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全原子分子动力学 (AA-MD) 研究与 PAMAM 树枝状大分子-速尿传递系统的药代动力学性能。

All-atomistic molecular dynamics (AA-MD) studies and pharmacokinetic performance of PAMAM-dendrimer-furosemide delivery systems.

机构信息

11 Hoffman Street, North-West University, Research Focus Area for Chemical Resource Beneficiation, Laboratory for Analytical Services, Potchefstroom, 2531, South Africa.

School of Pharmacy, 777 Highland Avenue, University of Wisconsin-Madison, Madison 53705, WI, USA.

出版信息

Int J Pharm. 2018 Aug 25;547(1-2):545-555. doi: 10.1016/j.ijpharm.2018.06.033. Epub 2018 Jun 13.

DOI:10.1016/j.ijpharm.2018.06.033
PMID:29908331
Abstract

Improvement of problematic dissolution and solubility properties of a model drug, furosemide, was investigated for poly(amidoamine) (PAMAM) dendrimer complexes of the drug. Full and half generation dendrimers with amino and ester terminals respectively, were studied. In vitro release performance of these complexes was investigated at drug loads ranging 5-60% using simulated gastric fluids. Full generation dendrimers accommodated higher drug loads, outperformed half-generation complexes, and free drug. Pharmacokinetic studies in rats indicated that the dendrimer complexes markedly improved in the bioavailability of the drug compared to the unformulated drug. The G3.0-PAMAM dendrimer complex showed a two-fold increase in C and a 1.75-fold increase in AUC over the free drug. Additionally, T was shortened from approximately 25 to 20 min. One of the first all-atomistic molecular dynamics (AA-MD) simulation studies was performed to evaluate low-generation dendrimer-drug complexes as well as its pharmacokinetic performance. AA-MD provided insight into the intermolecular interactions that take place between the dendrimer and drug. It is suggested that the dendrimer not only encapsulates the drug, but can also orientate the drug in stabilized dispersion to prevent drug clustering which could impact release and bioavailability negatively. AA-MD can be a useful tool to develop dendrimer-based drug delivery systems.

摘要

研究了聚(酰胺-胺)(PAMAM)树状大分子与模型药物呋塞米的复合物对药物溶解性和溶出度问题的改善作用。分别研究了具有氨基和酯基末端的全代和半代树状大分子。在药物负载范围为 5-60%的情况下,使用模拟胃液研究了这些复合物的体外释放性能。与未成型药物相比,药载量更高的全代树状大分子复合物表现出更好的药物释放性能,优于半代树状大分子复合物和游离药物。大鼠药代动力学研究表明,与未成型药物相比,树状大分子复合物显著提高了药物的生物利用度。与游离药物相比,G3.0-PAMAM 树状大分子复合物的 C 值增加了两倍,AUC 增加了 1.75 倍。此外,T 从大约 25 分钟缩短到 20 分钟左右。进行了首次全原子分子动力学(AA-MD)模拟研究之一,以评估低代树状大分子-药物复合物及其药代动力学性能。AA-MD 提供了对树状大分子与药物之间发生的分子间相互作用的深入了解。研究表明,树状大分子不仅可以包裹药物,还可以将药物稳定分散,防止药物聚集,从而影响药物的释放和生物利用度。AA-MD 可以成为开发基于树状大分子的药物传递系统的有用工具。

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