College of Chemical Engineering, Sichuan University, Chengdu 610065, PR China.
Sci Rep. 2017 Apr 3;7:45984. doi: 10.1038/srep45984.
This work aimed to investigate the co-grinding effects of β-cyclodextrin (β-CD) and cucurbit[7]uril (CB[7]) on crystalline zaltoprofen (ZPF) in tablet formulation. Crystalline ZPF was prepared through anti-solvent recrystallization and fully analyzed through single-crystal X-ray diffraction. Co-ground dispersions and mono-ground ZPF were prepared using a ball grinding process. Results revealed that mono-ground ZPF slightly affected the solid state, solubility, and dissolution of crystalline ZPF. Co-ground dispersions exhibited completely amorphous states and elicited a significant reinforcing effect on drug solubility. UV-vis spectroscopy, XRPD, FT-IR, DSC, ssNMR, and molecular docking demonstrated the interactions in the amorphous product. Hardness tests on blank tablets with different β-CD and CB[7] contents suggested the addition of β-CD or CB[7] could enhance the compressibility of the powder mixture. Disintegration tests showed that CB[7] could efficiently shorten the disintegrating time. Dissolution tests indicated that β-CD and CB[7] could accelerate the drug dissolution rate via different mechanisms. Specifically, CB[7] could accelerate the dissolution rate by improving disintegration and β-CD showed a distinct advantage in solubility enhancement. Based on the comparative study on β-CD and CB[7] for tablet formulation combined with co-grinding, we found that CB[7] could be considered a promising drug delivery, which acted as a disintegrant.
本工作旨在研究 β-环糊精(β-CD)和瓜环(CB[7])在片剂制剂中对结晶扎托洛芬(ZPF)的共研磨效应。通过反溶剂重结晶制备结晶 ZPF,并通过单晶 X 射线衍射对其进行全面分析。采用球磨工艺制备共研磨分散体和单研磨 ZPF。结果表明,单研磨 ZPF 对结晶 ZPF 的固态、溶解度和溶解性能略有影响。共研磨分散体呈现完全非晶态,并对药物溶解度产生显著增强作用。紫外可见光谱、X 射线粉末衍射、傅里叶变换红外光谱、差示扫描量热法、固态核磁共振和分子对接表明了非晶态产物中的相互作用。不同 β-CD 和 CB[7]含量空白片剂的硬度测试表明,添加 β-CD 或 CB[7]可以提高粉末混合物的可压缩性。崩解试验表明,CB[7]可以通过提高崩解度来有效缩短崩解时间。溶出度试验表明,β-CD 和 CB[7]可以通过不同的机制加速药物溶出速度。具体而言,CB[7]可以通过改善崩解来加速药物溶出速度,而 β-CD 在提高溶解度方面具有明显优势。通过对β-CD 和 CB[7]在片剂制剂中的比较研究以及共研磨,我们发现 CB[7]可以作为一种有前途的药物传递系统,起到崩解剂的作用。