肌发生
蛋白激酶B
材料科学
脚手架
粘附
MAPK/ERK通路
细胞粘附
心肌细胞
磷酸化
细胞生物学
骨骼肌
信号转导
PI3K/AKT/mTOR通路
整合素
化学
生物医学工程
细胞
解剖
生物化学
医学
生物
复合材料
作者
Luxiang Zou,Yingqian Zhong,Xiang Li,Xiujuan Yang,Dongmei He
标识
DOI:10.1021/acsbiomaterials.2c01155
摘要
3D-printed porous titanium (Ti) alloy scaffolds have been reported for facilitating muscle attachment in our previous study. However, the anti-avulsion ability needs to be improved. In this study, we used 3D-printed porous tantalum (Ta) scaffolds to improve muscle attachment. The differences in chemical and physical characteristics and muscle adhesion between the two scaffolds were tested and compared in the gene and protein level both in vitro and in vivo. The possible molecular mechanism was analyzed and further proved. The results showed that compared with the porous Ti alloy, porous Ta had better cell proliferation, differentiation, migration, and adhesion via the integrin-β1 (Itgb1)-activated AKT/MAPK signaling pathway in L6 rat myoblasts. When artificially down-regulated the expression of Itgb1, cell adhesion and myogenesis differentiation were affected and the phosphorylation of the AKT/MAPK signaling pathway was suppressed. In rat intramuscular implantation, porous Ta had a significantly higher muscle ingrowth rate (85.63% ± 4.97 vs 65.98% ± 4.52, p < 0.01) and larger avulsion force (0.972 vs 0.823 N/mm2, p < 0.05) than the porous Ti alloy. These findings demonstrate that the 3D-printed porous Ta scaffold is beneficial for further clinical application of muscle attachment.
科研通智能强力驱动
Strongly Powered by AbleSci AI