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Published on: January 10, 2025
Interleukin expression after injury and the effects of interleukin-1 receptor antagonist
Connie S Chamberlain1, Ellen M Leiferman, Kayt E Frisch
1Department of Orthopedics and Rehabilitation, University of Wisconsin, Madison, Wisconsin, USA.
Insights
Interleukin-1 receptor antagonist (IL-1Ra) treatment reduced inflammation and improved healing in rat medial collateral ligaments (MCLs). Sustained delivery may enhance therapeutic potential for ligament repair.
Area of Science:
- Biomedical Engineering
- Tissue Repair and Regeneration
- Inflammation and Immunology
Background:
- Ligament healing results in scar-like tissue with inferior mechanical properties.
- Macrophages and interleukins play key roles in modulating ligament healing and inflammation.
- Understanding inflammatory mediators is crucial for improving scar formation during healing.
Purpose of the Study:
- To investigate the role of interleukin-1 (IL-1) family in medial collateral ligament (MCL) healing.
- To examine the therapeutic potential of interleukin-1 receptor antagonist (IL-1Ra) in MCL healing.
Main Methods:
- A rat MCL transection model was utilized.
- Microarray analysis was performed on days 3 and 7 post-injury to identify key interleukins.
- The effect of IL-1Ra on cellular and molecular components of MCL healing was assessed.
Main Results:
- Interleukin-1 family components were significantly upregulated during MCL healing.
- IL-1Ra treatment decreased pro-inflammatory cytokines and myofibroblasts.
- IL-1Ra increased anti-inflammatory cytokines, M2 macrophages, and blood vessel formation without compromising mechanical properties.
Conclusions:
- IL-1Ra modulates granulation tissue and cytokine production, creating a less inflammatory healing environment.
- IL-1Ra shows therapeutic potential in early ligament healing by stimulating M2 macrophages.
- Sustained delivery of IL-1Ra may be necessary for a more regenerative healing response.
Abstract:
Ligament healing follows a series of complex coordinated events involving various cell types, cytokines, as well as other factors, producing a mechanically inferior tissue more scar-like than native tissue. Macrophages provide an ongoing source of cytokines to modulate inflammatory cell adhesion and migration as well as fibroblast proliferation. Studying interleukins inherent to ligament healing during peak macrophage activation and angiogenesis may elucidate inflammatory mediators involved in subsequent scar formation. Herein, we used a rat healing model assayed after surgical transection of their medial collateral ligaments (MCLs). On days 3 and 7 post-injury, ligaments were collected and used for microarray analysis. Of the 12 significantly modified interleukins, components of the interleukin-1 family were significantly up-regulated. We therefore examined the influence of interleukin-1 receptor antagonist (IL-1Ra) on MCL healing. Transected rat MCLs received PBS or IL-1Ra at the time of surgery. Inhibition of IL-1 activation decreased pro-inflammatory cytokines (IL-1α, IL-1β, IL-12, IL-2, and IFN-γ), myofibroblasts, and proliferating cells, as well as increased anti-inflammatory cytokines (IL-10), endothelial cells/blood vessel lumen, M2 macrophages, and granulation tissue size without compromising the mechanical properties. These results support the concept that IL-1Ra modulates MCL-localized granulation tissue components and cytokine production to create a transient environment that is less inflammatory. Overall, IL-1Ra may have therapeutic potential early in the healing cascade by stimulating the M2 macrophages and altering the granulation tissue components. However, the single dose of IL-1Ra used in this study was insufficient to maintain the more regenerative early response. Due to the transient influence on most of the healing components tested, IL-1Ra may have greater therapeutic potential with sustained delivery.
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