南方医科大学学报 ›› 2013, Vol. 33 ›› Issue (10): 1432-.

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MAPK-ERK1/2信号通路调控成骨性基因表达和细胞增殖

丁道芳,李玲慧,宋奕,杜国庆,卫晓恩,曹月龙   

  • 出版日期:2013-10-20 发布日期:2013-10-20

MAPK-ERK1/2 signaling pathway regulates osteogenic gene expression in rat osteoblasts in vitro

  • Online:2013-10-20 Published:2013-10-20

摘要: 目的观察在不同浓度大鼠血清作用下,激活或抑制MAPK-ERK1/2信号通路对大鼠成骨细胞的成骨性基因表达和增殖
的影响。方法原代培养大鼠成骨细胞,进行形态和碱性磷酸酶初步鉴定后,分别用1%和5%的大鼠血清进行培养24 h,WB检
测MAPK-ERK1/2信号通路蛋白p-ERK1/2和ERK1/2表达,同时检测成骨性基因(Runx2、Ⅰ型胶原和碱性磷酸酶)和增殖蛋白
PCNA的表达;MAPK-ERK1/2信号通路阻断剂PD0325901抑制P-ERK1/2的表达后观察对Runx2、Ⅰ型胶原和碱性磷酸酶和增
殖蛋白PCNA的表达。结果5%大鼠血清激活p-ERK1/2水平明显高于1%大鼠血清(P<0.05),在MAPK-ERK1/2高水平激活状
态下,成骨性基因如Runx2、Ⅰ型胶原和碱性磷酸酶的表达水平出现显著的增加及促进PCNA的表达;当抑制MAPK-ERK1/2
信号通路时,成骨性基因Runx2、Ⅰ型胶原和碱性磷酸酶的表达水平也随之下调,且PCNA 表达也受到抑制。结论激活
MAPK-ERK1/2通路促进成骨基因表达和成骨细胞增殖,抑制此通路将抑制成骨性基因表达和细胞增殖,此通路可能作为治疗
骨质疏松症的药物靶点。

Abstract: Objective To investigate the effect of inhibition and activation of MAPK-ERK1/2 pathway on the expression of
osteogenic genes and proliferation of rat osteoblasts in vitro. Methods Primarily cultured rat osteoblasts, identified by cell
morphology studies and ALP staining, were exposed to 1% or 5% rat serum for 24 h or to the specific MAPK-ERK1/2 inhibitor
PD0325901. The downstream molecules of MAPK-ERK1/2 pathway including p-ERK1/2 and ERK1/2, osteogenic genes such as
Runx2 and Type I collagen, and proliferating cell nuclear antigen (PCNA) were detected by Western Blotting, and alkaline
phosphatase activities were analyzed quantitatively. Results Compared with 1% rat serum-treated cells, exposure of the cells
to a higher concentration (5%) of rat serum caused a significantly increased phosphorylation level of p-ERK1/2 (P<0.05) and
obviously enhanced expressions of the osteogenic genes (Runx2, type I collagen and ALP) and PCNA (P<0.05). Inhibition of
the MAPK-ERK1/2 pathway with PD0325901 resulted in suppressed expressions of the osteogenic genes and PCNA.
Conclusion The activation of MAPK-ERK1/2 pathway promotes the expression of osteogenic genes such as Runx2, type I
collagen and ALP and enhances the proliferative activity of the osteoblasts, while inhibition of this pathway suppresses the
expressions of these genes and the cell proliferation, suggesting that this pathway may potentially serve as a therapeutic target
for osteoporosis.