Feroz Sandleen, Dias George
Department of Anatomy, School of Biomedical Sciences, University of Otago, Dunedin, 9054, New Zealand.
Heliyon. 2021 Oct 29;7(11):e08294. doi: 10.1016/j.heliyon.2021.e08294. eCollection 2021 Nov.
Wool derived keratin has garnered significant advancements in the field of biomaterials for hard tissue regeneration. The main limitation of keratin-based biomaterials for bone tissue engineering is their fragile nature. This paper proposes the development of a novel hydroxypropyl methylcellulose (HPMC) crosslinked keratin scaffold, containing hydroxyapatite as a major inorganic component by freeze drying technique for alveolar bone regeneration. The prepared keratin/hydroxyapatite/HPMC (K/HA/HPMC) scaffold was characterized to study its chemical, physical, and mechanical properties by Scanning electron microscope (SEM), Fourier transform infrared spectroscopy (FTIR), Energy dispersive X-ray spectroscopy (EDX), X-Ray diffractometric (XRD) analysis. The SEM images of the scaffolds showed highly porous interconnected architecture with average pore size of 108.36 ± 22.56 while microcomputed tomographic analysis measured total porosity as 79.65 %±. Energy dispersive X-ray spectroscopic (EDX) analysis confirmed that inorganic component of scaffold was mainly composed of calcium and phosphorous ions having Ca/P molar ration of 1.6. The maximum compressive strength was found to be in the range of 0.841 ± 0.37 MPa. Furthermore, the K/HA/HPMC scaffold was structurally stable and weight loss of about 26% was observed when soaked in phosphate buffered solution (PBS) for 28 days. In vitro biocompatibility testing showed that K/HA/HPMC scaffold was cytocompatible and supported the attachment, proliferation of osteoblast (Saos-2) cells. Thus, the development of a non-toxic chemical cross-linking system with HPMC was investigated to fabricate K/HA/HPMC scaffold and our results showed great potential of these scaffolds to regenerate alveolar bone due to their structural similarity and excellent in vitro biocompatibility.
羊毛衍生的角蛋白在硬组织再生生物材料领域取得了重大进展。基于角蛋白的生物材料用于骨组织工程的主要局限性在于其易碎的性质。本文提出通过冷冻干燥技术开发一种新型的羟丙基甲基纤维素(HPMC)交联角蛋白支架,其中含有羟基磷灰石作为主要无机成分用于牙槽骨再生。通过扫描电子显微镜(SEM)、傅里叶变换红外光谱(FTIR)、能量色散X射线光谱(EDX)、X射线衍射(XRD)分析对制备的角蛋白/羟基磷灰石/HPMC(K/HA/HPMC)支架进行表征,以研究其化学、物理和力学性能。支架的SEM图像显示出高度多孔的相互连接结构,平均孔径为108.36±22.56,而微计算机断层扫描分析测得总孔隙率为79.65%±。能量色散X射线光谱(EDX)分析证实,支架的无机成分主要由钙和磷离子组成,Ca/P摩尔比为1.6。发现最大抗压强度在0.841±0.37MPa范围内。此外,K/HA/HPMC支架结构稳定,浸泡在磷酸盐缓冲溶液(PBS)中28天后观察到约26%的重量损失。体外生物相容性测试表明,K/HA/HPMC支架具有细胞相容性,并支持成骨细胞(Saos-2)的附着和增殖。因此,研究了用HPMC开发无毒化学交联系统来制备K/HA/HPMC支架,我们的结果表明,这些支架由于其结构相似性和优异的体外生物相容性,在牙槽骨再生方面具有巨大潜力。