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Literatura académica sobre el tema "Cell mechanics, mechanical properties, biophysics, physiology"
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Artículos de revistas sobre el tema "Cell mechanics, mechanical properties, biophysics, physiology"
Wyss, Hans M., Joel M. Henderson, Fitzroy J. Byfield, Leslie A. Bruggeman, Yaxian Ding, Chunfa Huang, Jung Hee Suh et al. "Biophysical properties of normal and diseased renal glomeruli". American Journal of Physiology-Cell Physiology 300, n.º 3 (marzo de 2011): C397—C405. http://dx.doi.org/10.1152/ajpcell.00438.2010.
Texto completoKang, Min Kyeong y Jin-Won Park. "Ectoine Effect on Mechanical Properties of Vesicles in Aqueous Solution". Journal of Membrane Biology 255, n.º 1 (9 de noviembre de 2021): 55–59. http://dx.doi.org/10.1007/s00232-021-00208-8.
Texto completoPark, Jin-Won. "Ca2+-Induced Effect on Mechanical Properties of Sulfatide-Incorporated Vesicles". Journal of Membrane Biology 238, n.º 1-3 (19 de noviembre de 2010): 63–68. http://dx.doi.org/10.1007/s00232-010-9319-5.
Texto completoSoveral *, , R.I. Macey, G. "Mechanical Properties of Brush Border Membrane Vesicles from Kidney Proximal Tubule". Journal of Membrane Biology 158, n.º 3 (1 de agosto de 1997): 209–17. http://dx.doi.org/10.1007/s002329900258.
Texto completoZhou, Guoqiao, Bokai Zhang, Liyu Wei, Han Zhang, Massimiliano Galluzzi y Jiangyu Li. "Spatially Resolved Correlation between Stiffness Increase and Actin Aggregation around Nanofibers Internalized in Living Macrophages". Materials 13, n.º 14 (21 de julio de 2020): 3235. http://dx.doi.org/10.3390/ma13143235.
Texto completoWu, Li, Jie Huang, Xiaoxue Yu, Xiaoqing Zhou, Chaoye Gan, Ming Li y Yong Chen. "AFM of the Ultrastructural and Mechanical Properties of Lipid-Raft-Disrupted and/or Cold-Treated Endothelial Cells". Journal of Membrane Biology 247, n.º 2 (8 de enero de 2014): 189–200. http://dx.doi.org/10.1007/s00232-013-9624-x.
Texto completoLoewith, Robbie, Aurélien Roux y Olivier Pertz. "Chemical-Biology-derived in vivo Sensors: Past, Present, and Future". CHIMIA 75, n.º 12 (9 de diciembre de 2021): 1017. http://dx.doi.org/10.2533/chimia.2021.1017.
Texto completoChen, Cheng, Dhananjay T. Tambe, Linhong Deng y Liu Yang. "Biomechanical properties and mechanobiology of the articular chondrocyte". American Journal of Physiology-Cell Physiology 305, n.º 12 (15 de diciembre de 2013): C1202—C1208. http://dx.doi.org/10.1152/ajpcell.00242.2013.
Texto completoFay, Meredith E., David R. Myers, Amit Kumar, Rebecca Byler, Todd A. Sulchek, Michael D. Graham y Wilbur A. Lam. "White Blood Cell Mechanics Mediate Glucocorticoid- and Catecholamine-Induced Demargination". Blood 122, n.º 21 (15 de noviembre de 2013): 3459. http://dx.doi.org/10.1182/blood.v122.21.3459.3459.
Texto completoAlessandra, Galli, Marku Algerta, Marciani Paola, Schulte Carsten, Lenardi Cristina, Milani Paolo, Maffioli Elisa, Tedeschi Gabriella y Perego Carla. "Shaping Pancreatic β-Cell Differentiation and Functioning: The Influence of Mechanotransduction". Cells 9, n.º 2 (11 de febrero de 2020): 413. http://dx.doi.org/10.3390/cells9020413.
Texto completoTesis sobre el tema "Cell mechanics, mechanical properties, biophysics, physiology"
Bianchi, Giulio. "Mechanical properties of cytoskeleton proteins studied in living cells by combining optical tweezers and deformability cytometry". Doctoral thesis, Università di Siena, 2021. http://hdl.handle.net/11365/1143608.
Texto completoVan, Bergen Barry. "The effect of mechanical shear on brewing yeast /". Thesis, McGill University, 2001. http://digitool.Library.McGill.CA:80/R/?func=dbin-jump-full&object_id=33036.
Texto completoIt was found that yeast cells grown anaerobically in limited glucose media were more prone to losses in cell viability than cells grown aerobically in the same media, when subjected to mechanical shear. Cells grown anaerobically in high glucose concentrations and allowed to ferment the media to exhaustion were slightly more resistant to mechanical shear compared to cells grown anaerobically without fermentation in minimal glucose media. Higher ethanol concentrations lead to marginally decreased resistance to mechanical shear.
Cell walls of S. cerevisiae were partially digested or extracted using enzymatic treatment or chemical attack. It was found that while the outer mannoprotein layer does not contribute significantly, the inner beta-(1 → 3)-glucan structure plays a significant role in resistance to mechanical shear.
Wang, Shuyuan. "Mathematically Modeling the Mechanics of Cell Division". Thesis, 2018. https://doi.org/10.7916/D8G74S6H.
Texto completoEchelman, Daniel Jay. "Mechanics of Gram-positive bacterial cell adhesion". Thesis, 2018. https://doi.org/10.7916/D8PZ6SQ3.
Texto completoLibros sobre el tema "Cell mechanics, mechanical properties, biophysics, physiology"
Hayden, Huang y Kwon Ronald Y, eds. Introduction to cell mechanics and mechanobiology. New York: Garland Science, 2013.
Buscar texto completoArnaud, Chauvière, Preziosi Luigi y Verdier Claude 1962-, eds. Cell mechanics: From single scale-based models to multiscale modeling. Boca Raton: Chapman & Hall/CRC, 2009.
Buscar texto completoArnaud, Chauvière, Preziosi Luigi y Verdier Claude, eds. Cell mechanics: From single scale-based models to multiscale modeling. Boca Raton: Chapman & Hall/CRC, 2009.
Buscar texto completoLuigi, Preziosi y Verdier Claude, eds. Cell mechanics: From single scale-based models to multiscale modeling. Boca Raton: Chapman & Hall/CRC, 2009.
Buscar texto completoservice), SpringerLink (Online, ed. Cochlear Mechanics: Introduction to a Time Domain Analysis of the Nonlinear Cochlea. Boston, MA: Springer US, 2012.
Buscar texto completoLelkes, Peter y Michael A. GimbroneJr. Mechanical Forces and the Endothelium (Endothelial Cell Research Series). CRC, 1999.
Buscar texto completoVerdier, Claude, Luigi Preziosi y Arnaud Chauvière. Cell Mechanics. Taylor & Francis Group, 2019.
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