Related Experiment Video
Updated: Sep 28, 2025

Ameliorating Osteoarthritis in Mice Using Silver Nanoparticles
Published on: June 2, 2023
Can CD200R1 Agonists Slow the Progression of Osteoarthritis Secondary to Injury?
Kathak Vachhani1,2, Aaron Prodeus2,3, Sayaka Nakamura4,5
1Institute of Biomedical Engineering, University of Toronto, Toronto, ON, Canada.
Abstract:
Post-traumatic knee osteoarthritis is characterized by cartilage degeneration, subchondral bone remodeling, osteophyte formation, and synovial changes. Therapeutic targeting of inflammatory activity in the knee immediately post injury may alter the course of osteoarthritis development. This study aimed to determine whether CD200R1 agonists, namely the protein therapeutic CD200Fc or the synthetic DNA aptamer CCS13, both known to act as anti-inflammatory agents, are able to delay the pathogenesis of injury-associated knee osteoarthritis in a murine model. Ten week old male C57BL/6 mice were randomized and surgical destabilization of the medial meniscus (DMM) to induce knee arthritis or sham surgery as a control were performed. CCS13 was evaluated as a therapeutic treatment along with CD200Fc and a phosphate-buffered saline vehicle control. Oligonucleotides were injected intra-articularly beginning one week after surgery, with a total of six injections administered prior to sacrifice at 12 weeks post-surgery. Histopathological assessment was used as the primary outcome measure to assess cartilage and synovial changes, while µCT imaging was used to compare the changes to the subchondral bone between untreated and treated arthritic groups. We did not find any attenuation of cartilage degeneration or synovitis in DMM mice with CD200Fc or CCS13 at 12 weeks post-surgery, nor stereological differences in the properties of subchondral bone. The use of CD200R1 agonists to blunt the inflammatory response in the knee are insufficient to prevent disease progression in the mouse DMM model of OA without anatomical restoration of the normal joint biomechanics.
Insights
CD200R1 agonists, CD200Fc and CCS13, did not prevent post-traumatic osteoarthritis progression in mice. Targeting inflammation alone is insufficient without addressing joint biomechanics to delay osteoarthritis development.
Area of Science:
- Biomedical Science
- Immunology
- Orthopedics
Background:
- Post-traumatic knee osteoarthritis involves cartilage degeneration, bone remodeling, and synovial changes.
- Early therapeutic targeting of inflammation post-injury may modify osteoarthritis development.
Purpose of the Study:
- To investigate if CD200R1 agonists (CD200Fc and CCS13) delay post-traumatic knee osteoarthritis in a murine model.
- To assess the efficacy of anti-inflammatory agents in preventing osteoarthritis pathogenesis after joint injury.
Main Methods:
- Male C57BL/6 mice underwent surgical destabilization of the medial meniscus (DMM) or sham surgery.
- Mice received intra-articular injections of CD200Fc, CCS13, or vehicle control.
- Histopathology and micro-CT imaging were used to evaluate cartilage, synovium, and subchondral bone changes at 12 weeks post-surgery.
Main Results:
- Neither CD200Fc nor CCS13 treatment attenuated cartilage degeneration or synovitis in DMM mice.
- No stereological differences in subchondral bone properties were observed between treated and untreated arthritic groups.
- CD200R1 agonists did not prevent disease progression in this osteoarthritis model.
Conclusions:
- CD200R1 agonists are insufficient to prevent post-traumatic osteoarthritis progression in the DMM mouse model.
- Therapeutic strategies targeting only inflammation may not be effective without addressing biomechanical factors in osteoarthritis.
- Restoration of normal joint biomechanics is likely necessary alongside anti-inflammatory approaches for effective osteoarthritis treatment.
More Related Videos
12:44Creation of a Knee Joint-on-a-Chip for Modeling Joint Diseases and Testing Drugs
Published on: January 27, 2023
12:23Flow Cytometry Analysis of Immune Cell Subsets within the Murine Spleen, Bone Marrow, Lymph Nodes and Synovial Tissue in an Osteoarthritis Model
Published on: April 24, 2020