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Biomedical subjects

Basilio A Kotsias

Publications and source records attributed to Basilio A Kotsias.

4 recordsLinked to original sources

An outwardly rectifying anion channel in human leukaemic K562 cells.

In this study, an outwardly rectifying anion channel was characterized in the cell line K562 obtained from a chronic human leukaemia. Ion channel activity was recorded in the cell-detached (inside-out) configuration with standard patch-clamp technology. In most of the K562 cells studied, the channel exhibited low spontaneous activity, an outwardly rectifying current/voltage relationship and single-channel conductances of 19 pS and 40 pS for inwards and outwards currents respectively. The channel had a low permeability for gluconate with a relative permeability P(gluconate)/ P(Cl) of 0.14 and was blocked by glibenclamide (50 micro M) or diphenylamine-2-carboxylate (DPC, 1 mM) added to the cytoplasmic side of the patch. These results are characteristic of the outwardly rectifying Cl channel (ORCC) found in other types of cells.

Anions↗

Membrane currents in the oocyte of the toad Bufo arenarum.

The amphibian oocyte cell model is widely used for heterologous expression of ionic channels and receptors. Little is known, however, about the physiology of oocyte cell models other than Xenopus laevis. In this study, the two-electrode voltage clamp technique was used to assess the most common electrical patterns of oocytes of the South American toad Bufo arenarum. Basal membrane resistance, resting potential, and ionic currents were determined in this cell model. The oocyte transmembrane resistance was 0.35 M(Omega), and the resting potential in normal saline was about -33 mV with a range between -20 mV and -50 mV. This is, to our knowledge, the first attempt to begin an understanding of the ion transport mechanisms of Bufo arenarum oocytes. This cell model may provide a viable alternative to the expression of ion channels, in particular those endogenously observed in Xenopus laevis oocytes.

Action Potentials↗

[Pain].

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Humans↗