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J S Burmeister

Publications and source records attributed to J S Burmeister.

6 recordsLinked to original sources

Role of endothelial cell-substrate contact area and fibronectin-receptor affinity in cell adhesion to HEMA/EMA copolymers.

The objective of this study was to examine the effect of substrate hydrophobicity on cell-substrate contact area and the affinity between adsorbed fibronectin (Fn) and its receptor. Homo- and copolymer films of hydrophobic ethyl methacrylate (EMA) and hydrophilic hydroxyethyl methacrylate (HEMA) were spun-cast onto glass slides. Bovine aortic endothelial cells (BAEC) were plated for 2 h in serum-free medium onto polymers preadsorbed with Fn. Cells were fixed, labeled, and examined by total internal reflection fluorescence microscopy (TIRFM) to determine the topography of the basal surface as a function of distance from the substrate. Phase contrast microscopy was used to examine the total projected area of adherent cells. The cumulative contact area was greatest on cells attached to surfaces prepared from 0% HEMA and lowest on surfaces with the highest HEMA content. An equilibrium adhesion model used these data together with the critical force for detachment and the Fn density (Burmeister et al., J Biomed Mater Res 1996;30:13-22) to determine the affinity between Fn and its receptor and the bond strength. The affinity and force per bond decreased with increasing HEMA content. These results indicate that differences in the strength of endothelial cell adhesion to polymers are influenced by the conformation of the adsorbed adhesion proteins.

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Application of total internal reflection fluorescence microscopy to study cell adhesion to biomaterials.

Cell adhesion and function depend upon the formation of adhesive contacts between the cell and substrate. Determination of the cell substrate contact area is necessary in order to understand how biomaterial properties influence cell adhesion. In this review we describe the development and application of total internal reflection fluorescence microscopy (TIRFM) to quantify the separation distance of cells from a biomaterial surface. An approximate theory is presented for the straightforward calculation of separation distances when a fluor is placed in the cell membrane. The validity of this approach is discussed. TIRFM is compared to interference reflection microscopy and related techniques that measure cell/substrate separation distances. This approach is then applied to a number of important problems in cell substrate interactions, including changes in contact area and adhesion strength on biomaterial surfaces, analysis of bond strength, and real-time measurement of cell/substrate separation distances following exposure to flow.

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Effect of fibronectin amount and conformation on the strength of endothelial cell adhesion to HEMA/EMA copolymers.

The effect of substrate surface hydrophobicity on fibronectin (Fn) adsorption and endothelial cell adhesion strength was studied. Bovine aortic endothelial cells (BAEC) were plated for 2 h with and without preadsorbed Fn on slides coated with homopolymers and copolymers of hydrophilic polyhydroxyethylmethacrylate (polyHEMA) and hydrophobic polyethylmethacrylate (polyEMA). The polarity of the substrate was determined by Wilhelmy plate contact angle. The amount of adsorbed Fn was determined using 125I-labeled Fn. Attenuated total reflection Fourier transform infrared (ATR-FTIR) spectroscopy was used to detect gross conformational changes of adsorbed Fn on polyHEMA or polyEMA. BAEC were cultured in serum-free medium for 2 h and subjected to a brief exposure of laminar flow in a variable-height flow chamber that provided a range of shear stresses of 15-185 dynes/cm2. The critical shear stress to detach 50% of the cells increased with increasing EMA content to a maximum at 20% HEMA/80% EMA copolymer irrespective of the presence of preadsorbed Fn. However, the critical force increased even though there were similar amounts of Fn adsorbed on all substrates. ATR-FTIR spectroscopy showed only minor changes in beta-sheet structure of Fn adsorbed to polyHEMA and polyEMA. These results show that the force to detach cells did not increase solely with increasing amounts of adsorbed Fn; rather, these results indicate a more complex interplay involving both the amount and conformation of adsorbed Fn.

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Quantitative analysis of variable-angle total internal reflection fluorescence microscopy (VA-TIRFM) of cell/substrate contacts.

Variable-angle total internal reflection fluorescence microscopy (VA-TIRFM) allows controlled variation of the illumination depth with the potential of measuring both membrane/substrate separation distances and sizes of focal contacts. VA-TIRFM images are collected from well-spread bovine aortic endothelial cells (BAEC) stained with a membrane-bound carbocyanine dye. Quantitative determination of absolute membrane/substrate separation distances and individual focal contact area are attempted using a simplified model of TIRFM optics. For angles slightly greater than the critical angle of 64 degrees, both the dorsal and ventral membranes were illuminated, while images excited above 66 degrees illuminated only focal contacts. Above 74 degrees the fluorescence of focal contacts was dominated by back-ground noise. Direct application of the simplified optical model without accounting for background intensity was unsatisfactory. However, correction for background fluorescence and nonlinear regression of the untransformed data over the working range yielded focal contact separation distances of 24 +/- 13 nm. Focal contact areas estimated by TIRFM (1.3 +/- 0.7 micron2) agreed closely with areas observed by immunofluorescence staining of vinculin (1.5 +/- 0.3 microns2).

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Total internal reflection fluorescence microscopy (TIRFM). II. Topographical mapping of relative cell/substratum separation distances.

A simplified model of TIRF optics was used to quantitate the relative membrane/substratum separation distances from the spatial pattern of TIRF image brightness. Phase-contrast and total internal reflection fluorescence microscopy (TIRFM) images were collected of bovine aortic endothelial cells (BAEC) plated onto glass microscope slides for 15 min, 30 min and 24 h. BAEC adherent for 15 min showed an absence of a focal contact morphology, with the region of closest apposition beneath the cell center. After 30 min, multiple contacts with the surface were established and the morphology became more irregular. BAEC attached for 24 h showed well-defined focal contact regions aligned in characteristically striated patterns. The relative distance between closest and farthest membrane/substratum separations are consistent with reported distance between focal and matrix contacts. Topographical maps of membrane/substratum separation distances over the entire ventral surface of the plated cells were constructed to demonstrate the utility of quantitative TIRF microscopy.

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Imaging of cell/substrate contacts on polymers by total internal reflection fluorescence microscopy.

A simplified model of total internal reflection fluorescence (TIRF) emission of fluorescently labeled cell membranes [Reichert, W. M.; Truskey, G. A. J. Cell Sci. 1990, 96, 219-230] was used to determine the topography of the cell membrane in apposition to a polymer-coated surface. The homopolymer substrates were spun cast films of hydrophilic poly(hydroxyethyl methacrylate) (polyHEMA) or hydrophobic poly(ethyl methacrylate) (polyEMA). Bovine aortic endothelial cells (BAEC) on preadsorbed fibronectin polymer substrates were either plated for 24 h, fixed, labeled, and examined by TIRF microscopy (TIRFM) and phase-contrast microscopy or plated for 2 h and tested for their adhesion strength in a parallel-plate flow chamber. BAEC attached to polyHEMA showed no evidence of focal contact formation. However, BAEC attached to polyEMA were well spread and showed an array of focal contacts. TIRFM data were transformed to construct a detailed topographical map of relative cell/substrate separation distances. Virtually all of the BAEC plated to polyHEMA were sheared from the surface when subjected to a 50 dyn/cm2 burst of laminar flow, whereas only 10% of the BAEC were sheared from the polyEMA surface. These data suggest that the polyHEMA and polyEMA surface properties (e.g., hydrophobicity) correlate with the presence of BAEC focal contacts and the BAEC attachment strength.

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