Beijing Engineering Research Center of Printed Electronics, Institute of Printing and Packaging Engineering, Beijing Institute of Graphic Communication, Beijing, China.
College of Biological Science and Engineering, Fuzhou University, Fuzhou, China.
J Biomed Mater Res A. 2021 Mar;109(3):346-353. doi: 10.1002/jbm.a.37027. Epub 2020 Jul 6.
On this basis, a novel recombinant human-like collagen (RHLC)/silk fibroin scaffold material with high porosity and controllable aperture was prepared. The compatibility of osteoblasts (OB) with the blends was tested in vitro. The morphology, adhesion and growth of scaffold cells were observed by scanning electron microscope and laser confocal microscope. Extensive measurements, including 3-[4, 5-dimethylthiazole-2-acyl]-2, 5-diphenyl tetrabrominate assays, intracellular total protein content, and alkaline phosphatase activity assays were performed after 7 days of culture. Survival and protein content increased in RHLC/fibroin stents. LSCM and SEM results confirmed that the cells grew better in the mixed scaffolds than in the pure silk scaffolds, and showed that the cells were easy to adhere and diffuse in the RHLC/silk scaffolds. RHLC/silk fibroin scaffolds are promising biomaterials for bone tissue engineering.
在此基础上,制备了一种新型的高孔隙率和可控孔径的重组人样胶原蛋白(RHLC)/丝素支架材料。体外测试了成骨细胞(OB)与混合物的相容性。通过扫描电子显微镜和激光共聚焦显微镜观察支架细胞的形态、黏附和生长。培养 7 天后,进行了包括 3-[4,5-二甲基噻唑-2-酰基]-2,5-二苯基四溴化噻唑蓝比色试验、细胞内总蛋白含量和碱性磷酸酶活性测定在内的大量测量。RHLC/丝素支架中的细胞存活率和蛋白含量增加。LSCM 和 SEM 结果证实,细胞在混合支架中的生长情况优于纯丝支架,并且表明细胞在 RHLC/丝素支架中易于黏附和扩散。RHLC/丝素纤维支架是一种很有前途的骨组织工程生物材料。