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内皮细胞作为机械传感器:循环应变下的酶活性与网络形成

Endothelial cells as mechanical transducers: enzymatic activity and network formation under cyclic strain.

作者信息

Shukla A, Dunn A R, Moses M A, Van Vliet K J

机构信息

The Center for Materials Science and Engineering, MIT, Cambridge, MA, USA.

出版信息

Mech Chem Biosyst. 2004 Dec;1(4):279-90.

Abstract

Although it is established that endothelial cells can respond to external mechanical cues (e.g., alignment in the direction of fluid shear stress), the extent to which mechanical stress and strain applied via the endothelial cell substrate impact biomolecular and cellular processes is not well-understood. This issue is particularly important in the context of inflammation, vascular remodeling, and cancer progression, as each of these processes occurs concurrently with localized increases in strain and marked changes in molecules secreted by adjacent cells. Here, we systematically vary the level and duration of cyclic tensile strain applied to human dermal microvascular and bovine capillary endothelial cells via substrate deflection, and then correlate these cues with the secretion of extracellular matrix-degrading enzymes and a morphological transition from confluent monolayers to well-defined multicellular networks that resemble capillary tube-like structures. For a constant chemical environment, we find that super-physiological mechanical strain stimulates both endothelial cell secretion of latent matrix metalloprotease-2 and multicellular networks in a time- and strain-dependent manner. These results demonstrate coupling between the mechanical and biochemical states of microvascular endothelial cells, and indicate that elevated local stress may directly impact new capillary growth (angiogenesis) toward growing tumors and at capillary wall defect sites.

摘要

虽然已经确定内皮细胞能够对外界机械信号作出反应(例如,沿流体剪切应力方向排列),但通过内皮细胞基质施加的机械应力和应变对生物分子和细胞过程的影响程度尚未得到充分理解。在炎症、血管重塑和癌症进展的背景下,这个问题尤为重要,因为这些过程中的每一个都与应变的局部增加以及相邻细胞分泌分子的显著变化同时发生。在这里,我们通过基质偏转系统地改变施加于人类真皮微血管内皮细胞和牛毛细血管内皮细胞的循环拉伸应变的水平和持续时间,然后将这些信号与细胞外基质降解酶的分泌以及从汇合单层到类似毛细血管样结构的明确多细胞网络的形态转变相关联。对于恒定的化学环境,我们发现超生理机械应变以时间和应变依赖的方式刺激内皮细胞分泌潜伏性基质金属蛋白酶 -2 以及形成多细胞网络。这些结果证明了微血管内皮细胞的机械状态和生化状态之间的耦合,并表明局部应力升高可能直接影响朝向生长肿瘤和毛细血管壁缺损部位的新毛细血管生长(血管生成)。

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