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Biomedical subjects

Charles D Eggleton

Publications and source records attributed to Charles D Eggleton.

4 recordsLinked to original sources

A 3-D computational model predicts that cell deformation affects selectin-mediated leukocyte rolling.

Leukocyte recruitment to sites of inflammation is initiated by their tethering and rolling on the activated endothelium under flow. Even though the fast kinetics and high tensile strength of selectin-ligand bonds are primarily responsible for leukocyte rolling, experimental evidence suggests that cellular properties such as cell deformability and microvillus elasticity actively modulate leukocyte rolling behavior. Previous theoretical models either assumed cells as rigid spheres or were limited to two-dimensional representations of deformable cells with deterministic receptor-ligand kinetics, thereby failing to accurately predict leukocyte rolling. We therefore developed a three-dimensional computational model based on the immersed boundary method to predict receptor-mediated rolling of deformable cells in shear flow coupled to a Monte Carlo method simulating the stochastic receptor-ligand interactions. Our model predicts for the first time that the rolling of more compliant cells is relatively smoother and slower compared to cells with stiffer membranes, due to increased cell-substrate contact area. At the molecular level, we show that the average number of bonds per cell as well as per single microvillus decreases with increasing membrane stiffness. Moreover, the average bond lifetime decreases with increasing shear rate and with increasing membrane stiffness, due to higher hydrodynamic force experienced by the cell. Taken together, our model captures the effect of cellular properties on the coupling between hydrodynamic and receptor-ligand bond forces, and successfully explains the stable leukocyte rolling at a wide range of shear rates over that of rigid microspheres.

Biophysics↗

Viscosity of animal erythrocyte suspensions mixed with a perflurocarbon emulsion.

Artificial blood substitutes (ABS) offer an alternative to donated blood. Increasing the oxygen carrying capacity of blood plasma through the addition of a Perfluorocarbon emulsion (PFE) is one approach in creating a blood substitute. The peripheral resistance of the circulatory system may be altered depending on the rheological properties of the ABS. Measurements of the rheological behavior of mixtures of a PFE, Oxygent, and erythrocyte suspensions were conducted at room temperature at different hematocrits using sheep (nonaggregating) and swine (aggregating) erythrocytes. The pure PFE was found to be shear thinning. Adding 6 and 12 g per 100 mL of sheep blood at the various hematocrits increased the viscosity of the suspension from as low as 4% (6 g PFE/40% Hct) to as high as 26.5% (12 g PFE/plasma). The nonaggregating sheep erythrocyte and PFE mixtures exhibited Newtonian behavior. Shear thinning behavior continued upon addition of 6 and 12 g per 100 mL of swine blood at the various hematocrits, with a slight increase in viscosity in most cases. It was observed that adding 12 g of PFE (approximately 3 x intended clinical dose) to 40% Hct swine blood at room temperature led to a significant decrease in viscosity.

Animals↗

Fluid shear contributions to bacteria cell detachment initiated by a monoclonal antibody.

Receptor-mediated adhesion of bacteria to biological surfaces is a significant step leading to infection. Due to an increase in bacterial antibiotic resistance, novel methods to block and disrupt these specific interactions have gained considerable interest as possible therapeutic strategies. Recently, several monoclonal antibodies specific for the Staphylococcus aureus collagen receptor demonstrated specialized ability to displace attached cells from collagen in static assays. In this study, we experimentally examine the monoclonal antibody detachment functionality under physiological shear conditions to evaluate the role of this parameter in the detachment process. The detachment of staphylococci from collagen was quantified in real-time using a parallel plate flow chamber, phase contrast video-microscopy and digital image processing. The results demonstrate a unimodal dependence of detachment on fluid wall shear rate. The observed decrease in effective detachment rate with increasing force at the highest shear levels evaluated is counterintuitive and has not been previously demonstrated. Several possible mechanisms of this result are discussed.

Antibodies, Monoclonal↗

Using computational fluid dynamics software to estimate circulation time distributions in bioreactors.

Nonideal mixing in many fermentation processes can lead to concentration gradients in nutrients, oxygen, and pH, among others. These gradients are likely to influence cellular behavior, growth, or yield of the fermentation process. Frequency of exposure to these gradients can be defined by the circulation time distribution (CTD). There are few examples of CTDs in the literature, and experimental determination of CTD is at best a challenging task. The goal in this study was to determine whether computational fluid dynamics (CFD) software (FLUENT 4 and MixSim) could be used to characterize the CTD in a single-impeller mixing tank. To accomplish this, CFD software was used to simulate flow fields in three different mixing tanks by meshing the tanks with a grid of elements and solving the Navier-Stokes equations using the kappa-epsilon turbulence model. Tracer particles were released from a reference zone within the simulated flow fields, particle trajectories were simulated for 30 s, and the time taken for these tracer particles to return to the reference zone was calculated. CTDs determined by experimental measurement, which showed distinct features (log-normal, bimodal, and unimodal), were compared with CTDs determined using CFD simulation. Reproducing the signal processing procedures used in each of the experiments, CFD simulations captured the characteristic features of the experimentally measured CTDs. The CFD data suggests new signal processing procedures that predict unimodal CTDs for all three tanks.

Algorithms↗