腺苷酸环化酶和TRPV4介导Ca2+/cAMP动力学,以增强骨细胞中流体诱导的成骨。

Journal of molecular biochemistry Pub Date : 2018-01-01
Emily R Moore, Han Seul Ryu, Ya Xing Zhu, Christopher R Jacobs
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引用次数: 0

摘要

骨适应物理力,这一过程依赖于骨细胞的机械转导。骨细胞感知机械刺激的一种方式是通过初级纤毛,这是一种感觉细胞器,可触发细胞内信号级联反应,以响应流体剪切。我们的实验室先前确定,流动诱导的纤毛Ca2+内流和细胞质cAMP水平的变化对成骨至关重要。我们还发现了两种对骨细胞机械转导很重要的蛋白:瞬时受体电位香草酸样蛋白4 (TRPV4)和腺苷酸环化酶6 (AC6)。有趣的是,破坏这些蛋白质的Ca2+结合能力会导致功能丧失。虽然TRPV4和AC6的敲低会破坏成骨,但没有明确的证据表明它们与促进骨细胞机械转导的Ca2+/cAMP动力学有关。因此,我们用AC3/6和TRPV4过表达质粒转染MLO-Y4骨细胞,这些质粒不能与Ca2+相互作用,并观察了对流体剪切的反应。事实上,突变组在血流开始时表现出cAMP的不利变化和成骨标志物COX-2的mRNA表达降低。这种模式在AC3和TRPV4中持续存在,但我们发现AC6在长时间暴露于流动中没有差异。这些结果表明,TRPV4和ACs介导Ca2+/cAMP动力学对骨细胞机械转导很重要。这些机制是治疗骨质流失的潜在目标,应该进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Adenylyl cyclases and TRPV4 mediate Ca<sup>2+</sup>/cAMP dynamics to enhance fluid flow-induced osteogenesis in osteocytes.

Adenylyl cyclases and TRPV4 mediate Ca<sup>2+</sup>/cAMP dynamics to enhance fluid flow-induced osteogenesis in osteocytes.

Adenylyl cyclases and TRPV4 mediate Ca<sup>2+</sup>/cAMP dynamics to enhance fluid flow-induced osteogenesis in osteocytes.

Adenylyl cyclases and TRPV4 mediate Ca2+/cAMP dynamics to enhance fluid flow-induced osteogenesis in osteocytes.

Bone adapts to physical forces and this process is dependent on osteocyte mechanotransduction. One way osteocytes sense mechanical stimulation is through the primary cilium, a sensory organelle that triggers intracellular signaling cascades in response to fluid shear. Our lab previously determined that flow-induced ciliary Ca2+ influx and changes in cytosolic cAMP levels are critical for osteogenesis. We also identified two proteins important for osteocyte mechanotransduction: transient receptor potential vanilloid 4 (TRPV4) and adenylyl cyclase 6 (AC6). Interestingly, disrupting the Ca2+-binding ability of these proteins results in loss of function. Although knockdowns of TRPV4 and AC6 disrupt osteogenesis, there is no definitive evidence linking them to Ca2+/cAMP dynamics that facilitate osteocyte mechanotransduction. We therefore transfected MLO-Y4 osteocytes with AC3/6 and TRPV4 overexpression plasmids that fail to interact with Ca2+ and observed the response to fluid shear. Indeed, mutant groups exhibited adverse changes in cAMP and lower mRNA expression of an osteogenic marker, COX-2, at the onset of flow. This pattern persisted for AC3 and TRPV4 but we detected no difference in AC6 at longer exposure to flow. These results suggest TRPV4 and ACs mediate Ca2+/cAMP dynamics that are important for osteocyte mechanotransduction. These mechanisms are potential targets for therapeutics to combat bone loss and should be investigated further.

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