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C Winzek

Publications and source records attributed to C Winzek.

3 recordsLinked to original sources

Staining kinetics in single cells. Part I. Influence of convective diffusion on the staining rate.

The staining kinetics of single cells have been investigated using a perfusion cuvette in combination with a computer controlled microscope spectrometer. The physicochemical hydrodynamics of staining are characterized. Using a steady-state laminar flow parallel to the cell surface a hydrodynamic and a diffusional boundary layer are observed which are determined by the flow rate. The thickness of the diffusional boundary layer revealed by experimental data is in agreement with theoretically calculated values. At certain well-defined hydrodynamic conditions convective diffusion has no further effect on the staining rate.

Animals↗

Staining kinetics in single cells. Part II. Diffusion processes inside the cell.

Applying hydrodynamic conditions, which certify a negligible influence of convective diffusion, the time-dependent uptake of thionin in lymphocytes, monkey kidney cells, and their separated nuclei was measured spectroscopically. Using fixed cell material the dye transport inside the cell is not hindered due to plasma membrane and cytoplasm. The staining rate depends on the dye concentration, the pretreatment of the cell, and on the electrolyte concentration of the dye solution. The mechanism of dye migration inside the cell is in accordance with a porous matrix model. The diffusion process takes place inside the pores and channels filled with liquid and is modified by adsorption of dye molecules on the walls of the pores. A dynamic reversible equilibrium exists between migrating dye molecules and the binding sites on the pore walls described by the Freundlich adsorption isotherm. The proposed model explains the observed order of reaction of the staining kinetics.

Animals↗

An improved method to investigate staining kinetics in single cells.

A new method to analyze staining processes in single cells of histochemical and cytochemical specimens in situ is described. The combination of a microscope photometer with a perfusion cuvette developed in our laboratory allows the continuous observation of a cell during the staining process. The flow rate dependence of the staining process has been examined demonstrating the strong suppression of the diffusional boundary layer adjacent to the cell surface by sufficiently high flow rates. Experiments to find optimal conditions for the kinetic analysis of the staining reaction of nuclei in lymphocytes, neutrophile granulocytes and monkey kidney cells with thionin are described. Half-staining times of the binding of monomer dye molecules and aggregates to nuclei have been calculated; they depend on the pretreatment of the cells. The addition of electrolytes decreases the rate of staining. The formation of aggregates obeys approximately a first-order reaction law and the binding of monomers provides an order of reaction of n = 0.5.

Animals↗