Heiner A D Anneliese D, Martin J A James A
Department of Orthopaedics and Rehabilitation, Orthopaedic Biomechanics Laboratory, University of Iowa, 2181 Westlawn Building, Iowa City, IA 52242, USA.
J Biomech. 2004 May;37(5):689-95. doi: 10.1016/j.jbiomech.2003.09.014.
We have developed a novel mechanically active cartilage culture device capable of modulating the interplay between compression and shear, at physiologic stress levels (2-5 MPa). This triaxial compression culture system subjects cylindrical cartilage explants to pulsatile axial compression from platen contact, plus pulsatile radially transverse compression from external fluid compression. These compressive loads can be independently modulated to impose stress states that resemble normal physiologic loading, and to investigate perturbations of individual components of the multi-axial stress state, such as increased shear stress. Based on the observation that joint incongruity predisposes cartilage to premature degeneration, we hypothesized that cartilage extracellular matrix (ECM) synthesis would be inhibited under conditions of low transverse buttressing (high shear stress). To test this hypothesis, we compared ECM synthesis in human cartilage explants exposed to axial compression without transverse compression (high shear stress), versus explants exposed to axial compression plus an equal level of transverse compression (low shear stress). Both total (35)SO(4) incorporation and aggrecan-specific (35)SO(4) incorporation were significantly inhibited by axial compression, relative to axial plus transverse compression.
我们开发了一种新型的机械活性软骨培养装置,该装置能够在生理应力水平(2 - 5兆帕)下调节压缩与剪切之间的相互作用。这种三轴压缩培养系统使圆柱形软骨外植体受到来自压板接触的脉动轴向压缩,以及来自外部流体压缩的脉动径向横向压缩。这些压缩载荷可以独立调节,以施加类似于正常生理负荷的应力状态,并研究多轴应力状态中各个组成部分的扰动,例如增加的剪切应力。基于关节不协调会使软骨易发生过早退变的观察结果,我们推测在低横向支撑(高剪切应力)条件下软骨细胞外基质(ECM)合成会受到抑制。为了验证这一假设,我们比较了暴露于无横向压缩的轴向压缩(高剪切应力)下的人软骨外植体与暴露于轴向压缩加同等水平横向压缩(低剪切应力)下的外植体中的ECM合成。相对于轴向加横向压缩,轴向压缩显著抑制了总(35)SO(4)掺入和聚集蛋白聚糖特异性(35)SO(4)掺入。