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流体剪切力诱导软骨细胞中 RhoA 的差异激活和抑制。

Differential activation and inhibition of RhoA by fluid flow induced shear stress in chondrocytes.

机构信息

Department of Biomedical Engineering, Indiana University-Purdue University Indianapolis, 723 West Michigan Street, Indianapolis, IN 46202, USA.

出版信息

Cell Biol Int. 2013 Jun;37(6):568-76. doi: 10.1002/cbin.10072. Epub 2013 Mar 13.

Abstract

Physical force environment is a major factor that influences cellular homeostasis and remodelling. It is not well understood, however, as a potential role of force intensities in the induction of cellular mechanotransduction. Using a fluorescence resonance energy transfer-based approach, we asked whether activities of GTPase RhoA in chondrocytes are dependent on intensities of flow-induced shear stress. We hypothesized that RhoA activities can be either elevated or reduced by selecting different levels of shear-stress intensities. The result indicates that C28/I2 chondrocytes have increased RhoA activities in response to high shear stress (10 or 20 dyn/cm(2) ), whereas a decrease in activity was seen with an intermediate shear stress of 5 dyn/cm(2) . No changes were seen under low shear stress (2 dyn/cm(2) ). The observed two-level switch of RhoA activities is closely linked to the shear-stress-induced alterations in actin cytoskeleton and traction forces. In the presence of constitutively active RhoA (RhoA-V14), intermediate shear stress suppressed RhoA activities, while high shear stress failed to activate them. In chondrocytes, expression of various metalloproteinases is, in part, regulated by shear and normal stresses through a network of GTPases. Collectively, the data suggest that intensities of shear stress are critical in differential activation and inhibition of RhoA activities in chondrocytes.

摘要

物理力环境是影响细胞内稳态和重塑的主要因素。然而,作为力强度在细胞机械转导诱导中的潜在作用,人们对此了解甚少。我们使用基于荧光共振能量转移的方法,研究了软骨细胞中 GTPase RhoA 的活性是否依赖于流诱导切应力的强度。我们假设通过选择不同的切应力强度,可以升高或降低 RhoA 的活性。结果表明,C28/I2 软骨细胞对高切应力(10 或 20 dyn/cm²)的反应表现出 RhoA 活性的增加,而中间切应力(5 dyn/cm²)则导致活性降低。低切应力(2 dyn/cm²)下未见变化。观察到的 RhoA 活性的两级开关与切应力诱导的肌动蛋白细胞骨架和牵引力的变化密切相关。在组成型激活的 RhoA(RhoA-V14)存在下,中间切应力抑制 RhoA 活性,而高切应力不能激活它们。在软骨细胞中,各种金属蛋白酶的表达部分通过 GTPase 网络受到剪切和法向应力的调节。总的来说,这些数据表明,切应力的强度在软骨细胞中 RhoA 活性的差异激活和抑制中是至关重要的。

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