A delayed type of three-dimensional growth of human endothelial cells under simulated weightlessness.
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Kriss Westphal | Martin Paul | Sonia Vadrucci | Daniela Grimm | Johann Bauer | Jessica Pietsch | Manfred Infanger | Sarah Baatout | D. Grimm | S. Baatout | M. Paul | M. Infanger | S. Vadrucci | J. Bauer | P. Kossmehl | J. Pietsch | C. Ulbrich | Burkhard Flick | Claudia Ulbrich | Peter Kossmehl | B. Flick | Kriss Westphal
[1] Marina V Skok,et al. The effect of simulated microgravity on hybridoma cells. , 2005, Acta astronautica.
[2] D. Grimm,et al. Effects of PTK787/ZK222584, a tyrosine kinase inhibitor, on the growth of a poorly differentiated thyroid carcinoma: an animal study. , 2004, Endocrinology.
[3] H. Kleinman,et al. Identification of laminin α1 and β1 chain peptides active for endothelial cell adhesion, tube formation, and aortic sprouting , 1999 .
[4] H. Masuda,et al. Post-natal endothelial progenitor cells for neovascularization in tissue regeneration. , 2003, Cardiovascular research.
[5] P. Lelkes,et al. Real-time assessment of three-dimensional cell aggregation in rotating wall vessel bioreactors in vitro , 2006, Nature Protocols.
[6] Douglas Hanahan,et al. Signaling Vascular Morphogenesis and Maintenance , 1997, Science.
[7] Franco Fusi,et al. Simulated hypogravity impairs the angiogenic response of endothelium by up-regulating apoptotic signals. , 2005, Biochemical and biophysical research communications.
[8] M. Shakibaei,et al. Simulated weightlessness changes the cytoskeleton and extracellular matrix proteins in papillary thyroid carcinoma cells , 2006, Cell and Tissue Research.
[9] J. Maier,et al. Impact of modeled microgravity on microvascular endothelial cells. , 2005, Biochimica et biophysica acta.
[10] C. Edgell,et al. Permanent cell line expressing human factor VIII-related antigen established by hybridization. , 1983, Proceedings of the National Academy of Sciences of the United States of America.
[11] DW Hutmacher,et al. Concepts of scaffold-based tissue engineering—the rationale to use solid free-form fabrication techniques , 2007, Journal of cellular and molecular medicine.
[12] M. Krasnow,et al. Tube Morphogenesis Making and Shaping Biological Tubes , 2003, Cell.
[13] M. Mariani,et al. Ions and water transmembrane transport in nervous and testicular cultured cells in low gravity conditions , 2006 .
[14] M. L. Marquette,et al. A novel in vitro three-dimensional skeletal muscle model , 2007, In Vitro Cellular & Developmental Biology - Animal.
[15] A. Finazzi-Agro’,et al. Creating conditions similar to those that occur during exposure of cells to microgravity induces apoptosis in human lymphocytes by 5‐lipoxygenase‐mediated mitochondrial uncoupling and cytochrome c release , 2003, Journal of leukocyte biology.
[16] M. Shakibaei,et al. Induction of three-dimensional assembly and increase in apoptosis of human endothelial cells by simulated microgravity: Impact of vascular endothelial growth factor , 2006, Apoptosis.
[17] M Hughes-Fulford,et al. Function of the cytoskeleton in gravisensing during spaceflight. , 2003, Advances in space research : the official journal of the Committee on Space Research.
[18] Li Duo,et al. A novel bioartificial liver with culture of porcine hepatocyte aggregates under simulated microgravity. , 2005, Artificial organs.
[19] H. Akiyama,et al. Microgravity Signal Ensnarls Cell Adhesion, Cytoskeleton, and Matrix Proteins of Rat Osteoblasts , 2006, Annals of the New York Academy of Sciences.
[20] A. Cogoli,et al. The use of the random positioning machine for the study of gravitational effects on signal transduction in mammalian cells , 2006 .
[21] George E. Davis,et al. Endothelial tubes assemble from intracellular vacuoles in vivo , 2006, Nature.
[22] Gary L. Sanford,et al. Three-dimensional growth of endothelial cells in the microgravity-based rotating wall vessel bioreactor , 2002, In Vitro Cellular & Developmental Biology - Animal.
[23] Augusto Cogoli,et al. Effects of basic fibroblast growth factor on endothelial cells under conditions of simulated microgravity , 2008, Journal of cellular biochemistry.
[24] A Cogoli,et al. Key gravity‐sensitive signaling pathways drive T‐cell activation , 2005, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[25] G. Schulze-Tanzil,et al. Simulated microgravity alters differentiation and increases apoptosis in human follicular thyroid carcinoma cells , 2002, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[26] J. Maier,et al. Endothelial stress by gravitational unloading: effects on cell growth and cytoskeletal organization. , 2003, Biochimica et biophysica acta.
[27] Yoshio Masuda,et al. Changes in plant growth processes under microgravity conditions simulated by a three-dimensional clinostat , 1992, The botanical magazine = Shokubutsu-gaku-zasshi.
[28] M. Engelse,et al. Differential gene expression analysis of tubule forming and non-tubule forming endothelial cells: CDC42GAP as a counter-regulator in tubule formation , 2007, Angiogenesis.
[29] C. Blobel,et al. Remarkable roles of proteolysis on and beyond the cell surface. , 2000, Current opinion in cell biology.
[30] Jack J. W. A. van Loon,et al. Some history and use of the random positioning machine, RPM, in gravity related research , 2007 .
[31] M. Detmar,et al. Angiogenesis promoted by vascular endothelial growth factor: regulation through alpha1beta1 and alpha2beta1 integrins. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[32] W. Carter,et al. Endothelial cells use alpha 2 beta 1 integrin as a laminin receptor , 1989, The Journal of cell biology.
[33] Mario Passalacqua,et al. Clinorotation-induced weightlessness influences the cytoskeleton of glial cells in culture , 2002, Brain Research.
[34] R. Braren,et al. Cell-autonomous requirement for β1 integrin in endothelial cell adhesion, migration and survival during angiogenesis in mice , 2008, Development.
[35] P. Carmeliet. Mechanisms of angiogenesis and arteriogenesis , 2000, Nature Medicine.
[36] P. Sanberg,et al. Formation of Sertoli Cell‐Enriched Tissue Constructs Utilizing Simulated Microgravity Technology , 2001, Annals of the New York Academy of Sciences.
[37] G. Davis,et al. Biosynthesis, Remodeling, and Functions During Vascular Morphogenesis and Neovessel Stabilization , 2005 .
[38] G. Schulze-Tanzil,et al. Weightlessness induced apoptosis in normal thyroid cells and papillary thyroid carcinoma cells via extrinsic and intrinsic pathways. , 2003, Endocrinology.
[39] V. V. van Hinsbergh,et al. Cooperative effect of TNFalpha, bFGF, and VEGF on the formation of tubular structures of human microvascular endothelial cells in a fibrin matrix. Role of urokinase activity , 1996, The Journal of cell biology.
[40] A. Cogoli,et al. Modeled gravitational unloading induced downregulation of endothelin‐1 in human endothelial cells , 2007, Journal of cellular biochemistry.
[41] R. Soriano,et al. Branching Out: A Molecular Fingerprint of Endothelial Differentiation into Tube‐Like Structures Generated by Affymetrix Oligonucleotide Arrays , 2003, Microcirculation.
[42] H. Schunkert,et al. Regulation of extracellular matrix proteins in pressure‐overload cardiac hypertrophy: effects of angiotensin converting enzyme inhibition , 1998, Journal of hypertension.
[43] M. Paglierani,et al. Modeled gravitational unloading triggers differentiation and apoptosis in preosteoclastic cells , 2006, Journal of cellular biochemistry.
[44] G. Galleri,et al. Caveolae and caveolae constituents in mechanosensing , 2007, Cell Biochemistry and Biophysics.
[45] L Buravkova,et al. Cell-to-cell interactions in changed gravity: ground-based and flight experiments. , 2005, Acta astronautica.
[46] J. Jansen,et al. The effect of combined simulated microgravity and microgrooved surface topography on fibroblasts. , 2007, Cell motility and the cytoskeleton.