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Biomedical subjects

M J Kell

Publications and source records attributed to M J Kell.

4 recordsLinked to original sources

Surface charge near the cardiac inward-rectifier channel measured from single-channel conductance.

The conductance of a channel to permeable ions depends on the number of ions near the mouth of the pore. Surface charge controls the local concentration, and impermeable cations can modify this charge. Correlating channel conductance with the concentration of impermeable cations therefore determines the local charge near the open pore. This paper presents data from cell-attached patches on embryonic chick ventricle cells, and it uses the conductance of inward-rectifier channels in the patch (in 100 mM K, with various concentrations of Na, Ca, Ba, and Mg) to estimate the local surface potential. The results indicate the presence of ionized residues near the mouth of the channel. Using the Boltzmann equation and the Gouy-Chapman relation, the surface potential due to these residues (in 100K/33Na/0Ca/0Ba/0Mg) is -40 mV, and the charge density is -0.25 e/nm2.

Animals

Sperm-activated currents in ascidian oocytes.

Using patch electrodes and the whole-cell recording technique to study fertilization currents in ascidian oocytes under voltage clamp, this paper shows that between -85 and 0 mV the currents are inward with an initial peak ranging from 50 to 600 pA. Voltages more positive than 0 mV inhibit initiation of the fertilization current, but by allowing the oocyte to return briefly to its resting potential fertilization occurs and fertilization currents are outward at positive potentials. By comparison with previous single-channel work, a fertilizing spermatozoon opens about 300 large-conductance channels with zero reversal potential.

Action Potentials

Equilibrium energy analysis of freeze-fracture planes in membranes.

We have used equilibrium energy calculations to determine the most probable freeze-fracture planes in a lipid bilayer. Using a pairwise-summation computer method, we have generated numerical values for the Van der Waals potentials (electron shell repulsion, dispersion forces and electrostatic interactions) between molecules. We have compared our theoretical predictions with the experimental conclusion that the fracture planes occur normally between lipid molecules. These calculations also provide information about the composition of intramembranous particles, the potential for local clustering of single lipid types in the fluid membrane, and the importance of lipid molecules to the function of membrane proteins such as voltage-sensitive ion channels.

Calcium