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A Microneedle Platform Co-loaded with Eugenol, Chlorogenic Acid, and Allopurinol for In Vivo Modulation of
Peiya Shen1, Jiaqi Liu1, Desen Wang2
1School of Traditional Chinese Pharmacy, China Pharmaceutical University, Nanjing211198, PR. China.
Abstract:
Gouty arthritis arises from pathological deposition of monosodium urate (MSU) crystals, whose interactions with surrounding tissues initiate and amplify inflammation. Here, we developed a nanoengineered microneedle (MN) platform for localized modulation of pathological crystallization. The MN system spatially compartmentalizes chlorogenic acid (CGA), eugenol (EUG), and allopurinol (AP) and was designed to provide a rapid-release EUG/CGA phase and a sustained-release polymeric CGA/AP phase: a fraction of CGA is dissolved in EUG for rapid self-emulsification and early interaction with MSU crystal surfaces, while the remainder is embedded in a biodegradable polymer matrix for sustained release. Fluorescence tracing confirmed the penetration of the labeled EUG-associated phase into periarticular tissues, while CGA delayed MSU nucleation, suppressed crystal growth, and remodeled crystal habit from needle-like morphologies toward less sharp petal-like forms. The polymer matrix enabled sustained release of CGA and AP, supporting prolonged crystallization inhibition and urate control. In vivo, the intra-articular MSU crystal-covered area at 144 h was 0.82 ± 0.04% in the MN-treated group versus 7.23 ± 0.84% in the untreated model group (n = 3, P < 0.001). Serum uric acid levels at 144 h were 4.35 ± 0.43 and 10.00 ± 0.31 μg/mL, respectively (n = 6, P < 0.0001), while joint swelling rates at 96 h were 3.80 ± 1.71% and 21.06 ± 1.78%, respectively (n = 6, P < 0.0001). Synovial IL-1β, IL-6, and TNF-α positive areas were all below 5% in the MN-treated group and were significantly lower than those in untreated rats (n = 3, all P < 0.0001), accompanied by improved synovial tissue integrity. This study provides in vivo experimental evidence that pathological MSU crystallization can be locally modulated through an interfacial-engineered MN platform, offering a new strategy for gout therapy by integrating crystal regulation, anti-inflammatory intervention, and urate-lowering treatment.

