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PLGA Microspheres Loaded with β-Cyclodextrin Complexes of Epigallocatechin-3-Gallate for the Anti-Inflammatory Properties in Activated Microglial Cells

机译:载有表没食子儿茶素-3-没食子酸酯的β-环糊精复合物的PLGA微球在活化的小胶质细胞中具有抗炎特性

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摘要

Although epigallocatechin-3-gallate (EG) is well-known as a potent antioxidant and free radical scavenger for neurodegenerative diseases, it still has disadvantages that reduce its treatment effectiveness due to low bioavailability, slow absorption, and water solubility. Therefore, the aim of this study is to improve the bioavailability of EG and increase the effectiveness of anti-inflammatory properties to microglial cells by using Poly(Lactide-co-Glycolide) (PLGA) microspheres as carriers. In this study, we used UV–Vis spectroscopy to show the formation of the complex of β-cyclodextrin (β-CD) and EG (CD-EG). The loading efficiency of EG in PLGA microspheres was optimized by the addition of β-CD. The highest loading efficiency of 16.34% was found among other formulations. The results of Fourier transform infrared spectroscopy indicated the loading of CD-EG in PLGA microspheres. The scanning electron microscopic images demonstrated the spherical PLGA particles with controlled particles size ranging from 1–14 µm. Moreover, the in vitro release of EG was conducted to explore the sustained release property of the PLGA formulations. In the in vitro model of mouse microglial cells (BV-2 cells) stimulated by lipopolysaccharide, the cytotoxicity test showed that for up to 1 mg/mL of PLGA microspheres no toxicity to BV-2 cells was found. PLGA microspheres can significantly suppress the nitric oxide production from BV-2 cells, indicating EG loaded in PLGA microspheres can suppress the inflammation of activated microglial cells. Furthermore, the intracellular iNOS in BV-2 cells was also found to be down regulated. In summary, we have successfully shown that the use of β-CD can increase the loading efficiency of EG in PLGA microspheres and provide neuroprotective effect on the activated microglial cells.
机译:尽管表没食子儿茶素-3-没食子酸酯(EG)作为神经退行性疾病的有效抗氧化剂和自由基清除剂而广为人知,但由于生物利用度低,吸收缓慢和水溶性差,仍然具有降低其治疗效果的缺点。因此,本研究的目的是通过使用聚(丙交酯-共-乙交酯)(PLGA)微球作为载体,提高EG的生物利用度并提高对小胶质细胞的抗炎性能。在这项研究中,我们使用UV-Vis光谱法显示了β-环糊精(β-CD)和EG(CD-EG)的复合物的形成。通过添加β-CD可以优化EG在PLGA微球中的负载效率。在其他配方中,最高装载效率为16.34%。傅里叶变换红外光谱的结果表明PLGA微球中CD-EG的负载。扫描电子显微镜图像显示球形PLGA颗粒的粒径控制在1-14 µm之间。此外,进行了EG的体外释放以探索PLGA制剂的持续释放特性。在脂多糖刺激的小鼠小胶质细胞(BV-2细胞)的体外模型中,细胞毒性试验表明,对于高达1 mg / mL的PLGA微球,未发现对BV-2细胞有毒性。 PLGA微球可以显着抑制BV-2细胞产生的一氧化氮,表明PLGA微球中负载的EG可以抑制活化的小胶质细胞的炎症。此外,还发现BV-2细胞中的细胞内iNOS被下调。总之,我们已经成功地表明,使用β-CD可以提高PLGA微球中EG的负载效率,并为活化的小胶质细胞提供神经保护作用。

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