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- W2000394672 abstract "Abstract The whole-cell configuration of the patch-clamp technique was used to study voltage-gated K + conductances in retinal ganglion cells from postnatal rat. Retinal ganglion cells were fluorescently labeled in situ , dissociated from the retina, and maintained in culture. With physiological solutions in the bath and the pipette, depolarizing voltage steps from physiological holding potentials activated Na + -( I Na ), Ca 2+ ( I Ca ), and K + -currents studied previously in retinal ganglion cells. Here we report on a slowly decaying K + current, not heretofore reported in rat. With 4-AP, TEA, and Co 2+ in the bath, to block I A , I K , and I K(Ca) , respectively, a slowly decaying outward current was activated from —80 mV by steps positive to —40 mV. This current was present in 92% of all ganglion cells tested ( n = 83). It activated within 10 ms and inactivated with a voltage-independent time constant of about 70 ms at 35°C. Inactivation was voltage-dependent, half-maximal at —55 mV, and almost complete at 0 mV. The current was blocked by internal Cs + and TEA, or by external application of 1 mM Ba 2+ , but not by 3 mM extracellular Co 2+ . The biophysical and pharmacological properties of this current are distinctly different from those of slowly inactivating K + currents studied in other rat neurons. It was very similar, however, to a slowly inactivating K + current previously reported in ganglion cells of tiger salamander retina. This last finding indicates conservation of a defined K + channel type in functionally related cells in both lower vertebrates and mammals." @default.
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- W2000394672 date "1992-02-01" @default.
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- W2000394672 title "A slowly inactivating K<sup>+</sup> current in retinal ganglion cells from postnatal rat" @default.
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- W2000394672 doi "https://doi.org/10.1017/s0952523800009330" @default.
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