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机械敏感的瞬时受体电位阳离子通道M7(TRPM7)介导剪切应力,并通过osterix途径调节间充质基质细胞的成骨分化。

Mechanosensitive TRPM7 mediates shear stress and modulates osteogenic differentiation of mesenchymal stromal cells through Osterix pathway.

作者信息

Liu Yi-Shiuan, Liu Yu-An, Huang Chin-Jing, Yen Meng-Hua, Tseng Chien-Tzu, Chien Shu, Lee Oscar K

机构信息

Stem Cell Research Center, National Yang-Ming University, Taipei 11221, Taiwan.

Institute of Engineering in Medicine, University of California at San Diego, La Jolla, CA 92093, USA.

出版信息

Sci Rep. 2015 Nov 12;5:16522. doi: 10.1038/srep16522.

Abstract

Microenvironments that modulate fate commitments of mesenchymal stromal cells (MSCs) are composed of chemical and physical cues, but the latter ones are much less investigated. Here we demonstrate that intermittent fluid shear stress (IFSS), a potent and physiologically relevant mechanical stimulus, regulates osteogenic differentiation of MSCs through Transient receptor potential melastatin 7 (TRPM7)-Osterix axis. Immunostaining showed the localization of TRPM7 near or at cell membrane upon IFSS, and calcium imaging analysis demonstrated the transient increase of cytosolic free calcium. Expressions of osteogenic marker genes including Osterix, but not Runx2, were upregulated after three-hour IFSS. Phosphorylation of p38 and Smad1/5 was promoted by IFSS as well. TRPM7 gene knockdown abolished the promotion of bone-related gene expressions and phosphorylation. We illustrate that TRPM7 is mechanosensitive to shear force of 1.2 Pa, which is much lower than 98 Pa pressure loading reported recently, and mediates distinct mechanotransduction pathways. Additionally, our results suggest the differential roles of TRPM7 in endochondral and intramembranous ossification. Together, this study elucidates the mechanotransduction in MSCs fate commitments and displays an efficient mechano-modulation for MSCs osteogenic differentiation. Such findings should be taken into consideration when designing relevant scaffolds and microfluidic devices for osteogenic induction in the future.

摘要

调节间充质基质细胞(MSC)命运承诺的微环境由化学和物理信号组成,但后者的研究要少得多。在这里,我们证明间歇性流体剪切应力(IFSS)是一种强大且与生理相关的机械刺激,它通过瞬时受体电位褪黑素7(TRPM7)-成骨转录因子轴调节MSC的成骨分化。免疫染色显示在IFSS作用下TRPM7定位于细胞膜附近或细胞膜上,钙成像分析表明胞质游离钙短暂增加。三小时的IFSS后,包括成骨转录因子在内的成骨标记基因的表达上调,但Runx2未上调。IFSS也促进了p38和Smad1/5的磷酸化。TRPM7基因敲低消除了对骨相关基因表达和磷酸化的促进作用。我们表明TRPM7对1.2 Pa的剪切力具有机械敏感性,这远低于最近报道的98 Pa压力负荷,并介导不同的机械转导途径。此外,我们的结果表明TRPM7在软骨内成骨和膜内成骨中具有不同的作用。总之,本研究阐明了MSC命运承诺中的机械转导,并展示了对MSC成骨分化的有效机械调节。在未来设计用于成骨诱导的相关支架和微流控装置时,应考虑这些发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a75/4642269/437e7bac699e/srep16522-f1.jpg

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