家禽骨再生胶原基混合水凝胶的研制与表征

Francisco Fábio Pereira de Souza, J. A. Pérez-Guerrero, M. J. Gomes, F. L. Cavalcante, M. D. S. S. Souza Filho, Igor Iuco Castro‐Silva
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引用次数: 3

摘要

摘要目的:家禽副产品可以作为一种创新的天然来源,为基于聚合物和矿物质的骨再生复合材料的开发做出贡献。本研究的目的是研究胶原基水凝胶与紫外线核黄素交联的物理化学和生物学特性。方法:采用扫描电镜、傅里叶变换红外光谱、差示扫描量热法、溶胀度及定性定量组织学分析对100%胶原纯水凝胶(G1)或混合水凝胶、90%胶原:10%磷灰石(G2)、90%胶原:10%纳米角蛋白(G3)、90%胶原:5%磷灰石:5%纳米角蛋白(G4)进行表征。异位植入小鼠皮下组织1周、3周和9周,评估炎症(中性粒细胞、淋巴细胞、巨噬细胞和巨细胞)和修复(新生血管和结缔组织),以确定生物材料的生物相容性和完整性,并对其生物降解性进行评分。在1个月和3个月对大鼠颅骨临界尺寸缺陷进行组织形态学测量,评估各组骨、结缔组织和生物材料的百分比。结果:所制备的水凝胶具有多孔的微观结构、吸水性和与其聚合物和/或矿物组成相适应的物理化学特性。所有材料均表现出生物相容性、生物可降解性和低骨导电性。G2组新生骨和生物材料密度高于G1、G3和G4组。结论:胶原-磷灰石组制剂具有发展成促骨膜的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development and characterization of poultry collagen-based hybrid hydrogels for bone regeneration
ABSTRACT Purpose: Poultry by-products can contribute as an innovative natural source for the development of composites based on polymers and minerals aiming at bone regeneration. The objective of this study was the physicochemical and biological characterization of collagen-based hydrogels crosslinked with ultraviolet (UV)-riboflavin. Methods: Pure hydrogels of 100% collagen (G1) or hybrid hydrogels, 90% collagen:10% apatite (G2), 90% collagen:10% nanokeratin (G3), and 90% collagen:5% apatite:5% nanokeratin (G4) were characterized by scanning electron microscope, Fourier-transform infrared spectroscopy, differential scanning calorimetry, swelling degree and quali-quantitative histological analysis. Ectopic implantation in subcutaneous tissue in mice at one, three and nine weeks allowed to assess the inflammation (neutrophils, lymphocytes, macrophages, and giant cells) and repair (neovascularization, and connective tissue) to determine biocompatibility and the integrity of biomaterials to score their biodegradability. Histomorphometry on critical size defects in rat calvaria at one and three months evaluated the percentage of bone, connective tissue, and biomaterials in all groups. Results: The hydrogels presented porous microstructure, water absorption and physicochemical characteristics compatible with their polymeric and/or mineral composition. All materials exhibited biocompatibility, biodegradability, and low osteoconductivity. G2 showed greater density of new bone and biomaterial than the G1, G3 and G4. Conclusions: The collagen-apatite group formulation suggests potential for development as osteopromoting membrane.
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