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模拟微重力通过抑制原代小鼠成骨细胞钙通道降低细胞内游离钙浓度。

Simulated microgravity reduces intracellular-free calcium concentration by inhibiting calcium channels in primary mouse osteoblasts.

机构信息

Department of Orthopedics, Jinling Hospital, Medical School of Nanjing University, Nanjing, China.

Department of Orthopedics, No. 454 Hospital of PLA, Anhui Medical University, Nanjing, China.

出版信息

J Cell Biochem. 2019 Mar;120(3):4009-4020. doi: 10.1002/jcb.27685. Epub 2018 Sep 27.

Abstract

Calcium homeostasis in osteoblasts plays fundamental roles in the physiology and pathology of bone tissue. Various types of mechanical stimuli promote osteogenesis and increase bone formation elicit increases in intracellular-free calcium concentration in osteoblasts. However, whether microgravity, a condition of mechanical unloading, exerts an influence on intracellular-free calcium concentration in osteoblasts or what mechanisms may underlie such an effect are unclear. Herein, we show that simulated microgravity reduces intracellular-free calcium concentration in primary mouse osteoblasts. In addition, simulated microgravity substantially suppresses the activities of L-type voltage-sensitive calcium channels, which selectively allow calcium to cross the plasma membrane from the extracellular space. Moreover, the functional expression of ryanodine receptors and inositol 1,4,5-trisphosphate receptors, which mediate the release of calcium from intracellular storage, decreased under simulated microgravity conditions. These results suggest that simulated microgravity substantially reduces intracellular-free calcium concentration through inhibition of calcium channels in primary mouse osteoblasts. Our study may provide a novel mechanism for microgravity-induced detrimental effects in osteoblasts, offering a new avenue to further investigate bone loss induced by mechanical unloading.

摘要

成骨细胞中的钙稳态在骨骼组织的生理学和病理学中起着基础作用。各种类型的机械刺激促进成骨作用,并增加骨形成,从而导致成骨细胞内游离钙浓度增加。然而,微重力(机械卸载的一种情况)是否对成骨细胞内游离钙浓度产生影响,或者这种影响的机制是什么,目前尚不清楚。本文中,我们发现模拟微重力会降低原代小鼠成骨细胞内的游离钙浓度。此外,模拟微重力还会显著抑制 L 型电压敏感性钙通道的活性,该通道选择性允许钙从细胞外空间穿过质膜进入细胞内。此外,在模拟微重力条件下,内质网钙释放通道(ryanodine 受体和肌醇 1,4,5-三磷酸受体)的功能表达减少,该通道介导钙从细胞内储存中释放。这些结果表明,模拟微重力通过抑制原代小鼠成骨细胞中的钙通道,显著降低了细胞内游离钙浓度。我们的研究可能为微重力引起的成骨细胞损伤提供了一种新的机制,为进一步研究机械卸载引起的骨丢失提供了新的途径。

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