Atoufi Zhale, Zarrintaj Payam, Motlagh Ghodratollah Hashemi, Amiri Anahita, Bagher Zohreh, Kamrava Seyed Kamran
a Advanced Polymer Materials & Processing Lab , School of Chemical Engineering, College of Engineering, University of Tehran , Tehran , Iran.
b ENT-Head and Neck Research Center and Department , Rasoul Akram Hospital, Iran University of Medical Sciences & Health Services , Tehran , Iran.
J Biomater Sci Polym Ed. 2017 Oct;28(15):1617-1638. doi: 10.1080/09205063.2017.1340044. Epub 2017 Jun 14.
In this study, synthesis of a novel biocompatible stimuli-responsive conducting hydrogel based on agarose/alginate-aniline tetramer with the capability of a tailored electrically controlled drug-release for neuroregeneration is investigated. First, aniline tetramer is synthesized and grafted onto sodium alginate. Then, this material is added to agarose as an electrical conductivity modifier to obtain Agarose/alginate-aniline tetramer hydrogel. The synthesized materials are characterized by H NMR and FTIR. The hydrogels are prepared with varying content of aniline tetramer and their swelling-deswelling and shape memory behavior is evaluated. The electroactivity and ionic conductivity of hydrogels against temperature is measured. The sample with 10% aniline tetramer (AT10) reveals the highest ionic conductivity. In MTT and SEM assays, AT10 shows the best cell viability and cell proliferation due to its highest ionic conductivity highlighting the fact that electrical stimuli cell signaling. Hydrogels also represent great potentials for passive and electro-stimulated dexamethasone release. These results demonstrate that the newly developed conducting hydrogels are promising materials for neuroregenerative medicine.
在本研究中,研究了一种基于琼脂糖/藻酸盐 - 苯胺四聚体的新型生物相容性刺激响应性导电水凝胶的合成,该水凝胶具有用于神经再生的定制电控药物释放能力。首先,合成苯胺四聚体并将其接枝到海藻酸钠上。然后,将该材料作为电导率调节剂添加到琼脂糖中,以获得琼脂糖/藻酸盐 - 苯胺四聚体水凝胶。通过核磁共振氢谱(H NMR)和傅里叶变换红外光谱(FTIR)对合成材料进行表征。制备具有不同苯胺四聚体含量的水凝胶,并评估其溶胀 - 去溶胀和形状记忆行为。测量水凝胶在不同温度下的电活性和离子电导率。含10%苯胺四聚体的样品(AT10)显示出最高的离子电导率。在MTT和扫描电子显微镜(SEM)分析中,AT10由于其最高的离子电导率而表现出最佳的细胞活力和细胞增殖,突出了电刺激细胞信号传导这一事实。水凝胶在被动和电刺激地塞米松释放方面也具有巨大潜力。这些结果表明,新开发的导电水凝胶是神经再生医学中有前景的材料。