Saber-Samandari Samaneh, Saber-Samandari Saeed
Department of Chemistry, Eastern Mediterranean University, Gazimagusa, TRNC via Mersin 10, Turkey.
New Technologies Research Center, Amirkabir University of Technology, Tehran, Iran.
Mater Sci Eng C Mater Biol Appl. 2017 Jun 1;75:721-732. doi: 10.1016/j.msec.2017.02.112. Epub 2017 Feb 22.
Significant efforts have been made to develop a suitable biocompatible scaffold for bone tissue engineering. In this work, a chitosan-graft-poly(acrylic acid-co-acrylamide)/hydroxyapatite nanocomposite scaffold was synthesized through a novel multi-step route. The prepared scaffolds were characterized for crystallinity, morphology, elemental analysis, chemical bonds, and pores size in their structure. The mechanical properties (i.e. compressive strength and elastic modulus) of the scaffolds were examined. Further, the biocompatibility of scaffolds was determined by MTT assays on HUGU cells. The result of cell culture experiments demonstrated that the prepared scaffolds have good cytocompatibility without any cytotoxicity, and with the incorporation of hydroxyapatite in their structure improves cell viability and proliferation. Finally, celecoxib as a model drug was efficiently loaded into the prepared scaffolds because of the large specific surface area. The in vitro release of the drug displayed a biphasic pattern with a low initial burst and a sustained release of up to 14days. Furthermore, different release kinetic models were employed for the description of the release process. The results suggested that the prepared cytocompatible and non-toxic nanocomposite scaffolds might be efficient implants and drug carriers in bone-tissue engineering.
为开发适用于骨组织工程的生物相容性支架,人们付出了巨大努力。在这项工作中,通过一种新颖的多步路线合成了壳聚糖接枝聚(丙烯酸 - 共 - 丙烯酰胺)/羟基磷灰石纳米复合支架。对制备的支架进行了结构上的结晶度、形态、元素分析、化学键和孔径表征。检测了支架的力学性能(即抗压强度和弹性模量)。此外,通过对HUGU细胞进行MTT测定来确定支架的生物相容性。细胞培养实验结果表明,制备的支架具有良好的细胞相容性,无任何细胞毒性,并且在其结构中加入羟基磷灰石可提高细胞活力和增殖。最后,由于比表面积大,塞来昔布作为模型药物被有效地负载到制备的支架中。药物的体外释放呈现双相模式,初始突释较低,可持续释放长达14天。此外,采用不同的释放动力学模型来描述释放过程。结果表明,制备的具有细胞相容性且无毒的纳米复合支架可能是骨组织工程中有效的植入物和药物载体。