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人成骨细胞在直流电场中的迁移取决于储存式钙释放,并与机械敏感性TRPM7通道的上调相关。

Human Osteoblast Migration in DC Electrical Fields Depends on Store Operated Ca-Release and Is Correlated to Upregulation of Stretch-Activated TRPM7 Channels.

作者信息

Rohde Marco, Ziebart Josefin, Kirschstein Timo, Sellmann Tina, Porath Katrin, Kühl Friederike, Delenda Bachir, Bahls Christian, van Rienen Ursula, Bader Rainer, Köhling Rüdiger

机构信息

Rostock University Medical Center, Oscar-Langendorff-Institute of Physiology, Rostock, Germany.

Biomechanics and Implant Research Lab, Department of Orthopedics, Rostock University Medical Center, Rostock, Germany.

出版信息

Front Bioeng Biotechnol. 2019 Dec 12;7:422. doi: 10.3389/fbioe.2019.00422. eCollection 2019.

Abstract

Fracture healing and bone regeneration, particularly in the elderly, remains a challenge. There is an ongoing search for methods to activate osteoblasts, and the application of electrical fields is an attractive approach in this context. Although it is known that such electromagnetic fields lead to osteoblast migration and foster mesenchymal osteogenic differentiation, so far the mechanisms of osteoblast activation remain unclear. Possible mechanisms could rely on changes in Ca-influx via ion channels, as these are known to modulate osteoblast activity, e.g., via voltage-sensitive, stretch-sensitive, transient-receptor-potential (TRP) channels, or store-operated release. In the present study, we explored whether electrical fields are able to modulate the expression of voltage-sensitive calcium channels as well as TRP channels in primary human osteoblast cell lines. We show migration speed is significantly increased in stimulated osteoblasts (6.4 ± 2.1 μm/h stimulated, 3.6 ± 1.1 μm/h control), and directed toward the anode. However, within a range of 154-445 V/m, field strength did not correlate with migration velocity. Neither was there a correlation between electric field and voltage-gated calcium channel (Ca3.2 and Ca1.4) expression. However, the expression of TRPM7 significantly correlated positively to electric field strength. TRPM7 channel blockade using NS8593, in turn, did not significantly alter migration speed, nor did blockade of Ca3.2 and Ca1.4 channels using Ni or verapamil, respectively, while a general Ca-influx block using Mg accelerated migration. Stimulating store-operated Ca-release significantly reduced migration speed, while blocking IP3 had only a minor effect (at low and high concentrations of 2-APB, respectively). We conclude that (i) store operated channels negatively modulate migration speed and that (ii) the upregulation of TRPM7 might constitute a compensatory mechanism-which might explain how increasing expression levels at increasing field strengths result in constant migration speeds.

摘要

骨折愈合和骨再生,尤其是在老年人中,仍然是一个挑战。人们一直在寻找激活成骨细胞的方法,在此背景下,电场的应用是一种有吸引力的方法。尽管已知这种电磁场会导致成骨细胞迁移并促进间充质骨生成分化,但到目前为止,成骨细胞激活的机制仍不清楚。可能的机制可能依赖于通过离子通道的钙内流变化,因为已知这些通道可调节成骨细胞活性,例如通过电压敏感、拉伸敏感、瞬时受体电位(TRP)通道或储存操作释放。在本研究中,我们探讨了电场是否能够调节原代人成骨细胞系中电压敏感钙通道以及TRP通道的表达。我们发现,受刺激的成骨细胞的迁移速度显著增加(受刺激时为6.4±2.1μm/h,对照为3.6±1.1μm/h),并且朝着阳极方向迁移。然而,在154-445V/m的范围内,场强与迁移速度无关。电场与电压门控钙通道(Ca3.2和Ca1.4)的表达之间也没有相关性。然而,TRPM7的表达与电场强度呈显著正相关。反过来,使用NS8593阻断TRPM7通道并没有显著改变迁移速度,分别使用镍或维拉帕米阻断Ca3.2和Ca1.4通道也没有显著改变迁移速度,而使用镁进行一般的钙内流阻断则加速了迁移。刺激储存操作的钙释放显著降低了迁移速度,而阻断IP3只有轻微影响(分别在2-APB的低浓度和高浓度下)。我们得出结论:(i)储存操作通道对迁移速度起负调节作用;(ii)TRPM7的上调可能构成一种补偿机制,这可能解释了在电场强度增加时表达水平增加如何导致迁移速度恒定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab96/6920109/78b9a045e6c7/fbioe-07-00422-g0001.jpg

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