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Journal of Cell Science|June 1, 1990
Total internal reflection fluorescence (TIRF) microscopy. I. Modelling cell contact region fluorescenceW M Reichert, G A TruskeyJournal of Microscopy|January 1, 1994
Quantitative analysis of variable-angle total internal reflection fluorescence microscopy (VA-TIRFM) of cell/substrate contactsJ S Burmeister, G A Truskey, W M ReichertBiophysical Journal|March 29, 2000
Atomic force and total internal reflection fluorescence microscopy for the study of force transmission in endothelial cellsA B Mathur, G A Truskey, W M ReichertCritical Reviews in Biomedical Engineering|September 22, 2000
Total internal reflection microscopy and atomic force microscopy (TIRFM-AFM) to study stress transduction mechanisms in endothelial cellsA B Mathur, G A Truskey, W M ReichertJournal of Biomedical Materials Research|July 11, 1998
Fibronectin and avidin-biotin as a heterogeneous ligand system for enhanced endothelial cell adhesionV D Bhat, G A Truskey, W M ReichertJournal of Biomedical Materials Research|March 25, 1998
Using avidin-mediated binding to enhance initial endothelial cell attachment and spreadingV D Bhat, G A Truskey, W M ReichertJournal of Biomedical Materials Research|November 22, 1997
Engineering the tissue which encapsulates subcutaneous implants. I. Diffusion propertiesA A Sharkawy, B Klitzman, G A Truskey, et al.Journal of Cell Science|October 1, 1992
Total internal reflection fluorescence microscopy (TIRFM). II. Topographical mapping of relative cell/substratum separation distancesG A Truskey, J S Burmeister, E Grapa, et al.Journal of Biomedical Materials Research|May 23, 1998
Engineering the tissue which encapsulates subcutaneous implants. II. Plasma-tissue exchange propertiesA A Sharkawy, B Klitzman, G A Truskey, et al.Journal of Biomedical Materials Research|May 23, 1998
Engineering the tissue which encapsulates subcutaneous implants. III. Effective tissue response timesA A Sharkawy, B Klitzman, G A Truskey, et al.Pageof 7