TY - JOUR
T1 - Effect of extracellular matrix protein pattern on the differentiation of myoblast
AU - Changjun, Qiu
AU - Tingting, Hun
AU - Yingtong, Zhao
AU - Yuewei, Zhan
AU - Feng, Zhao
AU - Yan, Sun
N1 - Publisher Copyright:
© 2019 Chinese Academy of Medical Sciences. All rights reserved.
PY - 2019
Y1 - 2019
N2 - The differentiation mechanism of skeletal myoblast differentiation is still unclear. The main purpose of this research is to explore the effect of the extracellular matrix (ECM) protein pattern on myogenic differentiation. In this study, four different fibronectin micropatterns (parallel, random, vertical, and control group) were prepared by microcontact printing technology, and the differentiation of C2C12 cells after 7 day incubation was analyzed by immunofluorescence staining and analyzes the adhesion molecule, Vinculin and F- actin distribution after 2 h, 6 h, 18 h between groups by immunofluorescence staining method, each group experiment repeated 3 times, each time point had 3 parallel samples. The myotubes number formed in the control group had no significant difference compared with that in the parallel alignment group (17. 33±0. 58 vs 16±1.73), but was significantly higher than the vertical group (7.00 ±1.00) and the random group significantly (10. 89±0. 19) (P<0. 05). At 2 h, the arrangement of microfilaments in cells was consistent with the local micropatterns. At 6 h, the microfilament began to align along the long axis direction of the whole strips pattern. At 12 h, the distribution of microfilaments was consistent with that of the long axis direction of the whole strips pattern. At 18 h, the adhesion plaques formed was distributed along the micropattern area. In conclusion, the extracellular matrix protein patterns are influential on the differentiation of myoblasts, different fibronectin polarity micropatterns have distinct effects on myoblasts cytoskeleton and adhesion, and it might be one of the reasons that later differentiation of C2C12 results in different outcomes.
AB - The differentiation mechanism of skeletal myoblast differentiation is still unclear. The main purpose of this research is to explore the effect of the extracellular matrix (ECM) protein pattern on myogenic differentiation. In this study, four different fibronectin micropatterns (parallel, random, vertical, and control group) were prepared by microcontact printing technology, and the differentiation of C2C12 cells after 7 day incubation was analyzed by immunofluorescence staining and analyzes the adhesion molecule, Vinculin and F- actin distribution after 2 h, 6 h, 18 h between groups by immunofluorescence staining method, each group experiment repeated 3 times, each time point had 3 parallel samples. The myotubes number formed in the control group had no significant difference compared with that in the parallel alignment group (17. 33±0. 58 vs 16±1.73), but was significantly higher than the vertical group (7.00 ±1.00) and the random group significantly (10. 89±0. 19) (P<0. 05). At 2 h, the arrangement of microfilaments in cells was consistent with the local micropatterns. At 6 h, the microfilament began to align along the long axis direction of the whole strips pattern. At 12 h, the distribution of microfilaments was consistent with that of the long axis direction of the whole strips pattern. At 18 h, the adhesion plaques formed was distributed along the micropattern area. In conclusion, the extracellular matrix protein patterns are influential on the differentiation of myoblasts, different fibronectin polarity micropatterns have distinct effects on myoblasts cytoskeleton and adhesion, and it might be one of the reasons that later differentiation of C2C12 results in different outcomes.
KW - Adhesion
KW - Differentiation
KW - Fibronectin
KW - Micropatterning technology
KW - Polarity arrangement
UR - https://www.scopus.com/pages/publications/85066324726
U2 - 10.3969/j.issn.0258-8021.2019.01.009
DO - 10.3969/j.issn.0258-8021.2019.01.009
M3 - 文章
AN - SCOPUS:85066324726
SN - 0258-8021
VL - 38
SP - 70
EP - 76
JO - Chinese Journal of Biomedical Engineering
JF - Chinese Journal of Biomedical Engineering
IS - 1
ER -