Abstract:Objective: To examine the effects of the magnitude and duration of drafting stress on the proliferation and osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs). Methods: Ten SPF-grade SD rats were isolated and cultured and BMSCs were identified by osteogenic and lipogenic differentiation methods. Cell grouping was set for the magnitude of drafting stress loading (0.5% stretch, 5% stretch, 10% stretch, 15% stretch) and duration of action (0.5h, 6h, 12h, 24h, 48h, 72h). Proliferation of BMSCs was measured by CCK-8 method. The BCIP/NBT method was used to determine cellular alkaline phosphatase activity. Cellular osteogenic and lipogenic differentiation was detected by alizarin red and oil red O staining.Results: Tensile stress at 10% stretch for 12h maximally increased the proliferation rate of BMSCs by 1.53-fold, which was higher than that of the 5% and 15% stretch groups, with statistically significant differences (P<0.01). tensile stress at 5% stretch for 48h maximally increased alkaline phosphatase expression of BMSCs by 4.2-fold, increased mineralized nodule formation of BMSCs by 65%, and decreased BMSCs formation of lipid droplets by 32%, which was higher than the 10% and 15% stretch amplitude groups, with statistically significant differences (P<0.05 or P<0.01).Conclusion: The best effect of tensile stress stretching at 10% for 12h was observed in promoting the proliferation of BMSCs. Draft stress of 5% for 48h had the most significant effect on the formation of alkaline phosphatase and mineralized nodules in BMSCs, which in turn promoted osteogenic differentiation of BMSCs. The magnitude and duration of tension stress required to promote the proliferation and osteogenic differentiation of BMSCs varied.
邓海艳, 古丽再努·依不拉音, 孙江伟, 韩帅. 不同牵张应力对大鼠BMSCs增殖和成骨分化作用[J]. 河北医学, 2023, 29(5): 732-736.
DENG Haiyan, GULIZAINU Yibulayin, SUN Jiangwei, et al. Proliferation and Osteogenic Differentiation of Rat BMSCs by Different Tension Stress. HeBei Med, 2023, 29(5): 732-736.
[1] 赵常红,李世昌,李沛鸿,等.运动影响骨生物力学的研究进展[J].中国骨质疏松杂志,2022,28(2):300-303. [2] ZayzafoonM,Gathings W,Mcdonald J.Modeled microgravity inhibits osteogenic differentiation of human mesenchymal stem cells and increases adipogenesis[J].Endocrinology,2004,145(5):2421-2432. [3] 缪婷婷.ERK5信号通路介导周期性牵张应力促进Pg-LPS刺激下的成骨细胞增殖的研究[D].兰州,兰州大学,2020. [4] 曹盛楠,师彬,孙国栋,等.生物力学作用对骨髓间充质干细胞增殖和成骨分化影响研究进展[J].山东科学,2021,34(2):65-74. [5] Wallace JM.,Rajachar RM.,Allen MR.,et al.Exercise-induced changes in the cortical bone of growing mice are bone- and gender-specific[J].Bone,2007,40(4):1120-1127. [6] Ruiz SA,Chen CS.Emergence of patterned stem cell differentiation within multicellular structures[J].Stem Cells,2008,26( 11):2921-2927. [7] Yong KW,Choi JR,Choi JY,et al.Recent advances in mechanically loaded human mesenchymal stem cells for bone tissue engineering[J].Int Mol Sci,2020,21(16):5816. [8] Jia X,Su H,Chen X,et al.A critical role of the KCa 3.1 channel in mechanical stretch-induced proliferation of rat bone marrow-derived mesenchymal stem cells[J].Cell Mol Med,2020,24(6):3739-3744. [9] 井燕,李良,李毅,等.力学应变对大鼠骨髓间充质干细胞增殖和成骨分化能力的影响[J].生物医学工程学杂志,2006,23( 3):542-545. [10] 高莺,李继华,韩立赤,等.牵张应力诱导大鼠骨髓间充质干细胞骨向分化及其差异基因表达分析[J].华西口腔医学杂志,2009,27(2):213-216. [11] Sun Y,Yuan Y,Wu W,et al.The effects of locomotion on bone marrow mesenchymal stem cell fate:insight into mechanical regulation and bone formation[J].Cell Biosci,2021,11(1):88.