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D A Baylor

Publications and source records attributed to D A Baylor.

At least 55 records · Page 3Linked to original sources

Spectral sensitivity of primate photoreceptors.

The spectral sensitivities of rods and cones in macaque and human retinas were determined by recording the membrane current from single outer segments. In the macaque retina, the wavelengths of maximum sensitivity were at about 430, 530, and 561 nm for the blue, green, and red cones, respectively, and at 491 nm for the rods. The shapes of the spectra of the three cones were similar when plotted on a log wavenumber scale; the rod spectrum was slightly broader. Spectral sensitivities of the red and green cones from a human retina were virtually identical to those of macaque cones. For comparison with human psychophysical measurements, the rod and cone spectra were adjusted to give the sensitivities expected for light incident on the cornea of the human eye. These functions satisfactorily predicted the scotopic and photopic luminosity functions as well as results from human color-matching experiments. The adjusted spectra of the red and green cones also agreed well with the pi-mechanism of Stiles (1953, 1959).

Adaptation, Ocular↗

Gating kinetics of the cyclic-GMP-activated channel of retinal rods: flash photolysis and voltage-jump studies.

The gating kinetics of the cGMP-activated cation channel of salamander retinal rods have been studied in excised membrane patches. Relaxations in patch current were observed after two kinds of perturbation: (i) fast jumps of cGMP concentration, generated by laser flash photolysis of a cGMP ester ("caged" cGMP), and (ii) membrane voltage jumps, which perturb activation of the channel by cGMP. In both methods the speed of activation increased with the final cGMP concentration. The results are explained by a simple kinetic model in which activation involves three sequential cGMP binding steps with bimolecular rate constants close to the diffusion-controlled limit; fully liganded channels undergo rapid open-closed transitions. Voltage perturbs activation by changing the rate constant for channel closing, which increases with hyperpolarization. Intramolecular transitions of the fully liganded channel limit the kinetics of activation at high cGMP concentrations (greater than 50 microM), whereas at physiological cGMP concentrations (less than 5 microM), the kinetics of activation are limited by the third cGMP binding step. The channel appears to be optimized for rapid responses to changes in cytoplasmic cGMP concentration.

Action Potentials↗

Spectral sensitivity of cones of the monkey Macaca fascicularis.

1. Spectral sensitivities of cones in the retina of cynomolgus monkeys were determined by recording photocurrents from single outer segments with a suction electrode. 2. The amplitude and shape of the response to a flash depended upon the number of photons absorbed but not the wave-length, so that the 'Principle of Univariance' was obeyed. 3. Spectra were obtained from five 'blue', twenty 'green', and sixteen 'red' cones. The wave-lengths of maximum sensitivity were approximately 430, 531 and 561 nm, respectively. 4. The spectra of the three types of cones had similar shapes when plotted on a log wave number scale, and were fitted by an empirical expression. 5. There was no evidence for the existence of subclasses of cones with different spectral sensitivities. Within a class, the positions of the individual spectra on the wave-length axis showed a standard deviation of less than 1.5 nm. 6. Psychophysical results on human colour matching (Stiles & Burch, 1955; Stiles & Burch, 1959) were well predicted from the spectral sensitivities of the monkey cones. After correction for pre-retinal absorption and pigment self-screening, the spectra of the red and green cones matched the respective pi 5 and pi 4 mechanisms of Stiles (1953, 1959).

Action Potentials↗

Photoreceptor signals and vision. Proctor lecture.

In recent years, there has been rapid progress in understanding the properties and mechanism of generation of the light-evoked electrical signals of vertebrate rods and cones. The graded hyperpolarization that carries information over the length of the cell is generated by closure of cation-selective aqueous pores in the surface membrane of the outer segment. These pores are controlled cooperatively by cyclic GMP, which acts continuously in darkness to keep the pores open. Photoisomerization of rhodopsin or cone pigment produces the rapid amplified activation of phosphodiesterase, which lowers the concentration of cGMP, thereby lowering the conductance of the surface membrane. Calcium ions, once thought to relay excitation to the light-sensitive channels, do not play this role. Instead, they appear to participate in a feedback control mechanism that regulates the nucleotide cascade. Although some general features of the transduction mechanism are now understood, a number of important questions remain. How is the nucleotide cascade shut off? Where does Ca act? What is the structure of the light-sensitive channel? How are stereotyped single photon responses produced? Primate photoreceptors are no longer off limits to single cell electrophysiology. Analysis of the response properties and dark noise of primate rods gives a physiological basis for several fundamental features of human rod vision: single photon detection, poor temporal resolution, the "dark light," rod saturation, scotopic spectral sensitivity, and, perhaps, after-image signals. Primate cones show less sensitive but faster responses shaped by a resonance which may figure in the flicker sensitivity of human cone vision. The spectral sensitivity of the three types of primate cones has been determined over the entire visible region. These sensitivities satisfactorily predict human color matching. The spectral sensitivity curves indicate that the pigment in a given cone is very pure, and that individual cones of a given type normally contain pigments with very similar or identical spectral properties.

Afterimage↗

Electrical properties of the light-sensitive conductance of rods of the salamander Ambystoma tigrinum.

The light-sensitive conductance of isolated rods from the retina of the tiger salamander was studied using a voltage-clamp method. The membrane current of the outer segment was collected with a suction electrode while the internal voltage was measured and controlled with a pair of intracellular electrodes. Saturating light blocked the outer segment current at all potentials, the residual conductance usually becoming less than 20 pS. This suggests that light-sensitive channels comprise the main ionic conductance in the surface membrane of the outer segment. Current-voltage relations determined 10-40 ms after changing the voltage showed outward-going rectification, the outward current increasing e-fold for a depolarization of 11-14 mV. The reversal potential of the light-sensitive current was estimated as 5 +/- 4 mV. This is consistent with other evidence indicating that the channel is not exclusively permeable to Na. Applying steady light, lowering external Ca, or changing the intracellular voltage to a new steady level scaled the light-sensitive current without altering the reversal potential or the form of the rectification. This suggests that all three manipulations change the number of channels in the conducting state without changing the ionic concentration gradients or the mechanism of permeation through an 'open' channel. Hyperpolarizing voltage steps slowly increased the light-sensitive current and depolarizing steps reduced it. A gating variable Y expressing the fractional activation of the light-sensitive conductance in the steady state was derived from the ratio of the instantaneous and steady-state currents. Y declined at voltages positive to -100 mV and usually reached a minimum near 0 mV, with a secondary rise positive to 0 mV. Around the dark voltage Y changed e-fold in roughly 25 mV. The voltage-dependent gating in (6). appeared to involve two delays similar in magnitude to those of the four principal delays in the rod's response to a dim flash. Steady background light shortened the time-scale of gating and flash responses to a similar degree. Clamping the voltage at the dark level had little effect on the photocurrent evoked by a flash. The small, delayed effect actually observed is explained by the slow voltage-dependent gating of the light-sensitive conductance. Hyperpolarization had little effect on the kinetics of the response to a flash, but depolarization slowed the response, causing it to reach a larger, later peak. Depolarization also prolonged the blockage of the light-sensitive current after a saturating flash.(ABSTRACT TRUNCATED AT 400 WORDS)

Action Potentials↗

Interaction of hydrolysis-resistant analogs of cyclic GMP with the phosphodiesterase and light-sensitive channel of retinal rod outer segments.

cGMP opens cation-selective channels when applied to the cytoplasmic side of excised patches of membrane from retinal rod outer segments (ROS). If the light-sensitive channel in intact rods is gated only by cGMP, it should be possible to find a hydrolysis-resistant analog of cGMP that blocks the normal response to light by holding the channel open independent of the degree of illumination. We have studied the interaction of 8-bromo-cGMP (8-Br-cGMP) and the SP and RP phosphorothioate derivatives of cGMP [(Sp)-cGMP[S] and (RP)-cGMP[S]) with the cGMP phosphodiesterase (PDEase) of ROS, the cGMP-sensitive channel of excised ROS patches, and the light-sensitive channel of intact rods. All three analogs were hydrolyzed by PDEase much more slowly than was cGMP. The maximal rates of hydrolysis of 8-Br-cGMP, (SP)-cGMP[S], and (RP)-cGMP[S] were 7.3, 3.7, and less than 0.2 s-1, respectively, compared with 4000 s-1 for cGMP. These analogs are effective competitive inhibitors of the PDEase, with Ki values of 48, 25, and 90 microM, respectively. The nucleotide-activated conductances of excised patches were half-maximal at concentrations of 1.6, 210, and 1200 microM, respectively, compared with 17 microM for cGMP. Thus, 8-Br-cGMP is a highly potent channel agonist. The effects of these analogs on the dark current and photoresponses of intact rod cells were also measured. A suction electrode monitored membrane current across the ROS, while a patch electrode sealed on the inner segment was used to introduce a cGMP analog and to control membrane potential. All three analogs increased the dark current and markedly slowed the response to light flashes. 8-Br-cGMP increased the dark current of the outer segment as much as 48-fold. After the concentration of this analog had risen sufficiently, little of the current could be shut off by light, as expected of a direct effect on the light-sensitive channel of the plasma membrane. These results are consistent with the notions that (i) the light-sensitive channel of rods is controlled solely by the instantaneous concentration of cGMP and (ii) the cGMP-sensitive channel of excised patches is identical to the light-sensitive channel of intact rods.

3',5'-Cyclic-GMP Phosphodiesterases↗

Location and function of voltage-sensitive conductances in retinal rods of the salamander, Ambystoma tigrinum.

The functional role and spatial location of voltage-sensitive conductances that modify the light-evoked electrical signals were studied in retinal rods of the tiger salamander. An isolated rod was drawn into a suction electrode for recording membrane current and impaled with an intracellular electrode for recording membrane potential and passing current. A bright flash gave a rapid initial hyperpolarization that relaxed to a smaller plateau. Simultaneously the dark current of the outer segment was shut off with the time course of a rounded step function. This characteristic difference between the wave forms demonstrates that the voltage relaxation does not result from reopening of light-sensitive channels. The voltage relaxation in (2) did not require light or interruption of the dark current, as the wave form was duplicated by suddenly switching off a depolarizing current injected during steady saturating light. This is explained if the relaxation depends purely on voltage-sensitive conductances. The voltage response to a dim flash reached its peak value before the current response. The voltage wave form was predicted assuming that the recorded photo-current drove a linear high-pass filter with parameters derived from analysis of the voltage response to injection of a current step. When the intracellular voltage was changed by current injection the slope resistance of the outer segment slowly declined to a lower level, indicating that the outer segment contains a voltage-sensitive conductance. When a current step was injected in bright steady light, the current recorded from the outer segment consisted of a capacity component proportional to dV/dt and a small extracellular leakage current but no detectable ionic current. This supports other evidence indicating that light-sensitive channels comprise the main or exclusive ionic conductance of the outer segment. The behaviour in (5) is explained if the light-sensitive channels themselves are slowly opened by hyperpolarization and closed by depolarization. Analysis of the current-injection experiments suggests that most of the high-pass filtering in a rod results from the action of voltage-sensitive conductances located in the inner segment. Addition of 10 mM-CsCl to the Ringer solution abolished the relaxation in the voltage response to a bright flash but left intact the high-pass filtering of small signals. This would be explained by a selective block of one of two sets of voltage-sensitive channels in the inner segment or by a voltage-sensitive block of one kind of channel.

Ambystoma↗

The photocurrent, noise and spectral sensitivity of rods of the monkey Macaca fascicularis.

Visual transduction in rods of the cynomolgus monkey, Macaca fascicularis, was studied by recording membrane current from single outer segments projecting from small pieces of retina. Light flashes evoked transient outward-going photocurrents with saturating amplitudes of up to 34 pA. A flash causing twenty to fifty photoisomerizations gave a response of half the saturating amplitude. The response-stimulus relation was of the form 1-e-x where x is flash strength. The response to a dim flash usually had a time to peak of 150-250 ms and resembled the impulse response of a series of six low-pass filters. From the average spectral sensitivity of ten rods the rhodopsin was estimated to have a peak absorption near 491 nm. The spectral sensitivity of the rods was in good agreement with the average human scotopic visibility curve determined by Crawford (1949), when the human curve was corrected for lens absorption and self-screening of rhodopsin. Fluctuations in the photocurrent evoked by dim lights were consistent with a quantal event about 0.7 pA in peak amplitude. A steady light causing about 100 photoisomerizations s-1 reduced the flash sensitivity to half the dark-adapted value. At higher background levels the rod rapidly saturated. These results support the idea that dim background light desensitizes human scotopic vision by a mechanism central to the rod outer segments while scotopic saturation may occur within the outer segments. Recovery of the photocurrent after bright flashes was marked by quantized step-like events. The events had the properties expected if bleached rhodopsin in the disks occasionally caused an abrupt blockage of the dark current over about one-twentieth of the length of the outer segment. It is suggested that superposition of these events after bleaching may contribute to the threshold elevation measured psychophysically. The current in darkness showed random fluctuations which disappeared in bright light. The continuous component of the noise had a variance of about 0.03 pA2 and a power spectrum that fell to half near 3 Hz. A second component, consisting of discrete events resembling single-photon responses, was estimated to occur at a rate of 0.006 s-1. It is suggested that the continuous component of the noise may be removed from scotopic vision by a thresholding operation near the rod output.

Animals↗

Temperature effects on the membrane current of retinal rods of the toad.

Thermal effects on the visual transduction mechanism of toad rods were examined by recording the membrane current of a single outer segment while changing the temperature within the range 15-30 degrees C. Warming increased the amplitude rmax of the saturating flash response. This effect had a Q10 of about 1.8 and may result from an increase in the light-sensitive conductance. The flash sensitivity decreased with increasing temperature, while the half-saturating flash intensity increased. There was no evidence of a temperature effect on the probability that an incident 500 nm photon triggered an electrical response. Together with the results in (2) and (3) this indicates that at higher temperature a successfully absorbed photon blocked a smaller fraction of the light-sensitive conductance. Upon warming, the time scale of the flash response shortened but the characteristic wave form was preserved. The speed of the dim flash response, measured by the reciprocal of its time-to-peak, had a Q10 of 2.7 and an apparent activation energy of 16.8 kcal mole-1. The power spectrum of the continuous component of the dark noise could be predicted at different temperatures by assuming that the underlying event was shaped by two of the four delays required to fit the light response. This behaviour is consistent with the notion that the continuous noise arises within the cascade of processes controlling the internal transmitter concentration of the outer segment.

Animals↗

Local effects of bleaching in retinal rods of the toad.

1. Suction electrode recordings were used to study the recovery of responsiveness in single toad rods after bleaching a small fraction (less than 5%) of the rhodopsin. 2. After a spatially uniform bleach that initially abolished the dark current over the entire length of the outer segment, the more proximal regions recovered faster than the more distal regions. For a time the most basal region was almost fully recovered while the tip remained fully saturated. 3. Such a gradient of responsiveness did not occur during uniform steady background illumination of dark-adapted cells. 4. The entire outer segment recovered uniformly after a longitudinally graded bleach that simulated the pattern produced by self-screening in the intact eye. 5. The recovery of the distal end of the outer segment was not affected by a bleach at the proximal end. This suggests that the differences in recovery rate reflect intrinsic local properties of the outer segment rather than longitudinal diffusion of a substance from the inner segment. 6. For at least the first 3 min after bleaching with a narrow transverse slit the reduction of responsiveness remained most pronounced in the bleached region, suggesting that this effect of bleaching does not spread extensively. 7. The increased noise induced by bleaching is shown to originate locally in the bleached region of outer segment. 8. When the tip was locally saturated after a bleach or during steady light, the current recorded from the tip was predominantly capacitive, resulting from intracellular voltage change. This indicates that when the dark current is abolished the outer segment plasma membrane has negligible leakage conductance.

Action Potentials↗

Two components of electrical dark noise in toad retinal rod outer segments.

1. Physiological noise in the visual transduction mechanism was studied by recording membrane current from single rod outer segments in pieces of isolated toad retina. 2. The inward current in darkness showed spontaneous fluctuations which disappeared during the response to bright light. 3. The dark noise consisted of two components, a continuous fluctuation of rms amplitude about 0.2 pA and occasional discrete events about 1 pA in size. 4. Intervals between discrete events followed the exponential distribution expected of a Poisson process with a mean rate of about one event per 50 sec (20 degrees C). 5. The amplitude and power spectrum of the discrete events resembled those of single photon effects in the same rod, suggesting that discrete events may arise from spontaneous activation of single rhodopsin molecules. 6. The temperature dependence of the mean frequency of occurrence of discrete events gave an activation energy of 22 kcal mole-1, probably characteristic of thermal isomerization of rhodopsin. 7. The variance of the continuous component of the dark noise rose linearly with the length of the outer segment drawn into the suction electrode, indicating that this component is generated in the outer segment. 8. The power spectrum of a rod's continuous noise was usually fitted by the square of a Lorentzian with the same time constant as that of the four first-order delays in the cell's single photon response. The shot effects composing the continuous component thus appear to be shaped by two of four sequential processes in transduction. 9. The variance and spectrum of the continuous noise are interpreted to reflect shot effects about 1/400 the size of a single photon effect occurring at a frequency of 6 x 10(3) sec-1. 10. The rod's flash sensitivity was halved by a steady light to giving about 8 photoisomerizations sec-1. The much lower mean rate of discrete events indicates that Io in increment sensitivity experiments on individual receptors is not set by thermal activation of rhodopsin. 11. Values of sensitivity and time-to-peak flash response collected from many cells in darkness were correlated by the same power law relation obtaining in the presence of backgrounds. The correlation observed would be explained if a single variable controlled both the gain and time scale of several stages of the transduction mechanism in background light and in darkness.

Animals↗