The properties of single cones isolated from the tiger salamander retina
- 1 July 1982
- journal article
- research article
- Published by Wiley in The Journal of Physiology
- Vol. 328 (1) , 259-283
- https://doi.org/10.1113/jphysiol.1982.sp014263
Abstract
The properties of isolated single cones were studied using the voltage-clamp technique, with 2 micro-electrodes inserted under visual control. Single cones had input resistances, when impaled with 2 electrodes, of up to 270 M.OMEGA.. This is probably lower than the true membrane resistance, because of damage by the impaling electrodes. The cone capacitance was .apprx. 85 pF [picoFaraday]. The cone membrane contains a time-dependent current, IB, controlled by voltage, and a separate photosensitive current. The gated current, IB, is an inward current with a reversal potential .apprx. -25 mV. It is activated by hyperpolarization over the range -30 to -80 mV, and at constant voltage obeys 1st order (exponential) kinetics. The gating time constant is typically 50 ms at the resting potential of -45 mV, rises to 170 ms at -70 mV and decreases for further hyperpolarization. The spectral sensitivity curve of the cone light repsonse peaks at 620 nm wave-length and is narrower than the nomogram for vitamin A2-based pigments. The light responses of isolated cones are spectrally univariant. Voltage-clamped photocurrents were recorded at various membrane potentials for light steps of various intensities. The photocurrent reversed at .apprx. -8 mV. The time course of the photocurrent, for a given intensity, was approximately independent of voltage (although its madnitude was voltage-dependent). The shape of the peak current-voltage relation of the light-sensitive current was independent of light intensity (although its magnitude was intensity-dependent). These results can be explained if light simply changes the number of photosensitive channels open, without altering the properties to an open channel, and if the reactions controlling the production of internal transmitter, the binding of internal transmitter to the photosensitive channels and the closing and opening of the channels are unaffected by the electric field in the cone membrane, even though at least some of these reactions take place in the membrane. IB plays only a small role in shaping the cone voltage response to light.This publication has 27 references indexed in Scilit:
- Light‐induced resistance changes in retinal rods and cones of the tiger SalamanderThe Journal of Physiology, 1974
- Properties of the depolarizing synaptic potential evoked by peripheral illumination in cones of the turtle retinaThe Journal of Physiology, 1973
- Colour‐dependence of cone responses in the turtle retinaThe Journal of Physiology, 1973
- Detection and resolution of visual stimuli by turtle photoreceptorsThe Journal of Physiology, 1973
- Receptive fields of cones in the retina of the turtleThe Journal of Physiology, 1971
- Electrical responses of single cones in the retina of the turtleThe Journal of Physiology, 1970
- Light-induced resistance changes in single photoreceptors ofnecturus andgekkoVision Research, 1969
- Visual pigments of frog and tadpole (Rana pipiens)Vision Research, 1968
- The kinetics and rectifier properties of the slow potassium current in cardiac Purkinje fibresThe Journal of Physiology, 1968
- An electrical model of the vertebrate photoreceptor cellVision Research, 1967