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首页> 外文期刊>Drug development and industrial pharmacy >Novel modulation of drug delivery using binary zinc-alginate-pectinate polyspheres for zero-order kinetics over several days: experimental design strategy to elucidate the crosslinking mechanism.
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Novel modulation of drug delivery using binary zinc-alginate-pectinate polyspheres for zero-order kinetics over several days: experimental design strategy to elucidate the crosslinking mechanism.

机译:使用二进制的海藻酸锌-果胶酸多球在几天内进行零级动力学的新型药物传递调节:阐明交联机理的实验设计策略。

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摘要

A Box-Behnken design was applied to mathematically establish whether different degrees of crosslinking were induced by Zn2+ and Ca2+ ions in polyspheres composed of alginate and/or pectin, and the model drug ibuprofen. Based on their different crystal structures and coordination numbers, a theoretical model was proposed demonstrating that Zn2+ ions preferentially crosslink alginate and pectin. In addition, the lower coordination number of Zn2+ (4-6) would significantly retard hydration of both polymers, as opposed to Ca2+ (7-9). The responses studied for 28 statistically derived polyspheres included drug encapsulation efficiency, physicomechanical behavior, and in vitro drug release potential. Single-tailed Student's t-tests on data generated for the encapsulation efficiencies, primary facture values, and rupture energies indicated that Zn2+ was statistically superior (p<0.05) in crosslinking alginate and pectin. Further textural analysis revealed a good correlation between the Brinell hardness number and fracture load, while an inverse relationship was found for matrix tensile strength. Viscosity studies demonstrated different in situ crosslinking thresholds for Zn2+. The Durbin-Watson statistic and correlation coefficient revealed that the quadratic regression function was highly accurate in predicting the responses. Using a generalized reduced gradient algorithm on dissolution values obtained after 2 hours (t2h) provided optimized solutions for achieving zero-order release extending from 2 hours to 7 days. Mathematical simulations projected drug release from 25 to 50 days.
机译:应用Box-Behnken设计来数学​​确定由藻酸盐和/或果胶组成的多球体中的Zn2 +和Ca2 +离子以及模型药物布洛芬是否会引起不同程度的交联。根据它们的不同晶体结构和配位数,提出了一个理论模型,证明Zn2 +离子优先交联藻酸盐和果胶。另外,与Ca2 +(7-9)相反,较低的Zn2 +(4-6)配位数会显着延迟两种聚合物的水合作用。研究了对28个统计学上衍生的多球体的反应,包括药物封装效率,物理力学行为和体外药物释放潜力。单尾学生t检验对生成的包封效率,主要断裂值和断裂能的数据进行了t检验,表明Zn2 +在藻酸盐和果胶交联方面具有统计学上的优势(p <0.05)。进一步的组织分析表明,布氏硬度值和断裂载荷之间具有良好的相关性,而基体的拉伸强度却呈反比关系。粘度研究表明,Zn2 +的原位交联阈值不同。 Durbin-Watson统计和相关系数表明,二次回归函数在预测响应中非常准确。对2小时(t2h)后获得的溶出度值使用广义归一化梯度算法可提供优化的解决方案,以实现从2小时到7天的零级释放。数学模拟预计药物释放为25至50天。

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