Microfluidic devices for studying chemotaxis and electrotaxis.
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Francis Lin | Jing Li | F. Lin | Jing Li
[1] M. S. Cooper,et al. Perpendicular orientation and directional migration of amphibian neural crest cells in dc electrical fields. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[2] Jin Pu,et al. Golgi polarization in a strong electric field , 2005, Journal of Cell Science.
[3] R. Nuccitelli. Physiological Electric Fields can Influence Cell Motility, Growth, and Polarity , 1988 .
[4] Pablo A. Iglesias,et al. MAPK-mediated bimodal gene expression and adaptive gradient sensing in yeast , 2007, Nature.
[5] M. Félix,et al. The natural history of Caenorhabditis elegans , 2010, Current Biology.
[6] G. Borisy,et al. Cell Migration: Integrating Signals from Front to Back , 2003, Science.
[7] Benoit Ladoux,et al. Running Worms: C. elegans Self-Sorting by Electrotaxis , 2011, PloS one.
[8] Richard A. Firtel,et al. Spatial and Temporal Regulation of 3-Phosphoinositides by PI 3-Kinase and PTEN Mediates Chemotaxis , 2002, Cell.
[9] D. Fletcher,et al. An introduction to cell motility for the physical scientist , 2004, Physical biology.
[10] J. Forrester,et al. Directed migration of corneal epithelial sheets in physiological electric fields. , 1996, Investigative ophthalmology & visual science.
[11] Min Zhao,et al. Effects of physiological electric fields on migration of human dermal fibroblasts. , 2010, The Journal of investigative dermatology.
[12] F. Lin. Chapter 15 A Microfluidics‐Based Method for Analyzing Leukocyte Migration to Chemoattractant Gradients , 2009 .
[13] Meng-Hua Yen,et al. Electrotaxis of lung cancer cells in a multiple-electric-field chip. , 2009, Biosensors & bioelectronics.
[14] G. Dunn,et al. Analyzing chemotaxis using the Dunn direct-viewing chamber. , 1997, Methods in molecular biology.
[15] John Kolega,et al. Effects of Direct Current Electric Fields on Cell Migration and Actin Filament Distribution in Bovine Vascular Endothelial Cells , 2002, Journal of Vascular Research.
[16] Mehmet Toner,et al. Microfluidic system for measuring neutrophil migratory responses to fast switches of chemical gradients. , 2006, Lab on a chip.
[17] James J. Campbell,et al. Multistep Navigation and the Combinatorial Control of Leukocyte Chemotaxis , 1997, The Journal of cell biology.
[18] Alan Hall,et al. Cellular responses to extracellular guidance cues , 2010, The EMBO journal.
[19] G. Whitesides,et al. Neutrophil chemotaxis in linear and complex gradients of interleukin-8 formed in a microfabricated device , 2002, Nature Biotechnology.
[20] Xiaolong Yan,et al. Lung cancer A549 cells migrate directionally in DC electric fields with polarized and activated EGFRs , 2009, Bioelectromagnetics.
[21] S. Hui,et al. A calcium requirement for electric field-induced cell shape changes and preferential orientation. , 1985, Cell calcium.
[22] R. Isseroff,et al. Imposition of a physiologic DC electric field alters the migratory response of human keratinocytes on extracellular matrix molecules. , 1996, The Journal of investigative dermatology.
[23] R. Alon,et al. Immune cell migration in inflammation: present and future therapeutic targets , 2005, Nature Immunology.
[24] J. Harlan,et al. Targeting leukocyte integrins in human diseases , 2005, Journal of leukocyte biology.
[25] J. Forrester,et al. Electrical estimulation of retinal pigment epithelial cells. , 2010, Experimental eye research.
[26] David J Beebe,et al. Characterization of a membrane-based gradient generator for use in cell-signaling studies. , 2006, Lab on a chip.
[27] J. Santiago,et al. Effects of carbon dioxide on peak mode isotachophoresis: simultaneous preconcentration and separation. , 2009, Lab on a chip.
[28] Francis Lin,et al. Generation of dynamic temporal and spatial concentration gradients using microfluidic devices. , 2004, Lab on a chip.
[29] F. Gage,et al. PI3K mediated electrotaxis of embryonic and adult neural progenitor cells in the presence of growth factors , 2011, Experimental Neurology.
[30] M. Baggiolini. Chemokines and leukocyte traffic , 1998, Nature.
[31] Ju-Ping Lai,et al. Phosphatase and tensin homologue deleted on chromosome ten (PTEN) as a molecular target in lung epithelial wound repair , 2007, British journal of pharmacology.
[32] Min Zhao,et al. Electrical signals polarize neuronal organelles, direct neuron migration, and orient cell division , 2009, Hippocampus.
[33] Min Zhao,et al. Application of direct current electric fields to cells and tissues in vitro and modulation of wound electric field in vivo , 2006, Nature Protocols.
[34] M. Messerli,et al. Left/right, up/down: The role of endogenous electrical fields as directional signals in development, repair and invasion , 2003, BioEssays : news and reviews in molecular, cellular and developmental biology.
[35] T. Mcclanahan,et al. Involvement of chemokine receptors in breast cancer metastasis , 2001, Nature.
[36] Shur-Jen Wang,et al. Effective neutrophil chemotaxis is strongly influenced by mean IL-8 concentration. , 2004, Biochemical and biophysical research communications.
[37] B. Chung,et al. A microfluidic multi-injector for gradient generation. , 2006, Lab on a chip.
[38] Miguel Vicente-Manzanares,et al. Cell migration at a glance , 2005, Journal of Cell Science.
[39] S. Colowick,et al. Methods in Enzymology , Vol , 1966 .
[40] Pouya Rezai,et al. Electrotaxis of Caenorhabditis elegans in a microfluidic environment. , 2010, Lab on a chip.
[41] J V Forrester,et al. Orientation and directed migration of cultured corneal epithelial cells in small electric fields are serum dependent. , 1996, Journal of cell science.
[42] R. Kamm,et al. Cell migration into scaffolds under co-culture conditions in a microfluidic platform. , 2009, Lab on a chip.
[43] H. K. Soong,et al. Galvanotropic and galvanotaxic responses of corneal endothelial cells. , 1996, Journal of the Formosan Medical Association = Taiwan yi zhi.
[44] A. Lee,et al. Engineering microscale cellular niches for three-dimensional multicellular co-cultures. , 2009, Lab on a chip.
[45] Z. Madeja,et al. Directional movement of rat prostate cancer cells in direct-current electric field: involvement of voltagegated Na+ channel activity. , 2001, Journal of cell science.
[46] Xuehua Xu,et al. Chemotaxis, chemokine receptors and human disease. , 2008, Cytokine.
[47] Y Dan,et al. Asymmetric modulation of cytosolic cAMP activity induces growth cone turning , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[48] D. MacEwan,et al. Influx of extracellular Ca2+ is necessary for electrotaxis in Dictyostelium , 2006, Journal of Cell Science.
[49] Min Zhao,et al. Electrical fields in wound healing-An overriding signal that directs cell migration. , 2009, Seminars in cell & developmental biology.
[50] R. Simmons,et al. Chemotaxis under agarose: a new and simple method for measuring chemotaxis and spontaneous migration of human polymorphonuclear leukocytes and monocytes. , 1975, Journal of immunology.
[51] Min Zhao,et al. Electrical signals control wound healing through phosphatidylinositol-3-OH kinase-γ and PTEN , 2006, Nature.
[52] Fritz B Prinz,et al. In vitro effects of direct current electric fields on adipose-derived stromal cells. , 2010, Biochemical and biophysical research communications.
[53] J. Forrester,et al. Human corneal epithelial cells reorient and migrate cathodally in a small applied electric field. , 1997, Current eye research.
[54] Mehmet Toner,et al. Directional decisions during neutrophil chemotaxis inside bifurcating channels. , 2010, Integrative biology : quantitative biosciences from nano to macro.
[55] F. Chang,et al. Electrical Control of Cell Polarization in the Fission Yeast Schizosaccharomyces pombe , 2010, Current Biology.
[56] P. Barnes,et al. Neutrophil chemotactic activity of sputum from patients with COPD: role of interleukin 8 and leukotriene B4. , 2003, Chest.
[57] Min Zhao,et al. Controlling cell behavior electrically: current views and future potential. , 2005, Physiological reviews.
[58] N. Jeon,et al. Biological applications of microfluidic gradient devices. , 2010, Integrative biology : quantitative biosciences from nano to macro.
[59] D. Irimia. Microfluidic technologies for temporal perturbations of chemotaxis. , 2010, Annual review of biomedical engineering.
[60] Francis Lin,et al. Lymphocyte Electrotaxis In Vitro and In Vivo1 , 2008, The Journal of Immunology.
[61] Maria E. Mycielska,et al. Cellular mechanisms of direct-current electric field effects: galvanotaxis and metastatic disease , 2004, Journal of Cell Science.
[62] Francis Lin,et al. Neutrophil Migration in Opposing Chemoattractant Gradients Using Microfluidic Chemotaxis Devices , 2005, Annals of Biomedical Engineering.
[63] Masayuki J. Sato,et al. Switching direction in electric-signal-induced cell migration by cyclic guanosine monophosphate and phosphatidylinositol signaling , 2009, Proceedings of the National Academy of Sciences.
[64] M. Zhao,et al. PTEN: a promising pharmacological target to enhance epithelial wound healing , 2007, British journal of pharmacology.
[65] Min Zhao,et al. Regulation of tissue repair and regeneration by electric fields. , 2010, Chinese journal of traumatology = Zhonghua chuang shang za zhi.
[66] J V Forrester,et al. Electric field-directed cell motility involves up-regulated expression and asymmetric redistribution of the epidermal growth factor receptors and is enhanced by fibronectin and laminin. , 1999, Molecular biology of the cell.
[67] Ann Richmond,et al. Role of chemokines in tumor growth. , 2007, Cancer letters.
[68] Qing Nie,et al. Robust Spatial Sensing of Mating Pheromone Gradients by Yeast Cells , 2008, PloS one.
[69] K. Hotary,et al. Endogenous electrical currents and the resultant voltage gradients in the chick embryo. , 1990, Developmental biology.
[70] S. Boyden. THE CHEMOTACTIC EFFECT OF MIXTURES OF ANTIBODY AND ANTIGEN ON POLYMORPHONUCLEAR LEUCOCYTES , 1962, The Journal of experimental medicine.
[71] E. Butcher,et al. Chemokines in tissue-specific and microenvironment-specific lymphocyte homing. , 2000, Current opinion in immunology.
[72] R. Nuccitelli,et al. Calcium channel blockers inhibit galvanotaxis in human keratinocytes , 2002, Journal of cellular physiology.
[73] A. Arcaro,et al. Targeting phosphoinositide 3-kinase signalling in lung cancer. , 2011, Critical reviews in oncology/hematology.
[74] Howard C. Berg,et al. On Torque and Tumbling in Swimming Escherichia coli , 2006, Journal of bacteriology.
[75] Arul Jayaraman,et al. Investigation of bacterial chemotaxis in flow-based microfluidic devices , 2010, Nature Protocols.
[76] Xingyu Jiang,et al. In vitro model on glass surfaces for complex interactions between different types of cells. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[77] E. Butcher,et al. T cell chemotaxis in a simple microfluidic device. , 2006, Lab on a chip.
[78] H. Gruler,et al. Galvanotaxis of human granulocytes: electric field jump studies , 2004, European Biophysics Journal.
[79] Zigmond Sh. Ability of polymorphonuclear leukocytes to orient in gradients of chemotactic factors. , 1977 .
[80] Shur-Jen Wang,et al. A parallel-gradient microfluidic chamber for quantitative analysis of breast cancer cell chemotaxis , 2006, Biomedical microdevices.
[81] J. Forrester,et al. Nerve regeneration and wound healing are stimulated and directed by an endogenous electrical field in vivo , 2004, Journal of Cell Science.
[82] D. Thomson,et al. Activated T lymphocytes migrate toward the cathode of DC electric fields in microfluidic devices. , 2011, Lab on a chip.
[83] Chia-Fu Chou,et al. Asymmetric cancer-cell filopodium growth induced by electric-fields in a microfluidic culture chip. , 2011, Lab on a chip.
[84] Tomonobu M. Watanabe,et al. Input-output relationship in galvanotactic response of Dictyostelium cells , 2007, Biosyst..
[85] K. Hotary,et al. Endogenous electrical currents and voltage gradients in Xenopus embryos and the consequences of their disruption. , 1994, Developmental biology.
[86] Christopher A Hunter,et al. Dendritic Cells Distinguish Individual Chemokine Signals through CCR7 and CXCR4 , 2011, The Journal of Immunology.
[87] Min Zhao,et al. Electrical stimulation directly induces pre-angiogenic responses in vascular endothelial cells by signaling through VEGF receptors , 2003, Journal of Cell Science.