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首页> 外文期刊>International Journal of Pharmaceutics >Experimental and mesoscale computational dynamics studies of the relationship between solubility and release of quercetin from PEG solid dispersions
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Experimental and mesoscale computational dynamics studies of the relationship between solubility and release of quercetin from PEG solid dispersions

机译:溶解度与槲皮素从PEG固体分散体释放的关系的实验和中尺度计算动力学研究

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摘要

The flavonol quercetin is potentially clinically relevant for its antimicrobial, beneficial cardiovascular effects, cancer treatment amongst others. However, its successful therapeutic application is severely curtailed by its poor water solubility and poor absorption following oral administration. In this study, solid dispersions of quercetin in poly(ethylene glycol) (PEG) at various compositions demonstrated an increase in the solubility, however with time, dissolution profiles show a decrease in dissolved flavonol concentration. The mechanism by which this decrease in solubility occurs was studied experimentally as well as by computational mesocscale particle dynamics simulations. The results suggest that phase separation of the polymer and flavonol during release from the solid dispersion is responsible for the time-dependent decrease in dissolved quercetin. It is suggested that the increase in release of quercetin in a PEG solid dispersion would only be beneficial if it were administered at the site of absorption, e.g. rectal administration, to ensure absorption prior to phase separation. The solid dispersions presented here would greatly improve the pharmaceutical availability of the flavonol at the site of absorption. Computational mesoscopic modeling was successfully applied to study the solid dispersions and corroborate experimental findings.
机译:黄酮醇槲皮素与其抗菌作用,有益的心血管作用,癌症治疗等在临床上潜在相关。然而,其不良的水溶性和口服给药后的不良吸收严重限制了其成功的治疗应用。在这项研究中,槲皮素在聚(乙二醇)(PEG)中的各种组成的固体分散体显示溶解度增加,但是随着时间的流逝,溶出度曲线显示溶解的黄酮醇浓度降低。实验研究了溶解度下降的机理,并通过计算中尺度粒子动力学模拟进行了研究。结果表明,从固体分散体释放期间聚合物和黄酮醇的相分离是造成溶解的槲皮素随时间变化的原因。有人提出,只有在吸收位点,例如在吸收部位施用,槲皮素在PEG固体分散体中的释放增加才是有益的。直肠给药,以确保在相分离前吸收。本文介绍的固体分散体将大大提高黄酮醇在吸收部位的药物利用率。计算介观模型已成功地用于研究固体分散体并证实了实验结果。

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