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Influence of polymer structure upon active-ingredient loading: a Monte Carlo simulation study for design of drug-delivery devices

机译:聚合物结构对活性成分负载的影响:药物输送装置设计的蒙特卡洛模拟研究

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Drug-loaded polymers and polymeric microparticles provide an attractive form for controlled drug-delivery systems. Design of new systems requires knowledge of polymer-drug interactions. The effect of polymer architecture and chemistry upon active-ingredient loading is investigated by Monte Carlo simulation. The ensemble-growth method is used to sample conformations of a model polymer comprising polar and nonpolar segments. The polymer is a block copolymer, linear or branched. In our calculations, the polar portion of the polymer contains 21 segments. The polymers are dissolved in either of two types of solvent models, In the first, nonpolar solvent, the polar segments tend to collapse, but the bulky nonpolar groups, easily soluble in the medium, create some cavities in the polymer. These cavities are suitable hosts for the slightly polar active ingredient. In the second solvent, polar, the nonpolar segments contribute to attract the active ingredient within the polymer segments, therefore lowering the burst-release rate. The relative uptake of the active ingredient, proportional to the probability of finding an active ingredient within the radius of gyration of the polymer, is computed as a function of the number of nonpolar segments in the polymer. Simulation results are reported for active ingredients of two different sizes. For given size of the polar portion, short nonpolar tails increase the active-ingredient relative uptake in both solvents considered. Linear block copolymers look promising for obtaining higher entrapment efficiency for the active ingredient and for controlled release. (C) 2001 Elsevier Science B.V. All rights reserved. [References: 31]
机译:载有药物的聚合物和聚合物微粒为受控的药物输送系统提供了一种有吸引力的形式。新系统的设计需要聚合物-药物相互作用的知识。通过蒙特卡洛模拟研究了聚合物结构和化学对活性成分负载的影响。集合增长法用于对包含极性和非极性链段的模型聚合物的构象进行采样。该聚合物是线性或支化的嵌段共聚物。在我们的计算中,聚合物的极性部分包含21个链段。聚合物溶解在两种类型的溶剂模型中的任何一种中:在第一种非极性溶剂中,极性链段往往会塌陷,但易于溶于介质的庞大的非极性基团会在聚合物中形成一些空腔。这些空腔是微极性活性成分的合适宿主。在第二溶剂(极性)中,非极性链段有助于在聚合物链段内吸引活性成分,因此降低了突释速率。活性成分的相对摄取与在聚合物回转半径内发现活性成分的概率成正比,并作为聚合物中非极性链段数量的函数进行计算。报告了两种不同大小的活性成分的模拟结果。对于给定的极性部分大小,较短的非极性尾巴会增加所考虑的两种溶剂中活性成分的相对吸收。线性嵌段共聚物看起来有望为活性成分获得更高的包封效率和控制释放。 (C)2001 Elsevier Science B.V.保留所有权利。 [参考:31]

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