PDMS Microdevices: Microfluidics
Bibliographic References tagged with PDMS Microdevices: Microfluidics
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D. A. Bruzewicz, A. P. McGuigan, and G. M. Whitesides. 2008. “Fabrication of a Modular Tissue in a Microfluidic Chip”. LOC, 8, Pp. 663-71
D. A. Bruzewicz, A. P. McGuigan, and G. M. Whitesides. 2008. “Fabrication of a Modular Tissue in a Microfluidic Chip”. LOC, 8, Pp. 663-71
A. J. You, R. J. Jackman, G. M. Whitesides, and S. L. Schreiber. 1997. “A Miniaturized Arrayed Assay Format for Detecting Small Molecule-Protein Interactions in Cells”. Chemistry and Biology, 4, Pp. 969-75
A. J. You, R. J. Jackman, G. M. Whitesides, and S. L. Schreiber. 1997. “A Miniaturized Arrayed Assay Format for Detecting Small Molecule-Protein Interactions in Cells”. Chemistry and Biology, 4, Pp. 969-75
M. Mrksich, L. E. Dike, J. Tien, D. E. Ingber, and G. M. Whitesides. 1997. “Using Microcontact Printing to Pattern the Attachment of Mammalian Cells to Self-Assembled Monolayers of Alkanethiolates on Transparent Films of Gold and Silver”. Experimental Cell Research, 235, Pp. 305-13
M. Mrksich, L. E. Dike, J. Tien, D. E. Ingber, and G. M. Whitesides. 1997. “Using Microcontact Printing to Pattern the Attachment of Mammalian Cells to Self-Assembled Monolayers of Alkanethiolates on Transparent Films of Gold and Silver”. Experimental Cell Research, 235, Pp. 305-13
S. Takayama, J. C. McDonald, E. Ostuni, M. N. Liang, P. J. A. Kenis, R. F. Ismagilov, and G. M. Whitesides. 1999. “Patterning Cells and Their Environments Using Multiple Laminar Fluid Flows in Capillary Networks”. Proc. Natl. Acad. Sci. USA, 96, Pp. 5545-48
S. Takayama, J. C. McDonald, E. Ostuni, M. N. Liang, P. J. A. Kenis, R. F. Ismagilov, and G. M. Whitesides. 1999. “Patterning Cells and Their Environments Using Multiple Laminar Fluid Flows in Capillary Networks”. Proc. Natl. Acad. Sci. USA, 96, Pp. 5545-48
D. B. Weibel and G. M. Whitesides. 2006. “Applications of Microfluidics in Chemical Biology”. Current Opinion in Chemical Biology, 10, Pp. 584-91
D. B. Weibel and G. M. Whitesides. 2006. “Applications of Microfluidics in Chemical Biology”. Current Opinion in Chemical Biology, 10, Pp. 584-91
X. E. Guo, E. Takai, X. Jiang, G. M. Whitesides, J. T. Yardley, C. T. Hung, E. Chow, and K. D. Costa. 2006. “Intracellular Calcium Waves in Bone Cell Networks Under Single Cell Nanoindentation”. MCB, 3, Pp. 95-107
X. E. Guo, E. Takai, X. Jiang, G. M. Whitesides, J. T. Yardley, C. T. Hung, E. Chow, and K. D. Costa. 2006. “Intracellular Calcium Waves in Bone Cell Networks Under Single Cell Nanoindentation”. MCB, 3, Pp. 95-107
D. B. Weibel, W. R. DiLuzio, and G. M. Whitesides. 2007. “Microfabrication Meets Microbiology”. Nature Reviews Microbiology, 5, Pp. 209-18
D. B. Weibel, W. R. DiLuzio, and G. M. Whitesides. 2007. “Microfabrication Meets Microbiology”. Nature Reviews Microbiology, 5, Pp. 209-18
X. Jiang, S. Takayama, R. G. Chapman, R. S. Kane, and G. M. Whitesides. 2007. “Micro-Scale Patterning of Cells and Their Environment”. In Principles of Tissue Engineering, edited by R. Lanza, R. Langer, and J. Vacanti, 3rd Edition, ch. 19:Pp. 265-78. Elsevier Academic Press
X. Jiang, S. Takayama, R. G. Chapman, R. S. Kane, and G. M. Whitesides. 2007. “Micro-Scale Patterning of Cells and Their Environment”. In Principles of Tissue Engineering, edited by R. Lanza, R. Langer, and J. Vacanti, 3rd Edition, ch. 19:Pp. 265-78. Elsevier Academic Press
S. E. Hulme, S. S. Shevkoplyas, J. Apfeld, W. Fontana, and G. M. Whitesides. 2007. “A Microfabricated Array of Clamps for Immobilizing and Imaging C. Elegans”. LOC, 7, Pp. 1515-23
S. E. Hulme, S. S. Shevkoplyas, J. Apfeld, W. Fontana, and G. M. Whitesides. 2007. “A Microfabricated Array of Clamps for Immobilizing and Imaging C. Elegans”. LOC, 7, Pp. 1515-23
A. P. Wong, R. Perez-Castillejos, J. C. Love, and G. M. Whitesides. 2008. “Partitioning Microfluidic Channels With Hydrogel to Construct Tunable 3-D Cellular Microenvironments”. Biomaterials, 29, Pp. 1853-61
A. P. Wong, R. Perez-Castillejos, J. C. Love, and G. M. Whitesides. 2008. “Partitioning Microfluidic Channels With Hydrogel to Construct Tunable 3-D Cellular Microenvironments”. Biomaterials, 29, Pp. 1853-61