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首页> 外文期刊>Journal of Controlled Release: Official Journal of the Controlled Release Society >PH-sensitive drug loading/releasing in amphiphilic copolymer PAE-PEG: Integrating molecular dynamics and dissipative particle dynamics simulations
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PH-sensitive drug loading/releasing in amphiphilic copolymer PAE-PEG: Integrating molecular dynamics and dissipative particle dynamics simulations

机译:两亲共聚物PAE-PEG中的PH敏感药物加载/释放:整合分子动力学和耗散粒子动力学模拟

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摘要

Molecular dynamics (MD) and dissipative particle dynamics (DPD) simulations are integrated to investigate the loading/releasing of anti-cancer drug camptothecin (CPT) in pH-sensitive amphiphilic copolymer, composed of hydrophobic poly(β-amino ester) (PAE) and hydrophilic methyl ether-capped poly(ethylene glycol) (PEG). MD simulation is used to estimate the Flory-Huggins interaction parameters and miscibility of binary components. On this basis, DPD simulation is applied to examine the micellization of PAE-PEG, CPT loading in PAE-PEG, and CPT releasing in PAEH-PEG. With increasing concentration, PAE-PEG forms spherical then disk-like micelles and finally vesicles, as a competitive counterbalance of free energies for the formation of shell, interface and core. CPT loading in PAE-PEG micelles/vesicles is governed by adsorption-growth- micellization mechanism, and CPT is loaded into both hydrophobic core and interface of hydrophobic core/hydrophilic shell. The predicted loading efficiency is close to experimental value. Similar to literature reports, the loading of high concentration of CPT is observed to cause morphology transition from micelles to vesicles. Upon protonation, CPT is released from micelles/vesicles by swelling-demicellization-releasing mechanism. This multi-scale simulation study provides microscopic insight into the mechanisms of drug loading and releasing, and might be useful for the design of new materials for high-efficacy drug delivery.
机译:结合分子动力学(MD)和耗散颗粒动力学(DPD)模拟来研究抗癌药物喜树碱(CPT)在由疏水性聚(β-氨基酯)(PAE)组成的pH敏感两亲共聚物中的负载/释放和亲水性甲醚封端的聚乙二醇(PEG)。 MD模拟用于估算Flory-Huggins相互作用参数和二元组分的混溶性。在此基础上,将DPD模拟应用于检查PAE-PEG的胶束化,PAE-PEG中的CPT负载以及PAEH-PEG中的CPT释放。随着浓度的增加,PAE-PEG形成球形的然后是盘状的胶束,最后形成囊泡,作为形成外壳,界面和核心的自由能的竞争性平衡。 PAE-PEG胶束/囊泡中的CPT负载受吸附-增长-胶束化机制的控制,CPT既负载在疏水核中,又负载在疏水核/亲水壳的界面中。预测的加载效率接近实验值。与文献报道相似,观察到高浓度的CPT加载会导致从胶束到囊泡的形态转变。质子化后,CPT通过溶胀-脱细胞-释放机制从胶束/囊泡中释放出来。这项多尺度模拟研究提供了有关药物装载和释放机理的微观见解,对于设计用于高效药物输送的新材料可能有用。

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