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Updated: Aug 13, 2025

Stimulation of Notch Signaling in Mouse Osteoclast Precursors
Published on: February 28, 2017
DPP4-Truncated CXCL12 Alters CXCR4/ACKR3 Signaling, Osteogenic Cell Differentiation, Migration, and Senescence
Ahmed M Elmansi1,2,3, Nada H Eisa1,2,4, Sudharsan Periyasamy-Thandavan5
1Department of Pathology and Laboratory Medicine, Medical University of South Carolina, Charleston, South Carolina 29403, United States.
Abstract:
Bone marrow skeletal stem cells (SSCs) secrete many cytokines including stromal derived factor-1 or CXCL12, which influences cell proliferation, migration, and differentiation. All CXCL12 splice variants are rapidly truncated on their N-terminus by dipeptidyl peptidase 4 (DPP4). This includes the common variant CXCL12 alpha (1-68) releasing a much less studied metabolite CXCL12(3-68). Here, we found that CXCL12(3-68) significantly inhibited SSC osteogenic differentiation and RAW-264.7 cell osteoclastogenic differentiation and induced a senescent phenotype in SSCs. Importantly, pre-incubation of SSCs with CXCL12(3-68) significantly diminished their ability to migrate toward CXCL12(1-68) in transwell migration assays. Using a high-throughput G-protein-coupled receptor (GPCR) screen (GPCRome) and bioluminescent resonance energy transfer molecular interaction assays, we revealed that CXCL12(3-68) acts via the atypical cytokine receptor 3-mediated β-arrestin recruitment and as a competitive antagonist to CXCR4-mediated signaling. Finally, a reverse phase protein array assay revealed that DPP4-cleaved CXCL12 possesses a different downstream signaling profile from that of intact CXCL12 or controls. The data presented herein provides insights into regulation of CXCL12 signaling. Importantly, it demonstrates that DPP4 proteolysis of CXCL12 generates a metabolite with significantly different and previously overlooked bioactivity that helps explain discrepancies in the literature. This also contributes to an understanding of the molecular mechanisms of osteoporosis and bone fracture repair and could potentially significantly affect the interpretation of experimental outcomes with clinical consequences in other fields where CXCL12 is vital, including cancer biology, immunology, cardiovascular biology, neurobiology, and associated pathologies.
Insights
Dipeptidyl peptidase 4 (DPP4) cleaves CXCL12, creating CXCL12(3-68). This metabolite inhibits stem cell differentiation and migration, impacting bone health and other CXCL12-related research.
Area of Science:
- Cell Biology
- Biochemistry
- Stem Cell Biology
Background:
- Stromal derived factor-1 (CXCL12) is a cytokine secreted by bone marrow skeletal stem cells (SSCs) that regulates cell functions.
- Dipeptidyl peptidase 4 (DPP4) rapidly cleaves CXCL12, generating metabolites like CXCL12(3-68).
Purpose of the Study:
- To investigate the bioactivity of the DPP4-generated CXCL12 metabolite, CXCL12(3-68).
- To elucidate the molecular mechanisms underlying CXCL12(3-68) activity and its impact on SSCs and osteoclastogenesis.
Main Methods:
- In vitro assays including cell differentiation, migration, and senescence induction.
- High-throughput G-protein-coupled receptor (GPCR) screening (GPCRome) and bioluminescent resonance energy transfer (BRET) assays.
- Reverse phase protein array (RPPA) analysis.
Main Results:
- CXCL12(3-68) inhibited osteogenic differentiation of SSCs and osteoclastogenesis of RAW-264.7 cells.
- CXCL12(3-68) induced senescence in SSCs and diminished their migration.
- CXCL12(3-68) acts as a competitive antagonist to CXCR4 via atypical cytokine receptor 3 and β-arrestin recruitment.
- DPP4-cleaved CXCL12 exhibits a distinct downstream signaling profile.
Conclusions:
- DPP4 proteolysis of CXCL12 generates a metabolite with significant, previously overlooked bioactivity.
- CXCL12(3-68) plays a critical role in regulating stem cell function and bone metabolism.
- Findings offer insights into osteoporosis, fracture repair, and potential clinical implications in various CXCL12-related fields.
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