Ngwuluka Ndidi Chinyelu, Choonara Yahya Essop, Kumar Pradeep, Modi Girish, Toit Lisa Claire du, Pillay Viness
Faculty of Health Sciences, Department of Pharmacy and Pharmacology, University of the Witwatersrand, 7 York Road, Parktown, Johannesburg 2193, South Africa.
Faculty of Health Sciences, Division of Neurosciences, Department of Neurology, University of the Witwatersrand, 7 York Road, Parktown, Johannesburg 2193, South Africa.
Materials (Basel). 2013 Sep 26;6(10):4284-4308. doi: 10.3390/ma6104284.
The rheological behavioral changes that occurred during the synthesis of an interpolyelectrolyte complex (IPEC) of methacrylate copolymer and sodium carboxymethylcellulose were assessed. These changes were compared with the rheological behavior of the individual polymers employing basic viscosity, yield stress, stress sweep, frequency sweep, temperature ramp as well as creep and recovery testing. The rheological studies demonstrated that the end-product of the complexation of low viscous methacrylate copolymer and entangled solution of sodium carboxymethylcellulose generated a polymer, which exhibited a solid-like behavior with a three-dimensional network. Additionally, the rheological profile of the sodium carboxymethylcellulose and methacrylate copolymer with respect to the effect of various concentrations of acetic acid on the synthesis of the IPEC was elucidated using molecular mechanics energy relationships (MMER) by exploring the spatial disposition of carboxymethylcellulose and methacrylate copolymer with respect to each other and acetic acid. The computational results corroborated well with the experimental drug release data. Results have shown that the IPEC may be suitable polymeric material for achieving controlled zero-order drug delivery.
评估了甲基丙烯酸酯共聚物与羧甲基纤维素钠合成聚电解质复合物(IPEC)过程中发生的流变行为变化。采用基本粘度、屈服应力、应力扫描、频率扫描、温度梯度以及蠕变和恢复测试,将这些变化与各单一聚合物的流变行为进行了比较。流变学研究表明,低粘度甲基丙烯酸酯共聚物与羧甲基纤维素钠缠结溶液络合的最终产物生成了一种聚合物,该聚合物表现出具有三维网络的类固体行为。此外,通过探索羧甲基纤维素和甲基丙烯酸酯共聚物相对于彼此以及乙酸的空间排布,利用分子力学能量关系(MMER)阐明了羧甲基纤维素和甲基丙烯酸酯共聚物在不同浓度乙酸对IPEC合成影响方面的流变特性。计算结果与实验药物释放数据吻合良好。结果表明,IPEC可能是实现可控零级药物递送的合适聚合物材料。