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细胞压力实验装置应用文献

时间:2020-02-19      阅读:739

细胞压力仪应用文献

品牌美国flexcell ,型号:FX-5000C

美国Flexcell公司专注于细胞组织应力(牵张拉伸应力、三维水凝胶牵张拉伸应力、压应力和流体切应力等)加载刺激培养产品的设计和制造,提供*的体外细胞拉应力、压应力和流体剪切应力加载刺激与立体水凝胶支架三维细胞组织牵拉加载培养系统而*。其产品成熟度高、成功应用文献量达4000多篇,国内有包括上海交通大学、复旦大学、同济大学、上海第九医院、中科院力学所、北京大学第三医院、北航生物与医学工程学院、都医科大学、广州医科大学、南方科技大学、福建协和医院、南方医科大学近100家成功高校、医院及基础科研单位使用,无技术风险和使用风险,flexcell体外高通量细胞牵张拉伸力、压应力以及流体剪切力加载培养系统已成为细胞力学体外加载模型的黄金标准,是细胞组织力学研究者的shou选。

 FX-5000C细胞压力加载培养与实时观察系统(flexcell FX5000 Compression system)现货销售,介绍如下:

FX-5000C对各种组织,三维细胞培养物提供压力加载
计算机控制的压力加载系统,对各种组织,三维细胞培养物提供周期性的或静态的压力加载
夹在活塞和固定台之间的BioPress细胞培养板可承受正压力的大值为14磅,小值为0.1磅。
检测各种组织和细胞在压力作用下的生物化学反应,例如:软骨组织,椎间盘骨组织,肌腱组织,韧带组织,以及从肌肉,肺,心脏,血管,皮肤,肌腱,韧带,软骨和骨中分离出来的细胞。
在主机的控制下,压力传导仪内的密封阀门装置自动调节和控制压力。
活塞和固定台在BioPress细胞培养板或者StagePresser显微仪器上挤压样品。
同一程序中可以同时运行多种频率,多种振幅和多种波形
同时兼容四个独立的FlexLink压力加载和/或应力加载传导仪。
更好地控制在超低或超高压力下的波形。
频率在0.01- 5 Hz。
多种波形种类:
静态波形
正旋波形
心动波形
三角波形
矩形波形
各种特制波形

细胞压力实验装置应用文献:

[1] Baccam A, Benoni-Sviercovich A, Rocchi M, Moresi V, Seelaender M, Li Z, et al. The Mechanical Stimulation of Myotubes Counteracts the Effects of Tumor-Derived Factors Through the Modulation of the Activin/Follistatin Ratio. Frontiers in physiology. 2019;10:401.
[2] Bhattacharya MR, Bautista DM, Wu K, Haeberle H, Lumpkin EA, Julius D. Radial stretch reveals distinct populations of mechanosensitive mammalian somatosensory neurons. Proceedings of the National Academy of Sciences of the United States of America. 2008;105:20015-20.
[3] Bianchi F, George JH, Malboubi M, Jerusalem A, Thompson MS, Ye H. Engineering a uniaxial substrate-stretching device for simultaneous electrophysiological measurements and imaging of strained peripheral neurons. Medical engineering & physics. 2019;67:1-10.
[4] Boyle ST, Kular J, Nobis M, Ruszkiewicz A, Timpson P, Samuel MS. Acute compressive stress activates RHO/ROCK-mediated cellular processes. Small GTPases. 2018:1-17.
[5] Dolzani P, Assirelli E, Pulsatelli L, Meliconi R, Mariani E, Neri S. Ex vivo physiological compression of human osteoarthritis cartilage modulates cellular and matrix components. PloS one. 2019;14:e0222947.
[6] Fang B, Liu Y, Zheng D, Shan S, Wang C, Gao Y, et al. The effects of mechanical stretch on the biological characteristics of human adipose-derived stem cells. Journal of cellular and molecular medicine. 2019;23:4244-55.
[7] Friedrich O, Merten AL, Schneidereit D, Guo Y, Schurmann S, Martinac B. Stretch in Focus: 2D Inplane Cell Stretch Systems for Studies of Cardiac Mechano-Signaling. Frontiers in bioengineering and biotechnology. 2019;7:55.
[8] He YB, Liu SY, Deng SY, Kuang LP, Xu SY, Li Z, et al. Mechanical Stretch Promotes the Osteogenic Differentiation of Bone Mesenchymal Stem Cells Induced by Erythropoietin. Stem cells international. 2019;2019:1839627.
[9] Hilscher MB, Sehrawat T, Arab JP, Zeng Z, Gao J, Liu M, et al. Mechanical Stretch Increases Expression of CXCL1 in Liver Sinusoidal Endothelial Cells to Recruit Neutrophils, Generate Sinusoidal Microthombi, and Promote Portal Hypertension. Gastroenterology. 2019;157:193-209 e9.
[10] Kanzaki H, Wada S, Yamaguchi Y, Katsumata Y, Itohiya K, Fukaya S, et al. Compression and tension variably alter Osteoprotegerin expression via miR-3198 in periodontal ligament cells. BMC molecular and cell biology. 2019;20:6.
[11] Klymenko Y, Wates RB, Weiss-Bilka H, Lombard R, Liu Y, Campbell L, et al. Modeling the effect of ascites-induced compression on ovarian cancer multicellular aggregates. Disease models & mechanisms. 2018;11.
[12] Liang X, Wang Z, Gao M, Wu S, Zhang J, Liu Q, et al. Cyclic stretch induced oxidative stress by mitochondrial and NADPH oxidase in retinal pigment epithelial cells. BMC ophthalmology. 2019;19:79.
[13] Liu Y, Huang X, Yu H, Yang J, Li Y, Yuan X, et al. HIF-1alpha-TWIST pathway restrains cyclic mechanical stretch-induced osteogenic differentiation of bone marrow mesenchymal stem cells. Connective tissue research. 2019;60:544-54.
[14] Matheson LA, Fairbank NJ, Maksym GN, Paul Santerre J, Labow RS. Characterization of the Flexcell Uniflex cyclic strain culture system with U937 macrophage-like cells. Biomaterials. 2006;27:226-33.
[15] Spassov SG, Kessler C, Jost R, Schumann S. Ventilation-Like Mechanical Strain Modulates the Inflammatory Response of BEAS2B Epithelial Cells. Oxidative medicine and cellular longevity. 2019;2019:2769761.
[16] van Kelle MAJ, Khalil N, Foolen J, Loerakker S, Bouten CVC. Increased Cell Traction-Induced Prestress in Dynamically Cultured Microtissues. Frontiers in bioengineering and biotechnology. 2019;7:41.
[17] Zhang J, Xu S, Zhang Y, Zou S, Li X. Effects of equibiaxial mechanical stretch on extracellular matrix-related gene expression in human calvarial osteoblasts. European journal of oral sciences. 2019;127:10-8.

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