De Croos J N A, Jang B, Dhaliwal S S, Grynpas M D, Pilliar R M, Kandel R A
CIHR BioEngineering of Skeletal Tissues Team, Mount Sinai Hospital, Canada.
Osteoarthritis Cartilage. 2007 Nov;15(11):1301-10. doi: 10.1016/j.joca.2007.04.006. Epub 2007 Jun 4.
To determine if membrane type-1 matrix metalloproteinase (MT1-MMP) will respond to cyclic compression of chondrocytes grown in vitro and the regulatory mechanisms underlying this response.
Cyclic compression (30min, 1kPa, 1Hz) was applied to bovine chondrocytes (6-9-month-old animals) grown on top of a biodegradable substrate within 3 days of initiating culture. Luciferase assays using bovine articular chondrocytes were undertaken to demonstrate the mechanosensitivity of MT1-MMP. Semi-quantitative reverse-transcription polymerase chain reaction (RT-PCR) and western blot analysis were used to establish the time course of gene and protein upregulation in response to cyclic compression. The regulation of MT1-MMP was assessed by electrophoretic mobility shift assays, RT-PCR and western blot analysis. As well, an MT1-MMP decoy oligonucleotide and an extracellular signal-regulated kinase 1/2 (ERK1/2) pharmacological inhibitor were utilized to further characterize MT1-MMP regulation.
After cyclic compression, MT1-MMP showed a rapid and transient increase in gene expression. Elevated protein levels were detected within 2h of stimulation which returned to baseline by 6h. During cyclic compression, phosphorylation of the mitogen activated protein kinase ERK1/2 increased significantly. This was followed by increased gene and protein expression of the transcription factor; early growth factor-1 (Egr-1) and Egr-1 binding to the MT1-MMP promoter. Blocking Egr-1 DNA binding with a decoy MT1-MMP oligonucleotide, downregulated MT1-MMP gene expression. The ERK1/2 inhibitor U0126 also reduced Egr-1 DNA binding activity to MT1-MMP promoter sequences and subsequent transcription of MT1-MMP.
These data suggest that cyclic compression of chondrocytes in vitro upregulates MT1-MMP via ERK1/2 dependent activation of Egr-1 binding. Delineation of the regulatory pathways activated by mechanical stimulation will further our understating of the mechanisms influencing tissue remodeling.
确定膜型-1基质金属蛋白酶(MT1-MMP)是否会对体外培养的软骨细胞的周期性压缩产生反应,以及这种反应背后的调节机制。
在培养开始3天内,对生长在可生物降解基质上的牛软骨细胞(6至9个月大的动物)施加周期性压缩(30分钟,1千帕,1赫兹)。使用牛关节软骨细胞进行荧光素酶测定,以证明MT1-MMP的机械敏感性。采用半定量逆转录聚合酶链反应(RT-PCR)和蛋白质印迹分析来确定基因和蛋白质上调响应周期性压缩的时间进程。通过电泳迁移率变动分析、RT-PCR和蛋白质印迹分析评估MT1-MMP的调节。此外,使用MT1-MMP诱饵寡核苷酸和细胞外信号调节激酶1/2(ERK1/2)药理学抑制剂来进一步表征MT1-MMP的调节。
周期性压缩后,MT1-MMP基因表达迅速且短暂增加。在刺激后2小时内检测到蛋白质水平升高,6小时后恢复到基线。在周期性压缩期间,丝裂原活化蛋白激酶ERK1/2的磷酸化显著增加。随后转录因子早期生长因子-1(Egr-1)的基因和蛋白质表达增加,并且Egr-1与MT1-MMP启动子结合。用诱饵MT1-MMP寡核苷酸阻断Egr-1与DNA的结合,下调了MT1-MMP基因表达。ERK1/2抑制剂U0126也降低了Egr-1与MT1-MMP启动子序列的DNA结合活性以及MT1-MMP的后续转录。
这些数据表明,体外软骨细胞的周期性压缩通过ERK1/2依赖性激活Egr-1结合来上调MT1-MMP。阐明机械刺激激活的调节途径将进一步加深我们对影响组织重塑机制的理解。