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首页> 外文期刊>International Journal of Nanomedicine >Positive impact of IGF-1-coupled nanoparticles on the differentiation potential of human chondrocytes cultured on collagen scaffolds
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Positive impact of IGF-1-coupled nanoparticles on the differentiation potential of human chondrocytes cultured on collagen scaffolds

机译:IGF-1偶联纳米颗粒对胶原支架上软骨细胞分化潜能的积极影响

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Purpose: In the present study, silica nanoparticles (sNP) coupled with insulin-like growth factor 1 (IGF-1) were loaded on a collagen-based scaffold intended for cartilage repair, and the influence on the viability, proliferation, and differentiation potential of human primary articular chondrocytes was examined. Methods: Human chondrocytes were isolated from the hyaline cartilage of patients (n=4, female, mean age: 73±5.1 years) undergoing primary total knee joint replacement. Cells were dedifferentiated and then cultivated on a bioresorbable collagen matrix supplemented with fluorescent sNP coupled with IGF-1 (sNP–IGF-1). After 3, 7, and 14 days of cultivation, cell viability and integrity into the collagen scaffold as well as metabolic cell activity and synthesis rate of matrix proteins (collagen type I and II) were analyzed. Results: The number of vital cells increased over 14 days of cultivation, and the cells were able to infiltrate the collagen matrix (up to 120 μm by day 7). Chondrocytes cultured on the collagen scaffold supplemented with sNP–IGF-1 showed an increase in metabolic activity (5.98-fold), and reduced collagen type I (1.58-fold), but significantly increased collagen type II expression levels (1.53-fold; P=0.02) after 7 days of cultivation compared to 3 days. In contrast, chondrocytes grown in a monolayer on plastic supplemented with sNP-IGF-1 had significantly lower metabolic activity (1.32-fold; P=0.007), a consistent amount of collagen type I, and significantly reduced collagen type II protein expression (1.86-fold; P=0.001) after 7 days compared to 3 days. Conclusion: Collagen-based scaffolds enriched with growth factors, such as IGF-1 coupled to nanoparticles, represent an improved therapeutic intervention for the targeted and controlled treatment of articular cartilage lesions.
机译:目的:在本研究中,将二氧化硅纳米颗粒(sNP)与胰岛素样生长因子1(IGF-1)偶联到用于软骨修复的胶原基支架上,并对其活力,增殖和分化潜能产生影响检查了人原发性软骨细胞的数量。方法:从进行全膝关节置换的患者(n = 4,女性,平均年龄:73±5.1岁)的透明软骨中分离出人软骨细胞。将细胞去分化,然后在可生物吸收的胶原蛋白基质上培养,该基质上添加了荧光sNP和IGF-1(sNP–IGF-1)。培养3、7和14天后,分析了胶原蛋白支架中的细胞活力和完整性,以及基质蛋白(I型和II型胶原蛋白)的代谢细胞活性和合成速率。结果:在培养的14天中,活细胞的数量增加,并且细胞能够渗入胶原蛋白基质(到第7天时可达120μm)。在补充有sNP–IGF-1的胶原蛋白支架上培养的软骨细胞显示出代谢活性的增加(5.98倍)和I型胶原蛋白的减少(1.58倍),但II型胶原蛋白的表达水平显着提高(1.53倍; P = 7)在培养7天后与3天相比。相比之下,在补充有sNP-IGF-1的塑料上单层生长的软骨细胞具有明显较低的代谢活性(1.32倍; P = 0.007),恒定量的I型胶原和显着降低的II型胶原蛋白表达(1.86) -3倍; P = 0.001)。结论:富含生长因子的胶原蛋白支架,例如与纳米颗粒偶联的IGF-1,代表了针对关节软骨病变的靶向治疗的改良治疗干预。

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