Abdel-Fattah Wafa I, Jiang Tao, El-Bassyouni Gehan El-Tabie, Laurencin Cato T
Department of Biomaterials, National Research Centre, Cairo, Egypt.
Acta Biomater. 2007 Jul;3(4):503-14. doi: 10.1016/j.actbio.2006.12.004. Epub 2007 Feb 22.
The objective of the present study was to synthesize and characterize chitosans with different degrees of deacetylation (DDA%), prepare chitosan microspheres with controlled chemistry and geometry, and fabricate three-dimensional (3-D) chitosan matrices based on microspheres with appropriate pore size, porosity and mechanical properties suitable for bone tissue engineering applications. Chitosans with three DDA% of 69%, 79% and 97% were obtained using a thermomechanochemical technique by varying the applied pressure and NaOH solution concentration. The prepared chitosans were comprehensively characterized by proton nuclear magnetic resonance, elemental analysis, viscosity measurements, thermal analyses and X-ray diffraction. In addition, chitosan microspheres were prepared using an ionotropic gelation method. Three-dimensional chitosan matrices were fabricated via a sintered microsphere technique. Scanning electron microscopy revealed rough surfaces of the prepared chitosan microspheres. Mercury intrusion porosimetry revealed a porosity of 19.2% and a median pore diameter of 199.62microm of the fabricated 3-D matrix. The compressive modulus of the sintered microsphere matrix (662.26+/-54.53MPa) was in the range of human cancellous bone (10-2000MPa), making it suitable for bone tissue engineering applications.
本研究的目的是合成并表征不同脱乙酰度(DDA%)的壳聚糖,制备具有可控化学性质和几何形状的壳聚糖微球,并基于具有适合骨组织工程应用的适当孔径、孔隙率和机械性能的微球制造三维(3-D)壳聚糖基质。通过改变施加的压力和氢氧化钠溶液浓度,采用热机械化学技术获得了脱乙酰度分别为69%、79%和97%的三种壳聚糖。通过质子核磁共振、元素分析、粘度测量、热分析和X射线衍射对制备的壳聚糖进行了全面表征。此外,采用离子凝胶法制备了壳聚糖微球。通过烧结微球技术制造了三维壳聚糖基质。扫描电子显微镜显示制备的壳聚糖微球表面粗糙。压汞法显示制造的三维基质的孔隙率为19.2%,中值孔径为199.62微米。烧结微球基质的压缩模量(662.26±54.53MPa)在人松质骨的范围内(10-2000MPa),使其适合骨组织工程应用。