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Microparticles-in-Thermoresponsive/Bioadhesive Hydrogels as a Novel Integrated Platform for Effective Intra-articular Delivery of Triamcinolone Acetonide

机译:热颗粒 - 热型/生物粘附水凝胶作为新型综合平台,用于有效关节内携带的抗菊酮酮酮的关节内递送

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Intra-articular (IA) injection of thermoresponsive hydrogels coupled with microparticles (MPs) possess the benefit of sustaining the anti-inflammatory drug effect within the joint cavity for rheumatoid arthritis treatment. Star-shaped thennoresponsive poly(polyethylene glycol) methacrylate [Poly(PEGMA)] copolymers were synthesized using free radical polymerization technique and fully characterized. Triamcinolone acetonide (TA)-loaded PLA/mPEG-PDL MPs, previously optimized, were integrated into the synthesized copolymer solutions at various concentrations and tested for their gelation temperatures. The MPs-in-hydrogel formulations were characterized using scanning electron microscope (SEM), viscosity measurements, ex vivo bioadhesion, and in vitro release studies. The anti-inflammatory effect of integrated systems was assessed in adjuvant-induced monoarthritic rat knee joints and compared to Kenacort and TA-loaded MPs. Two copolymers were successfully synthesized; G-1 = poly(PEGMA(188)-ME-co-PEGMA(475)-ME) and G-2 = poly(PEGMA(246)-EE-co-PEGMA(475)-ME). Using the tube inversion technique, the gel formation was found dependent on copolymer concentration. An irreversible aggregation was obtained at copolymer concentrations <= 10% (w/v), while a gel was formed at 20 and 30% (w/v) of both copolymers upon increasing temperature. The MP-hydrogel formulations were optimized at 20 and 30% (w/v) of G-1 and G-2 with gelation temperatures of 33 and 37 degrees C, respectively. SEM images revealed the porous microstructures of hydrogels and their adsorption on MP surfaces. The integrated formulas showed pseudoplastic behaviors, while the bioadhesion study confirmed their bioadhesiveness on excised cartilage. The in vitro release study confirmed drug sustainment from MPs-hydrogels compared to MPs. In vivo studies proved the superiority of MP-in-hydrogels in treatment of induced arthritis, relative to Kenacort and MPs alone, suggesting the applicability of this integrated platform in IA drug delivery.
机译:关节内(IA)注射与微粒(MPS)偶联的热反应性水凝胶具有维持性关节炎治疗的关节腔内的抗炎药物作用的益处。使用游离自由基聚合技术合成星形丙烯酸酯[聚乙二醇)甲基丙烯酸酯[聚(PEGMA)]共聚物并充分表征。以前优化的Triamcinolone乙酮酮(TA) - 预先优化的PLA / MPEG-PDL MPS以各种浓度整合到合成的共聚物溶液中并测试其凝胶化温度。使用扫描电子显微镜(SEM),粘度测量,离体生物粘附和体外释放研究表征了MPS-水凝胶制剂。在佐剂诱导的单对细胞瘤膝关节中评估综合系统的抗炎作用,与KENACORT和TA负载的MPS相比。成功合成了两种共聚物; G-1 =聚(PEGMA(188)-ME-Co-PEGMA(475)-ME)和G-2 =聚(PEGMA(246)-ee-Co-PEGMA(475)-ME)。使用管反转技术,发现凝胶形成取决于共聚物浓度。在共聚物浓度<= 10%(w / v)下获得不可逆聚集,同时在升高温度时以20至30%(w / v)的两种共聚物形成凝胶。 MP-水凝胶制剂分别在20和30%(w / v)的G-1和G-2中优化,分别具有33和37℃的凝胶化温度。 SEM图像揭示了水凝胶的多孔微观结构及其对MP表面的吸附。综合配方显示假塑性行为,而生物粘度研究证实了它们在切除的软骨上的生物粘附性。与MPS相比,体外释放研究证实了MPS-Hydol凝胶的药物维持。体内研究证明,单独的Kenacort和MPS治疗诱导性关节炎的水凝胶的优越性,表明该综合平台在IA药物递送中的适用性。

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