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本文引用的文献

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Mechanosensitivity and compositional dynamics of cell-matrix adhesions.细胞-基质黏附的机械敏感性和组成动态。
EMBO Rep. 2013 Jun;14(6):509-19. doi: 10.1038/embor.2013.49. Epub 2013 May 17.
2
Microgravity induces pelvic bone loss through osteoclastic activity, osteocytic osteolysis, and osteoblastic cell cycle inhibition by CDKN1a/p21.微重力通过破骨细胞活性、骨细胞性骨溶解以及 CDKN1a/p21 抑制成骨细胞细胞周期导致骨盆骨丢失。
PLoS One. 2013 Apr 18;8(4):e61372. doi: 10.1371/journal.pone.0061372. Print 2013.
3
The TBC/RabGAP Armus coordinates Rac1 and Rab7 functions during autophagy.TBC/RabGAP Armus 在自噬过程中协调 Rac1 和 Rab7 的功能。
Dev Cell. 2013 Apr 15;25(1):15-28. doi: 10.1016/j.devcel.2013.03.005. Epub 2013 Apr 4.
4
The antagonistic roles of PDGF and integrin αvβ3 in regulating ROS production at focal adhesions.血小板衍生生长因子(PDGF)和整合素αvβ3 在调节黏着斑处活性氧(ROS)产生方面的拮抗作用。
Biomaterials. 2013 May;34(15):3807-15. doi: 10.1016/j.biomaterials.2013.01.092. Epub 2013 Mar 7.
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Rho family GTPases.Rho 家族 GTP 酶。
Biochem Soc Trans. 2012 Dec 1;40(6):1378-82. doi: 10.1042/BST20120103.
6
Enhancing integrin function by VEGF/neuropilin signaling: implications for tumor biology.通过 VEGF/neuropilin 信号增强整合素功能:对肿瘤生物学的影响。
Cell Adh Migr. 2012 Nov-Dec;6(6):554-60. doi: 10.4161/cam.22419. Epub 2012 Oct 17.
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Redox regulation of Ras and Rho GTPases: mechanism and function.氧化还原调节 Ras 和 Rho GTPases:机制与功能。
Antioxid Redox Signal. 2013 Jan 20;18(3):250-8. doi: 10.1089/ars.2012.4687. Epub 2012 Jul 30.
8
Mechanisms of gravitational sensitivity of osteogenic precursor cells.成骨前体细胞对重力的敏感性的机制。
Acta Naturae. 2010 Apr;2(1):28-36.
9
Treatment of hydrogen molecule abates oxidative stress and alleviates bone loss induced by modeled microgravity in rats.处理氢分子可减轻模拟微重力引起的大鼠氧化应激和骨丢失。
Osteoporos Int. 2013 Mar;24(3):969-78. doi: 10.1007/s00198-012-2028-4. Epub 2012 May 31.
10
Effects of microgravity on osteoclast bone resorption and osteoblast cytoskeletal organization and adhesion.微重力对破骨细胞骨吸收和成骨细胞细胞骨架组织和黏附的影响。
Bone. 2011 Nov;49(5):965-74. doi: 10.1016/j.bone.2011.07.036. Epub 2011 Aug 2.

Rac1 GTP酶沉默可抵消微重力对成骨细胞的影响。

Rac1 GTPase silencing counteracts microgravity-induced effects on osteoblastic cells.

作者信息

Guignandon Alain, Faure Céline, Neutelings Thibaut, Rattner Aline, Mineur Pierre, Linossier Marie-Thérèse, Laroche Norbert, Lambert Charles, Deroanne Christophe, Nusgens Betty, Demets René, Colige Alain, Vico Laurence

机构信息

Institute National de la Santé et de la Recherche Médicale (INSERM), Unité 1059, Laboratoire de Biologie Intégrée du Tissu Osseux, Université de Lyon, St-Etienne, France;

Laboratory of Connective Tissues Biology, Groupe Interdisciplinaire de Génoprotéomique Appliqué (GIGA), Université de Liège, Sart Tilman, Belgium; and.

出版信息

FASEB J. 2014 Sep;28(9):4077-87. doi: 10.1096/fj.14-249714. Epub 2014 Jun 5.

DOI:10.1096/fj.14-249714
PMID:24903274
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5395736/
Abstract

Bone cells exposed to real microgravity display alterations of their cytoskeleton and focal adhesions, two major mechanosensitive structures. These structures are controlled by small GTPases of the Ras homology (Rho) family. We investigated the effects of RhoA, Rac1, and Cdc42 modulation of osteoblastic cells under microgravity conditions. Human MG-63 osteoblast-like cells silenced for RhoGTPases were cultured in the automated Biobox bioreactor (European Space Agency) aboard the Foton M3 satellite and compared to replicate ground-based controls. The cells were fixed after 69 h of microgravity exposure for postflight analysis of focal contacts, F-actin polymerization, vascular endothelial growth factor (VEGF) expression, and matrix targeting. We found that RhoA silencing did not affect sensitivity to microgravity but that Rac1 and, to a lesser extent, Cdc42 abrogation was particularly efficient in counteracting the spaceflight-related reduction of the number of focal contacts [-50% in silenced, scrambled (SiScr) controls vs. -15% for SiRac1], the number of F-actin fibers (-60% in SiScr controls vs. -10% for SiRac1), and the depletion of matrix-bound VEGF (-40% in SiScr controls vs. -8% for SiRac1). Collectively, these data point out the role of the VEGF/Rho GTPase axis in mechanosensing and validate Rac1-mediated signaling pathways as potential targets for counteracting microgravity effects.

摘要

暴露于真实微重力环境下的骨细胞会显示出其细胞骨架和黏着斑的改变,这是两种主要的机械敏感结构。这些结构受Ras同源(Rho)家族的小GTP酶控制。我们研究了在微重力条件下RhoA、Rac1和Cdc42对成骨细胞的调节作用。将沉默了RhoGTP酶的人MG-63成骨样细胞在“光子M3”卫星搭载的自动生物盒生物反应器(欧洲航天局)中培养,并与地面重复对照进行比较。在暴露于微重力69小时后将细胞固定,以便对飞行后黏着斑、F-肌动蛋白聚合、血管内皮生长因子(VEGF)表达和基质靶向进行分析。我们发现,RhoA沉默不影响对微重力的敏感性,但Rac1沉默以及程度较轻的Cdc42沉默在抵消与太空飞行相关的黏着斑数量减少方面特别有效(沉默、乱序对照中减少50%,而SiRac1为减少15%)、F-肌动蛋白纤维数量(SiScr对照中减少60%,而SiRac1为减少10%)以及基质结合VEGF的减少(SiScr对照中减少40%,而SiRac1为减少8%)。总体而言,这些数据指出了VEGF/Rho GTP酶轴在机械传感中的作用,并验证了Rac1介导的信号通路作为抵消微重力效应的潜在靶点。