Nanoparticle-delivered quercetin exhibits enhanced efficacy in eliminating iron-overloaded senescent chondrocytes.

Asima Karim, Rizwan Qaisar, Savitha Suresh, Jayalakshmi Jagal, Mutasem Rawas-Qalaji
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Abstract

Aim: The therapeutic potential of senolytic drugs in osteoarthritis (OA) is poorly known. Quercetin, a senolytic agent exhibits promising potential to treat OA, having limited bioavailability. We investigated the effects of Quercetin-loaded nanoparticles (Q-NP) with enhanced bioavailability in human chondrocytes mimicking OA phenotype.Materials & methods: The C-20/A4 chondrocytes were exposed to ferric ammonium citrate to induce OA phenotype, followed by treatment with free Quercetin/Q-NP for 24 and 48-h. Q-NP were synthesized by nanoprecipitation method. Following treatment chondrocytes were assessed for drug cellular bioavailability, viability, cell cycle, apoptosis, oxidative stress and expression of key senescence markers.Results: Q-NP exhibited 120.1 ± 1.2 nm particle size, 81 ± 2.4% encapsulation efficiency, increased cellular bioavailability and selective apoptosis of senescent chondrocytes compared with free Quercetin. Q-NP treatment also induced oxidative stress and reduced the expressions of senescence markers, including TRB3, p16, p62 and p21 suggesting their ability to eliminate senescent cells. Last, Q-NP arrested the cell cycle in the sub-G0 phase, potentially creating a beneficial environment for tissue repair.Conclusion: Q-NP propose a promising delivery system for treating OA by eliminating senescent chondrocytes through apoptosis. Furthermore, their enhanced cellular bioavailability and capacity to modify cell cycle and senescent pathways warrant further investigations.

纳米颗粒递送的槲皮素在消除铁负荷过重的衰老软骨细胞方面表现出更强的功效。
目的:人们对衰老药治疗骨关节炎(OA)的潜力知之甚少。槲皮素是一种具有治疗骨关节炎潜力的抗衰老药物,但其生物利用度有限。我们研究了生物利用度提高的槲皮素负载纳米颗粒(Q-NP)在模拟 OA 表型的人类软骨细胞中的作用:将C-20/A4软骨细胞暴露于柠檬酸铁铵以诱导OA表型,然后用游离槲皮素/Q-NP处理24和48小时。Q-NP 是通过纳米沉淀法合成的。处理后,评估软骨细胞的药物细胞生物利用度、存活率、细胞周期、细胞凋亡、氧化应激和关键衰老标志物的表达:与游离槲皮素相比,Q-NP 的粒径为 120.1 ± 1.2 nm,封装效率为 81 ± 2.4%,细胞生物利用度提高,衰老软骨细胞选择性凋亡。Q-NP 还能诱导氧化应激,减少衰老标志物(包括 TRB3、p16、p62 和 p21)的表达,这表明它们具有消除衰老细胞的能力。最后,Q-NP 能将细胞周期阻滞在亚 G0 期,从而为组织修复创造有利环境:Q-NP通过细胞凋亡消除了衰老的软骨细胞,为治疗OA提供了一种前景广阔的传输系统。此外,Q-NP增强的细胞生物利用度以及改变细胞周期和衰老途径的能力值得进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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