Giretova Maria, Medvecky Lubomir, Stulajterova Radoslava, Sopcak Tibor, Briancin Jaroslav, Tatarkova Monika
Institute of Materials Research of SAS, Watsonova 47, 04001, Kosice, Slovakia.
Institute of Geotechnics of SAS, Watsonova 47, 04001, Kosice, Slovakia.
J Mater Sci Mater Med. 2016 Dec;27(12):181. doi: 10.1007/s10856-016-5801-7. Epub 2016 Oct 21.
Polyhydroxybutyrate/chitosan/calcium phosphate composites are interesting biomaterials for utilization in regenerative medicine and they may by applied in reconstruction of deeper subchondral defects. Insufficient informations were found in recent papers about the influence of lysozyme degradation of chitosan in calcium phosphate/chitosan based composites on in vitro cytotoxicity and proliferation activity of osteoblasts. The effect of enzymatic chitosan degradation on osteoblasts proliferation was studied on composite films in which the porosity of origin 3D scaffolds was eliminated and the surface texture was modified. The significantly enhanced proliferation activity with faster population growth of osteoblasts were found on enzymatically degraded biopolymer composite films with α-tricalcium phosphate and nanohydroxyapatite. No cytotoxicity of composite films prepared from lysozyme degraded scaffolds containing a large fraction of low molecular weight chitosans (LMWC), was revealed after 10 days of cultivation. Contrary to above in the higher cytotoxicity origin untreated nanohydroxyapatite films and porous composite scaffolds. The results showed that the synergistic effect of surface distribution, morphology of nanohydroxyapatite particles, microtopography and the presence of LMWC due to chitosan degradation in composite films were responsible for compensation of the cytotoxicity of nanohydroxyapatite composite films or porous composite scaffolds.
聚羟基丁酸酯/壳聚糖/磷酸钙复合材料是再生医学中很有吸引力的生物材料,可用于修复较深的软骨下缺损。近期文献中关于基于磷酸钙/壳聚糖的复合材料中壳聚糖的溶菌酶降解对成骨细胞体外细胞毒性和增殖活性的影响的信息不足。在消除了原始3D支架孔隙率并改变了表面纹理的复合膜上研究了壳聚糖酶促降解对成骨细胞增殖的影响。在含有α-磷酸三钙和纳米羟基磷灰石的酶促降解生物聚合物复合膜上发现成骨细胞的增殖活性显著增强,群体生长更快。培养10天后,由含有大部分低分子量壳聚糖(LMWC)的溶菌酶降解支架制备的复合膜未显示出细胞毒性。与上述情况相反,未处理的纳米羟基磷灰石膜和多孔复合支架具有较高的细胞毒性。结果表明,复合膜中纳米羟基磷灰石颗粒的表面分布、形态、微观形貌以及由于壳聚糖降解产生的LMWC的协同作用,补偿了纳米羟基磷灰石复合膜或多孔复合支架的细胞毒性。