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Ameliorating Osteoarthritis in Mice Using Silver Nanoparticles
Published on: June 2, 2023
A Zinc-Loureirin B Coordination Nanozyme for Oxidative and Inflammatory Microenvironment Remodeling in Osteoarthritis
Zelin Xu1,2, Haoran Yu1,2, Zhongyao Hu1,2
1Department of Orthopedics, the Second Affiliated Hospital of Anhui Medical University, Hefei 230000, China.
Abstract:
Osteoarthritis (OA), a chronic degenerative joint disease characterized by cartilage breakdown and synovial inflammation, remains clinically intractable due to the lack of disease-modifying therapies. Existing treatments fail to effectively mitigate the pathological microenvironment, which is dominated by excess reactive oxygen species (ROS) and sustained inflammatory responses. Nanozymes have emerged as promising ROS-scavenging agents, yet their therapeutic efficacy is limited by insufficient bioactivity and a lack of immunomodulatory function. Herein, we report a rationally designed metal-polyphenol coordination nanozyme constructed from zinc ions and Loureirin B (LB), termed Zn-LB NPs, which integrates catalytic activity and immunoregulation for OA therapy. The Zn-LB NPs exhibit robust antioxidant capacity, mimicking multiradical scavenging activity via ABTS•+, DPPH•, and PTIO• assays. Importantly, nanoformulation markedly improves the aqueous solubility and bioavailability of LB, a hydrophobic flavonoid with known anti-inflammatory properties but poor pharmacokinetics. Mechanistically, Zn-LB NPs restore mitochondrial function and reduce apoptosis in IL-1β-stimulated chondrocytes, while promoting anabolic gene expression. In parallel, they reprogram RAW264.7 macrophages from an M1 to M2 phenotype, thereby suppressing pro-inflammatory cytokines. In vivo, intra-articular injection of Zn-LB NPs significantly attenuates cartilage degradation, reduces MMP13 and TNF-α expression, and improves locomotor function in MIA-induced OA mice. No significant systemic toxicity was observed in biochemical, hematological, or histological assessments. This dual-function nanozyme platform synergistically addresses oxidative and immune dysregulation in OA, offering a disease-modifying strategy by integrating catalytic therapy with natural drug delivery. Our findings establish Zn-LB NPs as safe and effective nanotherapeutics for cartilage protection and OA intervention.
Insights
A novel nanozyme, Zn-LB NPs, effectively treats osteoarthritis by scavenging reactive oxygen species and modulating immune responses. This dual-action therapy protects cartilage and improves joint function without significant toxicity.
Area of Science:
- Biomaterials Science
- Nanomedicine
- Rheumatology
Background:
- Osteoarthritis (OA) is a degenerative joint disease with limited disease-modifying treatments.
- Current therapies fail to address the oxidative stress and inflammation central to OA pathology.
- Existing nanozymes lack sufficient bioactivity and immunomodulatory capacity for effective OA treatment.
Purpose of the Study:
- To develop a dual-function nanozyme, Zn-LB NPs, integrating antioxidant and immunomodulatory properties for osteoarthritis therapy.
- To enhance the bioavailability and therapeutic efficacy of Loureirin B (LB) through nanoformulation.
- To investigate the in vitro and in vivo therapeutic potential of Zn-LB NPs in osteoarthritis models.
Main Methods:
- Fabrication of zinc-polyphenol coordination nanozymes (Zn-LB NPs) from zinc ions and Loureirin B.
- In vitro assessment of antioxidant activity (ABTS•+, DPPH•, PTIO• assays) and chondrocyte/macrophage response.
- In vivo evaluation in a mouse model of monosodium iodoacetate (MIA)-induced osteoarthritis, including histological and functional analyses.
- Systemic toxicity assessment through biochemical, hematological, and histological examinations.
Main Results:
- Zn-LB NPs demonstrated potent multiradical scavenging activity and improved LB solubility/bioavailability.
- In vitro studies showed Zn-LB NPs restored mitochondrial function, reduced chondrocyte apoptosis, and reprogrammed M1 to M2 macrophages.
- In vivo administration significantly reduced cartilage degradation, inflammatory markers (MMP13, TNF-α), and improved joint function in OA mice.
- No significant systemic toxicity was observed, indicating a favorable safety profile.
Conclusions:
- Zn-LB NPs represent a promising disease-modifying nanotherapeutic for osteoarthritis.
- The integrated catalytic and immunomodulatory functions synergistically combat OA's pathological microenvironment.
- This nanozyme platform offers a safe and effective strategy for cartilage protection and osteoarthritis intervention.
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