Institute of Orthopaedics, The Lanzhou University Second Hospital, Lanzhou 730030 Gansu, People's Republic of China.
Mol Cell Biochem. 2012 May;364(1-2):321-7. doi: 10.1007/s11010-012-1233-y.
Fluid shear stress plays an important role in bone remodeling, however, the mechanism of mechanotransduction in bone tissue remains unclear. Recently, ERK5 has been found to be involved in multiple cellular processes. This study was designed to investigate the potential involvement of ERK5 in the proliferative response of osteoblastic cells to cyclic fluid shear stress. We reported here that cyclic fluid shear stress promoted ERK5 phosphorylation in MC3T3-E1 cells. Inhibition of ERK5 phosphorylation attenuated the increased expression of AP-1 and cyclin D1 and cell proliferation induced by cyclic fluid flow, but promoted p-16 expression. Further more, we found that cyclic fluid shear stress was a better stimuli for ERK5 activation and cyclin D1 expression compared with continuous fluid shear stress. Moreover, the pharmacological ERK5 inhibitor, BIX02189, which inhibited ERK5 phosphorylation in a time-dependent manner and the suppression lasted for at least 4 h. Taken together, we demonstrate that ERK5/AP-1/cyclin D1 pathway is involved in the mechanism of osteoblasts proliferation induced by cyclic fluid shear stress, which is superior in promoting cellular proliferation compared with continuous fluid shear stress.
流体切应力在骨重塑中起着重要作用,然而,骨组织中的力学转导机制仍不清楚。最近,ERK5 已被发现参与多种细胞过程。本研究旨在探讨 ERK5 在成骨细胞对周期性流体切应力的增殖反应中的潜在作用。我们在这里报告,周期性流体切应力促进 MC3T3-E1 细胞中 ERK5 的磷酸化。ERK5 磷酸化的抑制减弱了周期性流动诱导的 AP-1 和细胞周期蛋白 D1 的表达增加和细胞增殖,但促进了 p-16 的表达。此外,我们发现与连续流体切应力相比,周期性流体切应力是 ERK5 激活和细胞周期蛋白 D1 表达的更好刺激物。此外,ERK5 的药理学抑制剂 BIX02189 以时间依赖性方式抑制 ERK5 的磷酸化,抑制作用至少持续 4 小时。总之,我们证明 ERK5/AP-1/细胞周期蛋白 D1 途径参与了周期性流体切应力诱导的成骨细胞增殖的机制,与连续流体切应力相比,它更能促进细胞增殖。