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Published on: January 7, 2019
CCL3 and MMP-9 are induced by TL1A during death receptor 3 (TNFRSF25)-dependent osteoclast function and systemic bone
Fraser L Collins1, Jessica O Williams2, Anja C Bloom2
1Cardiff Institute of Infection and Immunity, School of Medicine, Cardiff University, Cardiff, United Kingdom; Department of Physiology, Michigan State University, East Lansing, MI, USA.
Abstract:
Reduced bone density and secondary osteoporosis, resulting in increased risk of fracture, is a significant complicating factor in the inflammatory arthritides. While the exact etiology of systemic bone loss is not fully elucidated, recent insights into the tumor necrosis factor super family (TNFSF) revealed a potential role for death receptor 3 (DR3/TNFRSF25) and one of its ligands, TNF-like protein 1A (TL1A/TNFSF15). The mechanisms by which DR3/TL1A signalling modulates bone loss are unclear. We investigated the effect of DR3/TL1A signalling upon osteoclast-dependent chemokine and MMP production to unravel novel mechanisms whereby this pathway regulates OC formation and OC-dependent bone resorption. Collagen induced arthritis (CIA) was established in DR3wt and DR3ko mice, joints were sectioned and analysed histologically for bone damage while systemic trabecular bone loss distal to the affected joints was compared by micro-CT. Ablation of DR3 protected DBA/1 mice against the development and progression of CIA. In DR3ko, joints of the ankle and mid-foot were almost free of bone erosions and long bones of mice with CIA were protected against systemic trabecular bone loss. In vitro, expression of DR3 was confirmed on primary human CD14+ osteoclast precursors by flow cytometry. These cells were treated with TL1A in osteoclast differentiation medium and TRAP+ osteoclasts, bone resorption, levels of osteoclast-associated chemokines (CCL3, CCL2 and CXCL8) and MMP-9 measured. TL1A intensified human osteoclast differentiation and bone resorption and increased osteoclast-associated production of CCL3 and MMP-9. Our data reveals the DR3 pathway as an attractive therapeutic target to combat adverse bone pathology associated with inflammatory arthritis. We demonstrate that DR3 is critical in the pathogenesis of murine CIA and associated secondary osteoporosis. Furthermore, we identify a novel mechanism by which the DR3/TL1A pathway directly enhances human OC formation and resorptive activity, controlling expression and activation of CCL3 and MMP-9.
Insights
The death receptor 3 (DR3) pathway, activated by TNF-like protein 1A (TL1A), promotes bone loss in inflammatory arthritis. Blocking DR3 protects against bone erosion and osteoporosis in mice, offering a therapeutic target.
Area of Science:
- Immunology
- Bone Biology
- Rheumatology
Background:
- Inflammatory arthritides cause bone loss and osteoporosis, increasing fracture risk.
- The tumor necrosis factor superfamily (TNFSF), including death receptor 3 (DR3) and its ligand TNF-like protein 1A (TL1A), is implicated in systemic bone loss.
- Mechanisms linking DR3/TL1A signaling to bone loss remain unclear.
Purpose of the Study:
- To investigate the role of DR3/TL1A signaling in osteoclast-dependent bone resorption.
- To elucidate novel mechanisms by which this pathway regulates osteoclast formation and bone loss in inflammatory arthritis.
Main Methods:
- Collagen-induced arthritis (CIA) model in DR3 knockout (DR3ko) and wild-type (DR3wt) mice.
- Histological analysis of joint damage and micro-CT for systemic bone loss.
- In vitro studies using primary human osteoclast precursors treated with TL1A.
Main Results:
- DR3 ablation protected mice from CIA development and progression, reducing joint erosions and systemic bone loss.
- TL1A enhanced human osteoclast differentiation and bone resorption in vitro.
- TL1A increased osteoclast production of CCL3 and matrix metalloproteinase-9 (MMP-9).
Conclusions:
- DR3 is critical in the pathogenesis of inflammatory arthritis and associated secondary osteoporosis.
- The DR3/TL1A pathway directly promotes human osteoclast formation and activity.
- DR3/TL1A signaling represents a potential therapeutic target for inflammatory bone pathology.
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