用于骨组织工程的新型铜掺杂壳聚糖/明胶支架的制备、表征和优化

Azam Bozorgi, M. Mozafari, M. Khazaei, M. Soleimani, Z. Jamalpoor
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引用次数: 9

摘要

摘要制备具有良好理化性能的复合支架作为人工微环境是骨组织工程研究的热点。鉴于纳米羟基磷灰石/壳聚糖/明胶(nHA/Cs/Gel)支架的优点,本研究旨在合成一种具有改进特性的改性nHA/Cs/Gel仿生支架。方法:在控制pH和温度的条件下,采用化学沉淀法合成了纯的和铜取代的nHA。采用盐浸/冷冻干燥法制备了纯的cu取代的nHA/Cs/凝胶支架。采用XRD、FTIR、FE-SEM/EDX、ICP等方法研究了纳米颗粒和支架的理化性质。此外,还评估了支架的机械强度、降解、孔隙度、肿胀、生物矿化和细胞相容性。结果:合成了纯的和Cu取代的nHA,并以适当的Cu取代和改善的物理性质进行了表征。所有支架均为高孔隙率(孔隙率> 98%),Cu的加入使孔隙率从99.555±0.394%降低到98.69±0.80%,孔隙尺寸扩大到100µm以上。铜取代提高了支架的机械强度,其中以nHA效果最好。Cu5%/Cs/凝胶支架的抗压强度为88.869±19.574 MPa。此外,3%和5%的cu取代的nHA增强了支架结构的稳定性,支持成骨细胞的扩散、粘附、存活、矿化和增殖。此外,在28天内观察到支架长期和可持续的Cu释放。结论:Cu取代的nHA/Cs/Gel支架模拟松质骨的多孔结构和机械强度,同时具有较长的降解和Cu释放、成骨细胞附着、活力、钙沉积和增殖。综上所述,我们的结果表明nHA的性能得到了提升。Cu5%/Cs/凝胶支架未来在骨组织工程中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fabrication, characterization, and optimization of a novel copper-incorporated chitosan/gelatin-based scaffold for bone tissue engineering applications
Introduction: Fabricating composite scaffolds with improved physicochemical properties as artificial microenvironments are of great interest in bone tissue engineering. Given advantageous properties of nano-hydroxyapatite/chitosan/gelatin (nHA/Cs/Gel) scaffolds, the present study aimed to synthesize a modified nHA/Cs/Gel biomimetic scaffold with improved features. Methods: Pure and copper (Cu)-substituted nHA was synthesized using the chemical precipitation method under controlled pH and temperature. Pure and Cu-substituted nHA/Cs/Gel scaffolds were fabricated by salt-leaching/freeze-drying method. Physicochemical characteristics of nanoparticles and scaffolds were explored using XRD, FTIR, FE-SEM/EDX, and ICP. Besides, scaffold mechanical strength, degradation, porosity, swelling, biomineralization, and cytocompatibility were assessed. Results: Pure and Cu-substituted nHA were synthesized and characterized with appropriate Cu substitution and improved physical properties. All scaffolds were highly porous (porosity > 98%) and Cu incorporation reduced porosity from 99.555 ± 0.394% to 98.69 ± 0.80% while enlarged the pore size to more than100 µm. Cu-substitution improved the scaffold mechanical strength and the best result was observed in nHA.Cu5%/Cs/Gel scaffolds by the compressive strength 88.869 ± 19.574 MPa. Furthermore, 3% and 5% Cu-substituted nHA enhanced the scaffold structural stability and supported osteoblast spread, adhesion, survival, mineralization, and proliferation. Moreover, long-term and sustainable Cu release from scaffolds was observed within 28 days. Conclusion: Cu-substituted nHA/Cs/Gel scaffolds mimic the porous structure and mechanical strength of cancellous bone, along with prolonged degradation and Cu release, osteoblast attachment, viability, calcium deposition, and proliferation. Taken together, our results indicate the upgraded properties of nHA.Cu5%/Cs/Gel scaffolds for future applications in bone tissue engineering.
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