Key Laboratory of Modern Preparation of TCM, Ministry of Education, Jiangxi University of Chinese Medicine, Nanchang 330004, People's Republic of China; Jiangxi Medical Device Testing Center, Nanchang 330029, People's Republic of China.
Key Laboratory of Modern Preparation of TCM, Ministry of Education, Jiangxi University of Chinese Medicine, Nanchang 330004, People's Republic of China.
Int J Biol Macromol. 2023 Aug 1;245:125493. doi: 10.1016/j.ijbiomac.2023.125493. Epub 2023 Jun 20.
Curcumin, a diketone compound extracted from turmeric's rhizome, is an effective anti-inflammatory drug with multiple pharmacological activities. However, its low oral bioavailability due to its low water solubility and permeability severely limits its clinical applications. Therefore, to enhance the oral bioavailability of curcumin, further enhance its anti-inflammatory effects, and improve its potential in the treatment of airway inflammation, a curcumin nanocrystalline self-stabilizing Pickering emulsion (Cur-NSSPE) was prepared through high-pressure homogenization. Next, Cur-NSSPE was dried using a freeze-drying method to produce Cur-NSSPE-FDP. The prepared Cur-NSSPE and Cur-NSSPE-FDP were physically characterized. The release behavior and transmembrane transport capability of Cur-NSSPE-FDP in vitro were evaluated. Pharmacokinetic study was performed to evaluate its oral bioavailability. The anti-inflammatory effects of Cur-NSSPE-FDP in vivo and in vitro were investigated using RAW 264.7 macrophage inflammation model induced by LPS and IFN-γ and asthma model in BALB/c mice induced by OVA. The average particle size of Cur-NSSPE was (163.66 ± 6.78) nm, and the average drug content was (2.78 ± 0.01) mg/mL. The transmission electron microscopy results showed that the droplets were spherical in shape with a relatively uniform size, and the curcumin nanocrystals formed a spherical core-shell structure wrapped at the interface of the droplets. The scanning electron microscopy showed that Cur-NSSPE-FDP was a neatly arranged, having loose and porous network structure. Furthermore, it can significantly improve the cumulative release of curcumin in vitro and improve oral bioavailability in rats, increase the uptake of RAW264.7 and Caco-2 cells, promote the transport of curcumin across Caco-2 cells, significantly inhibit the expression of inflammatory factors NO, IL-6, TNF-a, MDA, IgE and ICAM-1, and improve the expression of IL-10 and SOD. These results indicated that the curcumin nanocrystalline self-stabilizing Pickering emulsion-freeze dried powder improved the oral bioavailability of curcumin and enhanced its therapeutic effect in airway inflammation.
姜黄素是从姜黄根茎中提取的一种二酮化合物,是一种具有多种药理活性的有效抗炎药物。然而,由于其低水溶性和低渗透性,其口服生物利用度较低,严重限制了其临床应用。因此,为了提高姜黄素的口服生物利用度,进一步增强其抗炎作用,并提高其在气道炎症治疗中的潜力,通过高压匀质法制备了姜黄素纳米结晶自稳定 Pickering 乳液(Cur-NSSPE)。接下来,采用冷冻干燥法对 Cur-NSSPE 进行干燥,得到 Cur-NSSPE-FDP。对制备的 Cur-NSSPE 和 Cur-NSSPE-FDP 进行物理表征。评价了 Cur-NSSPE-FDP 在体外的释放行为和跨膜转运能力。通过药代动力学研究评价其口服生物利用度。采用 LPS 和 IFN-γ诱导 RAW264.7 巨噬细胞炎症模型和 OVA 诱导 BALB/c 小鼠哮喘模型,研究了 Cur-NSSPE-FDP 的体内和体外抗炎作用。Cur-NSSPE 的平均粒径为(163.66±6.78)nm,平均药物含量为(2.78±0.01)mg/mL。透射电子显微镜结果表明,液滴呈球形,形状较均匀,姜黄素纳米晶体形成了包裹在液滴界面处的球形核壳结构。扫描电子显微镜显示,Cur-NSSPE-FDP 排列整齐,具有疏松多孔的网络结构。此外,它可以显著提高姜黄素在体外的累积释放,提高大鼠的口服生物利用度,增加 RAW264.7 和 Caco-2 细胞的摄取,促进姜黄素在 Caco-2 细胞中的转运,显著抑制炎症因子 NO、IL-6、TNF-a、MDA、IgE 和 ICAM-1 的表达,提高 IL-10 和 SOD 的表达。这些结果表明,姜黄素纳米结晶自稳定 Pickering 乳液-冷冻干燥粉末提高了姜黄素的口服生物利用度,并增强了其在气道炎症中的治疗效果。