Biomedical Engineering Faculty, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran.
J Biomed Mater Res A. 2018 Mar;106(3):718-724. doi: 10.1002/jbm.a.36282. Epub 2017 Nov 16.
Hydrogel/fiber composites have emerged as compelling scaffolds for regeneration purposes. Any biorelated modification or feature may endow more regenerative functionality to these composites. In the present study, a hydrogel/fiber scaffold possessing electrical conductivity in both phases, hydrogel and fiber, has been prepared and evaluated. Fiber component possessed electrical conductivity due to the presence of polyaniline (PANi) and hydrogel fraction thanks to the presence of graphene nanoparticles. PANi based fibers were processed through electrospinning and transformed into a three-dimensional structure through ultrasonication. The hydrogel precursor solution composed of oxidized polysaccharides, gelatin and graphene with predesigned ratio was added to fibers and left to gel. The results of assessments on pristine hydrogel and hydrogel/fiber denoted that inclusion of conducting fibers into hydrogel increased elastic modulus, roughness and electrical conductivity, whereas decreased hydrophilicity. Moreover, the results showed that hydrogel/fiber composite better supported human osteoblast-like cell adhesion, proliferation, and morphology comparing hydrogel alone. In a nutshell, the presence of gel/fiber architecture along with electrical conductivity may lead the scaffold to be very promising for bone regeneration. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 718-724, 2018.
水凝胶/纤维复合材料已成为用于再生目的的极具吸引力的支架。任何与生物相关的修饰或特征都可能为这些复合材料赋予更多的再生功能。在本研究中,制备并评估了一种在水凝胶和纤维两相中都具有导电性的水凝胶/纤维支架。纤维组分由于存在聚苯胺(PANi)而具有导电性,而水凝胶部分由于存在石墨烯纳米粒子而具有导电性。基于 PANi 的纤维通过静电纺丝进行处理,并通过超声处理转化为三维结构。水凝胶前体溶液由氧化多糖、明胶和石墨烯按预定比例组成,加入纤维中并使其凝胶。对原始水凝胶和水凝胶/纤维的评估结果表明,将导电纤维纳入水凝胶会增加弹性模量、粗糙度和导电性,而降低亲水性。此外,结果表明,与单独的水凝胶相比,水凝胶/纤维复合材料更有利于人成骨样细胞的黏附、增殖和形态。简而言之,凝胶/纤维结构的存在以及导电性可能使支架非常有希望用于骨再生。©2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 718-724, 2018.