Mechanosensation and Transduction in Osteocytes.

Lynda F Bonewald
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引用次数: 0

Abstract

There may be no single mechanoreceptor in osteocytes, but instead a combination of events that has to be triggered for mechanosensation and transduction of signal to occur. Possibilities include shear stress along dendritic processes and/or the cell body, cell deformation in response to strain, and primary cilia. These events could occur independently or simultaneously to activate mechanotransduction. Signal initiators include calcium channel activation and ATP, nitric oxide, and prostaglandin release. Means of signal transfer include gap junctions and hemichannels, and the release of signaling molecules into the bone fluid. Questions remain regarding the magnitude of strain necessary to induce an osteocyte response, how the response propagates within the osteocyte network, and the timing involved in the initiation of bone resorption and/or formation on the bone surface. Mechanical loading in the form of shear stress is clearly involved not only in mechanosensation and transduction, but also in osteocyte viability. It remains to be determined if mechanical loading can also affect mineral homeostasis and mineralization, which are newly recognized functions of osteocytes.

骨细胞的机械感觉和传导
骨细胞中可能没有单一的机械感受器,而是必须触发一系列事件才能产生机械感觉和信号转导。这些事件可能包括沿树突过程和/或细胞体的剪切应力、细胞对应变的变形以及初级纤毛。这些事件可能单独发生,也可能同时发生,从而激活机械传导。信号启动器包括钙通道激活和 ATP、一氧化氮和前列腺素释放。信号传递方式包括间隙连接和半通道,以及向骨液释放信号分子。关于诱导骨细胞反应所需的应变大小、反应如何在骨细胞网络内传播以及骨吸收和/或骨表面形成所涉及的时间等问题仍然存在。剪切应力形式的机械负荷显然不仅涉及机械感觉和传导,还涉及骨细胞的活力。机械负荷是否也会影响矿物质平衡和矿化,这是新认识到的骨细胞功能,目前仍有待确定。
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