Calvin L T Barnes2, Amanda F Taylor1
1Department of Orthopaedic Surgery, Indiana University School of Medicine, Indianapolis, Indiana.
Abstract:
Emerging data suggest that megakaryocytes (MKs) play a significant role in skeletal homeostasis. Indeed, osteosclerosis observed in several MK-related disorders may be a result of increased numbers of MKs. In support of this idea, we have previously demonstrated that MKs increase osteoblast (OB) proliferation by a direct cell-cell contact mechanism and that MKs also inhibit osteoclast (OC) formation. As MKs and OCs are derived from the same hematopoietic precursor, in these osteoclastogenesis studies we examined the role of the main MK growth factor, thrombopoietin (TPO) on OC formation and bone resorption. Here we show that TPO directly increases OC formation and differentiation in vitro. Specifically, we demonstrate the TPO receptor (c-mpl or CD110) is expressed on cells of the OC lineage, c-mpl is required for TPO to enhance OC formation in vitro, and TPO activates the mitogen-activated protein kinases, Janus kinase/signal transducer and activator of transcription, and nuclear factor-kappaB signaling pathways, but does not activate the PI3K/AKT pathway. Further, we found TPO enhances OC resorption in CD14+CD110+ human OC progenitors derived from peripheral blood mononuclear cells, and further separating OC progenitors based on CD110 expression enriches for mature OC development. The regulation of OCs by TPO highlights a novel therapeutic target for bone loss diseases and may be important to consider in the numerous hematologic disorders associated with alterations in TPO/c-mpl signaling as well as in patients suffering from bone disorders.
Insights
Thrombopoietin (TPO) directly promotes osteoclast formation and bone resorption by activating specific signaling pathways. This finding reveals TPO as a potential therapeutic target for bone loss diseases.
Area of Science:
- Bone Biology
- Hematopoiesis
- Cell Signaling
Background:
- Megakaryocytes (MKs) influence skeletal homeostasis, potentially contributing to osteosclerosis.
- Previous studies showed MKs promote osteoblast proliferation and inhibit osteoclast formation.
- MKs and osteoclasts (OCs) share hematopoietic precursors, prompting investigation into TPO's role.
Purpose of the Study:
- To investigate the role of thrombopoietin (TPO) in osteoclast (OC) formation and bone resorption.
- To determine if TPO directly affects OC development and function.
Main Methods:
- Examined TPO's effect on OC formation and differentiation in vitro.
- Assessed TPO receptor (c-mpl/CD110) expression on OC lineage cells.
- Investigated TPO-induced signaling pathways (JAK/STAT, NF-κB, PI3K/AKT).
- Evaluated TPO's impact on OC resorption using human peripheral blood mononuclear cell-derived progenitors.
Main Results:
- TPO directly increases OC formation and differentiation in vitro.
- The TPO receptor, c-mpl (CD110), is expressed on OC lineage cells and is required for TPO's effect.
- TPO activates JAK/STAT and NF-κB pathways, but not PI3K/AKT.
- TPO enhances OC resorption in CD14+CD110+ human OC progenitors.
Conclusions:
- TPO directly regulates osteoclast formation, differentiation, and function.
- The TPO/c-mpl axis represents a novel therapeutic target for bone loss diseases.
- TPO's role in OC regulation is relevant to hematologic disorders with altered TPO signaling and bone disorders.
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