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Updated: Jan 6, 2026

Ameliorating Osteoarthritis in Mice Using Silver Nanoparticles
Published on: June 2, 2023
Effects of cartilage-targeting moieties on nanoparticle biodistribution in healthy and osteoarthritic joints
Shannon B Brown1, Lei Wang1, Ryan R Jungels1
1University of Florida, J. Crayton Pruitt Family Department of Biomedical Engineering, 1275 Center Drive, Biomedical Sciences Building, JG-56, Gainesville, FL 32611, United States.
Abstract:
Understanding intra-articular biodistribution is imperative as candidate osteoarthritis (OA) drugs become increasingly site-specific. Cartilage has been identified as opportunistic for therapeutic intervention, but poses numerous barriers to drug delivery. To facilitate drug delivery to cartilage, nanoscale vehicles have been designed with different features that target the tissue's matrix. However, it is unclear if these targeting strategies are influenced by OA and the associated structural changes that occur in cartilage. The goal of this work was to study the effectiveness of different cartilage-targeting nanomaterials with respect to cartilage localization and retention, and to determine how these outcomes change in OA. To address these questions, a nanoparticle (NP) system was developed, and the formulation was tuned to possess three distinct cartilage-targeting strategies: (1) passive targeting cationic NPs for electrostatic attraction to cartilage, (2) active targeting NPs with binding peptides for collagen type II, and (3) untargeted neutrally-charged NPs. Ex vivo analyses with bovine cartilage explants demonstrated that targeting strategies significantly improved NP associations with both healthy and OA-like cartilage. In vivo studies with collagenase-induced OA in rats revealed that disease state influenced joint biodistribution for all three NP formulations. Importantly, the extent of cartilage accumulation for each NP system was affected by disease differently; with active NPs, but not passive NPs, cartilage accumulation was increased in OA relative to healthy knees. Together, this work suggests that NPs can be strategically designed for site-specific OA drug delivery, but the biodistribution of the NPs are influenced by the disease conditions into which they are delivered. STATEMENT OF SIGNIFICANCE: As emerging drugs for osteoarthritis are becoming increasingly site-specific, the need for targeted intra-articular drug delivery has evolved. To improve drug delivery to cartilage, targeting strategies for nanomaterials have been developed, but the manner in which these targeted systems accumulate at different sites within the joint remains poorly understood. Moreover, it is unclear how nanomaterial-tissue interactions change in osteoarthritic conditions, as tissue structure and composition change after disease onset. By understanding how nanomaterials distribute within healthy and disease joints, we can advance targeted drug delivery strategies and improve therapeutic outcomes for emerging drugs.
Insights
Nanoparticle drug delivery for osteoarthritis (OA) is more effective when targeting strategies are used. However, the disease state influences how nanoparticles accumulate in the joint, with active targeting showing increased cartilage accumulation in OA knees.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Osteoarthritis Therapeutics
Background:
- Site-specific drug delivery is crucial for emerging osteoarthritis (OA) therapeutics.
- Cartilage presents significant barriers to drug delivery, necessitating advanced strategies.
- The impact of OA-induced structural changes on cartilage-targeting nanomaterial biodistribution is poorly understood.
Purpose of the Study:
- To evaluate the cartilage localization and retention of different cartilage-targeting nanomaterials.
- To determine how OA affects the biodistribution of these nanomaterials within the joint.
Main Methods:
- Developed nanoparticle (NP) systems with three targeting strategies: passive (cationic), active (collagen type II peptide), and untargeted (neutral).
- Assessed NP association with healthy and OA-like bovine cartilage explants ex vivo.
- Investigated joint biodistribution of NPs in a rat model of collagenase-induced OA in vivo.
Main Results:
- All targeting strategies significantly enhanced NP association with both healthy and OA cartilage ex vivo.
- In vivo, OA disease state altered joint biodistribution across all NP formulations.
- Active targeting NPs showed increased cartilage accumulation in OA knees compared to healthy knees, unlike passive NPs.
Conclusions:
- Nanomaterials can be engineered for targeted osteoarthritis drug delivery.
- The biodistribution of nanoparticles within the joint is significantly influenced by the disease state.
- Active targeting strategies may enhance cartilage drug delivery in osteoarthritic joints.

