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J R Cunningham

Publications and source records attributed to J R Cunningham.

At least 19 recordsLinked to original sources

Calcium dependent release of acetylcholine and gamma-aminobutyric acid from the rabbit retina.

The concurrent release of endogenous ACh and GABA from the retina (in the presence of physostigmine) was measured using either an eye-cup preparation in rabbits anaesthetized with urethane or isolated rabbit retinas. There was a spontaneous resting release of ACh and GABA from the dark adapted retina of ca 5 and 160 pmol min-1 respectively. Stimulation of the initially dark adapted retina in vivo with flickering light (0.1-20 Hz) increased the release of ACh by up to 5 times the spontaneous resting release but did not cause a detectable increase in GABA release. The maximum light-evoked release of ACh was about 24 pmol min-1/retina and occurred at a frequency of 10 Hz. However, the maximum release of ACh per flash occurred at 0.1 Hz at which frequency the average ACh release per flash from one amacrine cell was ca 2.35 x 10(-18) mol. Exposure of the retina to the potent inhibitors of GABA uptake, SKF89976A and SKF100330A markedly reduced the resting release of ACh and abolished the light-evoked release of ACh but did not enable a light-evoked release of GABA to be detected. Bicuculline blocked the inhibitory actions of both SKF89976A and SKF100330A on ACh release but the combination of bicuculline and uptake inhibitor did not result in a light-evoked release of GABA. In contrast, KCl (20 mM) applied locally to the retina in vivo resulted in the release of both ACh and GABA (61 and 2.6-fold respectively). KCl (20 mM) also evoked large increases in ACh and GABA release from isolated rabbit retinas in room light (13.5 and 3.4-fold respectively). The K-evoked release of ACh and GABA from the rabbit retina both in vivo and in vitro was calcium dependent. These experiments are the first in which endogenous ACh and GABA release from the retina have been simultaneously measured and suggest that the release mechanisms for these transmitters are fundamentally similar.

Acetylcholine

Effect of sulphur containing amino acids on [3H]-acetylcholine release from amacrine cells of the rabbit retina.

1. The effects of the sulphur containing amino acids, homocysteic acid, homocysteine sulphinic acid, cysteic acid and cysteine sulphinic acid on the release of [3H]-acetylcholine ([3H]-ACh) from the cholinergic amacrine cells of the rabbit retina were examined. 2. All the compounds stimulated the spontaneous resting release and abolished the light-evoked release of [3H]-ACh. Except for homocysteine sulphinic acid these actions occurred at concentrations that did not affect the erg b-wave amplitude, indicating a site of action at the inner retina. 3. N-methyl-D-aspartate (in Mg(2+)-containing medium) clearly blocked the effects of homocysteic acid and homocysteine sulphinic acid on the resting release of [3H]-ACh but had no effect on the actions of cysteic acid and cysteine sulphinic acid. 4. Since N-methyl-D-aspartate is an antagonist of the light-evoked endogenous bipolar cell transmitter released onto cholinergic cells, these results are consistent with the suggestion that homocysteic acid or homocysteine sulphinic acid may be a transmitter released from this subpopulation of bipolar cells. 5. The present experiments indicate the existence of excitatory amino acids that have closer pharmacological properties to a bipolar cell transmitter than glutamate but it remains to be seen whether homocysteic acid or homocysteine sulphinic acid occur in these particular bipolar cells.

Acetylcholine

L-homocysteic acid--a possible bipolar cell transmitter in the rabbit retina.

The identity of the retinal bipolar cell transmitter(s) is unknown although there is much indirect evidence that suggests it may be glutamate or a related compound. Some bipolar cells synapse onto cholinergic amacrine cells and in the rabbit retina acetylcholine (ACh) release is increased by light flashes and by the excitatory amino acids glutamate, aspartate and homocysteic acid (HCA). In the retina, the amino acid agonist N-methyl-D-aspartate (NMDA) is unusual in that it sometimes acts as an antagonist, and in the present experiments it blocked the light-evoked release of ACh by acting as an antagonist of the bipolar cell transmitter. However, NMDA did not block the actions of glutamate or aspartate on amacrine cell ACh release, a result that argues against either of these amino acids being the bipolar cell transmitter. On the other hand, the HCA evoked release of ACh was clearly antagonised by NMDA suggesting that HCA may be the bipolar cell transmitter released onto cholinergic amacrine cells. This suggestion is supported by the finding that the rabbit retina possesses HCA at a concentration of 0.8 nmol/g wet wt.

Acetylcholine

Immunocytochemical evidence that vigabatrin in rats causes GABA accumulation in glial cells of the retina.

Vigabatrin (gamma-vinyl-GABA, GVG) is an irreversible inhibitor of GABA-aminotransferase (GABA-T) that is under clinical trial as an antiepileptic drug. Rats were injected (i.p.) with GVG and killed 18 h later. GVG administration reduced retinal GABA-T activity to undetectable levels and increased the GABA content 5-fold. Immunocytochemistry using a GABA antiserum clearly revealed the presence of GABA-IR in the glial Muller cells of retinas from GVG-treated rats but not from controls. This experiment indicates that the administration of drugs which inhibit GABA-T may cause the accumulation of GABA in retinal cells that do not normally possess enough endogenous GABA to be detected by immunocytochemistry.

Aminocaproates

Evaluation of lung dose correction methods for photon irradiations of thorax phantoms.

Radiation absorbed dose in lung is measured and calculated using several algorithms available on commercial treatment planning systems. Phantoms resembling the human thorax are used and irradiated with small and large photon beams of 60Co, 4, 6, and 10 MV X ray energies. The applicability and usefulness of the different calculation methods in clinical situations is discussed.

Lung

Development of computer algorithms for radiation treatment planning.

As a result of an analysis of data relating tissue response to radiation absorbed dose the ICRU has recommended a target for accuracy of +/- 5 for dose delivery in radiation therapy. This is a difficult overall objective to achieve because of the many steps that make up a course of radiotherapy. The calculation of absorbed dose is only one of the steps and so to achieve an overall accuracy of better than +/- 5% the accuracy in dose calculation must be better yet. The physics behind the problem is sufficiently complicated so that no exact method of calculation has been found and consequently approximate solutions must be used. The development of computer algorithms for this task involves the search for better and better approximate solutions. To achieve the desired target of accuracy a fairly sophisticated calculation procedure must be used. Only when this is done can we hope to further improve our knowledge of the way in which tissues respond to radiation treatments.

Algorithms

GABA release from Xenopus retina does not correlate with horizontal cell membrane potential.

The relationship between horizontal cell membrane potential and the release of GABA was explored in the retina of Xenopus laevis. The intracellularly recorded membrane potential of horizontal cells was monitored while the retina was exposed to different concentrations of depolarizing agents. The dose-response curves obtained revealed a rise from 5 to 95% maximum depolarization in 0.5-1.5 log unit concentration change. The molar concentrations that elicited a 20 mV depolarization were 40 mM (potassium), 0.8 mM (glutamate), 0.8 mM (glycine), 5 microM (kainate) and 1.3 microM (quisqualate). Autoradiography revealed that radiolabel was accumulated almost exclusively by horizontal cells when isolated retinas were incubated in medium containing 1 microM [3H]GABA. Thus, retinal release of radioactivity was used as a measure of [3H]GABA release from horizontal cells. Endogenous GABA released from retinas was measured using high performance liquid chromatography and was taken to reflect both amacrine and horizontal cell GABA pools. The release of both [3H]GABA and endogenous GABA was stimulated by glutamate, kainate and potassium, but not by glycine or quisqualate. Similar dose-response curves for GABA release and for depolarization were obtained in the case of potassium and kainate but not for glutamate. Potassium-evoked release either of endogenous GABA or [3H]GABA was both calcium- and sodium-dependent, whereas kainate- or glutamate-evoked GABA release was sodium-dependent but calcium-independent. The results indicate that depolarization per se is not necessarily associated with transmitter release in Xenopus retinal horizontal cells. It is suggested that the action of a given neurotransmitter upon the efflux of GABA from horizontal cells may depend on the degree to which it modifies the sodium conductance of the horizontal cell.

Animals

Role of fluorescein glucuronide and its metabolism in vitreous fluorophotometry.

Rabbits were given fluorescein or fluorescein glucuronide intravenously. Fluorescein and fluorescein glucuronide concentrations in plasma and vitreous samples were measured by high-performance liquid chromatography. Vitreous fluorophotometry was performed using the Fluorotron Master to compare scans after administration of fluorescein and fluorescein glucuronide, and for comparison of in vivo fluorescence with in vitro high-performance liquid chromatography analysis. Fluorescein glucuronide was shown to enter the vitreous as early as 1 hr after injection. Fluorescein glucuronide was the dominant molecule in both vitreous and plasma of all rabbits at 6 hr. Because fluorescein glucuronide has a lower fluorescence than fluorescein, the fluorophotometer overestimates the vitreous concentration of fluorescein after its administration. Since fluorescein is metabolized rapidly to fluorescein glucuronide in man, entry of fluorescein glucuronide into the eye should be considered in measurements of blood-ocular barrier permeability by vitreous fluorophotometry.

Animals

Effect of excitatory amino acids on gamma-aminobutyric acid release from frog horizontal cells.

The effects of excitatory amino acids, analogues and K on [3H]gamma-aminobutyric acid [3H]GABA) release from horizontal cells of the isolated superfused frog retina were studied. Exposure of the retina to medium containing high concentrations (25-100 mM) of KCl increased the release of [3H]GABA to a maximum which was 40 times the spontaneous resting release. The K-evoked release of [3H]GABA was almost abolished in high-Mg/low-Ca medium. Glutamate, aspartate, kainate and quisqualate also stimulated the release of [3H]GABA from horizontal cells, the maximum evoked release being similar to that produced by KCl. The release of [3H]GABA evoked by glutamate, aspartate, kainate and quisqualate was abolished in high-Mg/low-Ca medium and by Na-free medium. The evoked releases of [3H]GABA were not reduced by tetrodotoxin. N-Methyl-D-aspartate (NMDA) at concentrations up to 10 mM had virtually no effect on [3H]GABA release from horizontal cells. In Mg-free medium, NMDA stimulated [3H]GABA release, but the maximum release was only 10% of that produced by other agonists. Mg-free medium did not significantly affect the evoked release of [3H]GABA by other agonists. NMDA apparently possessed affinity for the kainate receptor, because in normal medium it antagonized the effects of kainate but not glutamate, aspartate or quisqualate. The non-selective antagonist of excitatory amino acids, (+/-)-cis-2,3-piperidine dicarboxylic acid (PDA) antagonized the action of glutamate, aspartate, kainate and quisqualate on horizontal cell [3H]GABA release. D(-)-2-Amino-4-phosphonobutyrate (APB) and D-gamma-glutamylglycine (D-gamma-GG) antagonized the actions of kainate on horizontal cell [3H]GABA release at concentrations which had little affect on quisqualate-evoked responses. Approximate estimates of pA2 values (Schild, 1947) showed that the specificity and potency of the antagonists was low. Nevertheless, the retinal 'non-NMDA' receptors can probably be subdivided into kainate and quisqualate types. Glutamate diethylester (GDEE) did not affect the action of any agonist. We conclude that glutamate (and aspartate) probably stimulate the release of [3H]GABA from frog horizontal cells by activating receptors of the non-NMDA type. This activation may trigger the opening of tetrodotoxin-insensitive Na channels, resulting in the depolarization of the cell membrane and an increase in the conductance of voltage-sensitive Ca-channels. An influx of Ca ions would then trigger the release of [3H]GABA. Our results are not consistent with previous suggestions that GABA release from horizontal cells involves an outwardly directed transport process.

Amino Acids

Effect of excitatory amino acids and analogues on [3H]acetylcholine release from amacrine cells of the rabbit retina.

The pharmacology of cholinergic amacrine cells has been further studied by examining the effects of excitatory amino acids and antagonists on [3H]acetylcholine (ACh) release from the retinas of anaesthetized rabbits. Exposure of the retina to glutamate (5 mM), aspartate (5 mM), kainate (8 microM) and quisqualate (8 microM) abolished the light-evoked release of [3H]ACh but increased the spontaneous resting release four- to fivefold. N-methyl-D-aspartate (NMDA) (5 mM) in normal Krebs bicarbonate medium abolished the light-evoked release of [3H]ACh but did not affect the resting release. However, in Mg-free medium, NMDA (0.5 mM) abolished the light-evoked release of [3H]ACh and increased the resting release fivefold. The effects of other agonists were not altered in Mg-free medium. The amplitude of the electroretinogram (e.r.g.) b-wave was not significantly reduced by glutamate, aspartate or NMDA (in normal or Mg-free medium). Kainate and quisqualate reduced the b-wave amplitude to approximately 50 and 30% of controls respectively. The general excitatory amino acid antagonist, cis-2,3-piperidine dicarboxylic acid (PDA) (2 mM) blocked the light-evoked release of [3H]ACh, but had no significant effect on the e.r.g. b-wave amplitude or on the resting release of [3H]ACh. L(+)-2-amino-4-phosphonobutyrate (L(+)-APB) decreased the light-evoked release of [3H]ACh and the amplitude of the e.r.g. b-wave in parallel (correlation coefficient 0.995). D(-)-APB had similar effects but was fifteen times less potent. Since the L(+)-compound is known to mimic the photoreceptor transmitter on the depolarizing, but not hyperpolarizing, bipolar cells, these results strongly suggest that the [3H]ACh released in response to light originates mainly from the 'on' (displaced) cholinergic amacrine cells. Our experiments give no information on the origin of the spontaneously released [3H]ACh. PDA (2-5 mM) blocked the effects of glutamate, aspartate, kainate, quisqualate and NMDA on the resting release of [3H]ACh. In contrast, D(-)-APB (5 mM), which is a relatively non-specific excitatory amino acid antagonist in the spinal cord, blocked only the actions of kainate and had no blocking effect on the actions of glutamate or aspartate (the putative bipolar cell transmitters) or NMDA. D(-)-2-amino-5-phosphonovalerate (APV) which is a relatively selective NMDA antagonist in the spinal cord failed to discriminate between the effects of kainate and NMDA on the resting release of [3H]ACh. D-alpha-aminoadipate at concentrations up to 5 mM had no effect on any of the agonists.(ABSTRACT TRUNCATED AT 400 WORDS)

2-Amino-5-phosphonovalerate

Hypothesized eye movements of neurolinguistic programming: a statistical artifact.

Neurolinguistic programming's hypothesized eye-movements were measured independently from videotapes of 30 subjects, aged 15 to 76 yr., who were asked to recall visual pictures, recorded audio sounds, and textural objects. chi 2 indicated that subjects' responses were significantly different from those predicted. When chi 2 comparisons were weighted by number of eye positions assigned to each modality (3 visual, 3 auditory, 1 kinesthetic), subjects' responses did not differ significantly from the expected pattern. These data indicate that the eye-movement hypothesis may represent randomly occurring rather than sensory-modality-related positions.

Adolescent

The uptake and radioautographical localization in the frog retina of [3H](+/-)-aminocyclohexane carboxylic acid, a selective inhibitor of neuronal GABA transport.

The accumulation of [3H](+/-)-cis-3-aminocyclohexane carboxylic acid ([3H] ACHC) in frog retinae in vitro was highly localized in horizontal cells and their processes. [3H]GABA was also mainly accumulated within horizontal cells, but [3H]L-2,4-diaminobutyric acid ([3H]DABA) was taken up predominantly by the neuroglial Müller cells, whilst [3H]beta-alanine was localised largely within the photoreceptors. The uptake of [3H]ACHC (4.2 microM) was almost linear for 30 min and after 60 min a tissue/medium ratio of 5.25 was achieved. The uptake process was temperature sensitive highly dependent on sodium ions, and appeared to be mediated by a saturable transport process with an IC50 value of 0.83 mM. The accumulation of [3H]ACHC was inhibited by GABA and DABA (IC50 = 0.32 mM and 0.23 mM, respectively) whilst beta-alanine was a relatively weak inhibitor (IC50 = 9 mM) of ACHC uptake. In agreement with these results, the efflux of [3H]ACHC from the retina was increased by exposure to ACHC, GABA and DABA but not beta-alanine. In contrast, the efflux of [3H]DABA from the retina was not increased by GABA or ACHC, although DABA itself and potassium depolarization stimulated the release of [3H]DABA. These results strongly suggest that ACHC is accumulated in the frog retina by the same neuronal transport process as GABA. In contrast, the high affinity sites for DABA are localized mainly in glia, although inhibitor and release studies suggest that, at high concentration, DABA also interacts with the neuronal GABA (ACHC) transport process.

Alanine

Clinical application of a CT based treatment planning system.

An AECL (TP-11) treatment planning system has been modified to allow multiple CT scans to be used directly for dosage calculation and display. This CT/TP-11 system has incorporated the "equivalent tissue-air ratio method" to make corrections for the effects of tissue heterogeneity and the three-dimensional nature of patient shape. In test situations, using an anatomical phantom, an accuracy of ca. 2% has been attained. An investigation has also been made to assess the importance of the reproducibility of patient position and its effect on the validity of such dosage calcualtions. When representing an advance in sophistication of existing facilities, this system has also been designed with practically in mind.

Humans

The equivalent tissue-air ratio method for making absorbed dose calculations in a heterogeneous medium.

The CT scanner makes three-dimensional anatomical information available for treatment planning, the calculational algorithm being the limiting factor in dose calculations. A method has been developed, called the "effective tissue-air ratio method," that uses all the information but reduces it to manageable proportions. The accuracy is satisfactory for a wide range of photon beam energies and clinical applications. It has been implemented in such a way that the CT scan can be used directly without the intermediate step of manually obtaining structures from either a viewing screen or a hard copy of the CT image.

Air

Implications of computed tomography for inhomogeneity corrections in photon beam dose calculations.

Patient inhomogeneity information is investigated for use in radiotherapy planning. Absorbed doses measured in a phantom are compared to doses calculated for photon beams using various treatment planning inhomogeneity correction methods. Delineation of inhomogeneities with a spatial resolution of 5 mm and with an electron density accuracy of 2% in usually sufficient to allow doses to be calculated with a mean accuracy of better than 2% for 60Co and 3% for 25-MV x rays if the authors' Equivalent Tissue-Air Ratio Method is used.

Cobalt Radioisotopes