机构地区:[1]甘肃省高校重大疾病分子医学与中医药防治研究省级重点实验室,兰州730000 [2]兰州军区兰州总医院骨科研究所,兰州730050
出 处:《中国修复重建外科杂志》2017年第4期489-496,共8页Chinese Journal of Reparative and Reconstructive Surgery
基 金:甘肃省科技重大专项项目(1203FKDA036)~~
摘 要:目的探讨载柚皮苷复合支架的性能及其对兔骨软骨缺损修复的效果。方法利用W/O/W方法制备载柚皮苷和无载柚皮苷缓释微球;以凹凸棒石和Ⅰ型胶原蛋白为材料,通过"3层夹心法"分别构建载柚皮苷、无载柚皮苷和载TGF-β_1复合支架。分别利用体外缓释、扫描电镜和细胞计数试剂盒8法评价载柚皮苷微球的缓释效果、支架的形貌和细胞相容性。取40只日本大耳白兔随机分为A、B、C、D4组,每组10只。于兔双侧股骨髁间窝处制备直径4.5 mm、深4 mm的骨软骨缺损模型,A组为缺损组(空白对照),B、C、D组分别于骨软骨缺损处植入无载柚皮苷复合支架(阴性对照组)、载柚皮苷复合支架(实验组)及载TGF-β_1复合支架(阳性对照组)。分别于术后3、6个月时取材,行大体、HE染色、甲苯胺蓝染色,分别观察骨软骨缺损修复效果;Western blot检测新生软骨Ⅱ型胶原蛋白表达水平。结果载柚皮苷微球具有良好的缓释效果;构建的骨软骨复合支架有较好的孔隙;载柚皮苷软骨层支架细胞的增殖率与无载柚皮苷支架比较明显增加,差异有统计学意义(P<0.05)。兔体内植入实验大体观察示,术后3个月C、D组缺损范围与A、B组相比明显缩小;术后6个月C组缺损处被新生软骨所覆盖,D组新生软骨与周围正常软骨整合良好。组织学染色示,术后3个月A、B组缺损处被少量纤维组织填充,C、D组可见少量软骨生成;术后6个月C、D组新生骨软骨组织与正常骨软骨类似,A、B组缺损处以大量纤维组织为主。Western blot检测示,术后3、6个月C、D组缺损处新生组织中Ⅱ型胶原蛋白表达量均显著高于A、B组,差异有统计学意义(P<0.05);C、D组间比较差异无统计学意义(P>0.05)。结论载柚皮苷复合支架具有良好的组织相容性,并对兔关节骨软骨缺损有较好的修复效果。Objective To investigate the performance of loading naringin composite scaffolds and its effects on repair of osteochondral defects. Methods The loading naringin and unloading naringin sustained release microspheres were prepared by W/O/W method; with the materials of the attpulgite and the collagen type I, the loading naringin, unloading naringin, and loading transforming growth factor β1 (TGF-β1) osteochondral composite scaffolds were constructed respectively by " 3 layers sandwich method". The effect of sustained-release of loading naringin microspheres, the morphology of the composite scaffolds, and the biocompatibility were evaluated respectively by releasingin vitro, scanning electron microscope, and cell counting kit 8. Forty Japanese white rabbits were randomly divided into groups A, B, C, and D, 10 rabbits each group. After a osteochondral defect of 4.5 mm in diameter and 4 mm in depth was made in the intercondylar fossa of two femurs. Defect was not repaired in group A (blank control), and defect was repaired with unloading naringin composite scaffolds (negative control group), loading naringin composite scaffolds (experimental group), and loading TGF-β1 composite scaffolds (positive control group) in groups B, C, and D respectively. At 3 and 6 months after repair, the intercondylar fossa was harvested for the general, HE staining, and toluidine blue staining to observe the repair effect. Western blot was used to detect the expression of collagen type II in the new cartilage. Results Loading naringin microspheres had good effect of sustained-release; the osteochondral composite scaffolds had good porosity; the cell proliferation rate on loading naringin composite scaffold was increased significantly when compared with unloading naringin scaffold (P〈0.05). General observation revealed that defect range of groups C and D was reduced significantly when compared with groups A and B at 3 months after repair; at 6 months after repair, defects of group C were covered by new car
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