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A Novel Method for Preparation of Carrageenan/Fish Scale Collagen/Allopurinol Biocomposite Film

机译:一种新的角叉菜蛋白/鱼鳞胶原/ Allopurinol生物复合膜的制备方法

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Biopolymers such as carrageenan or collagen can be used as carriers for loading a drug to enhance a drug’s bioavailability. In this work, allopurinol was loaded on a carrageenan/collagen blend and the carrageenan/collagen/allopurinol (CCA) biocomposite films were prepared using the ionic gelation method combined with the 3D printing method using carrageenan/collagen/allopurinol gel as a 3D printing ink material. The advantages of the 3D printing method are the ease in shaping the design of films and the ease in controlling the thickness of films. The results of infrared (IR) spectroscopy and field emission scanning electron microscopy (FESEM) analyses showed that the CCA biocomposite films have a regular structure, and the functional groups of components in the biocomposites can interact with each other. After 30 minutes of immersion in distilled water and pH buffer solution, the biocomposite films swelled and disintegrated. The carrageenan/collagen blend can control the release of allopurinol in simulated body fluids. In addition, the drug release kinetic models reflecting the release process of allopurinol from CCA biocomposite films in simulated body fluids have also been calculated.
机译:卡仑蛋白或胶原蛋白等生物聚合物可用作负载药物以增强药物的生物利用度的载体。在这项工作中,使用Carrageenan /胶原/ Allopurinol凝胶的3D印刷方法将Allopurinol负载在角叉菜胶/胶原混合物上,并且使用Carrageenan / ollopurinol凝胶作为3D印刷油墨,使用离子凝胶化方法制备角叉菜胶/胶原/ Allopurinol(CCA)生物复合膜(CCA)生物复合膜材料。 3D打印方法的优点是易于整形薄膜的设计和控制薄膜厚度的易于控制。红外(IR)光谱和场发射扫描电子显微镜(FESEM)分析的结果表明,CCA生物复合材料膜具有规则的结构和部件的在生物复合官能团可以与彼此交互。在蒸馏水和pH缓冲溶液中30分钟后,生物复合膜膨胀并崩解。角叉菜胶/胶原混合物可以控制模拟体液中Allopurinol的释放。此外,还计算了反映来自模拟体液中CCA生物复合膜的Alpopurinol释放过程的药物释放动力学模型。

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