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Anomalous retinal pathways in the Siamese cat: an inadequate substrate for normal bioncular vision.

All major retinal pathways in the Siamese cat are abnormal, with almost total crossing of the projections to the pretectum and superior colliculus. These projections represent a marked disruption in the customary neural substrate for binocular vision, which implies a consequent impairment in stereoscopic depth perception. Crossed eyes, commonly seen in the Siamese cat, may therefore arise from a neuroanatomical defect in the primary visual pathways.

Animals↗

Absence of the relative afferent pupillary defect with monocular temporal visual field loss.

We report five patients with monocular temporal visual field abnormalities who did not have clinically detectable relative afferent pupillary defects. The causes for the field defects were posterior ischemic optic neuropathy, craniopharyngioma, pituitary adenoma, pseudotumor cerebri, and traumatic optic neuropathy. We discuss the possible explanations for our observations, considering the known anatomy of the pregeniculate visual pathways and the afferent pupillary pathways.

Adenoma↗

[Visual system in the light of the study of evoked potentials after stimulation by pattern stimuli in healthy subjects].

In 65 healthy subjects aged 18-70 the characteristics of VEPs elicited with two kind of "pattern reversal" stimulus, checkerboard and gratings, in 13 various configurations were tested. In the recordings the latency and amplitude of peaks P1, N1, P100 and N2, and the difference between maximum and minimum amplitude and correlation coefficient for the cerebral hemispheres were analysed. It was found that checkerboard and gratings elicited in the both hemispheres the responses of comparable latencies and their amplitudes were consequently greater over the left hemisphere. Analyses of the correlation between VEPs and gender showed no influence on latencies and the occurrence of greater amplitudes in females and lower correlation coefficients in males. Differences were noted between potentials evoked by monocular and binocular stimulation, and for the responses elicited with the patterns of checkerboard and gratings, which reflects the activation of two separate channels of the visual system. It was also shown that the characteristics of VEPs obtained using for stimulation the fractionated visual field (checkerboard in the individual hemi-fields and quadrants) was consistent with the topography of visual pathways and retinotopic organisation of the striate cortex, which would suggest a location of the main generator of VEPs in Brodmann's area 17.

Adolescent↗

Evoked potential studies in neurological disorders.

Techniques for recording and analysing visual and somatosensory evoked reponses using an on-line PDP 11/40 computer have been developed and applied to a group of subjects with established or suspected multiple sclerosis as well as to patients with a variety of other lesions of the visual pathways, myoclonic epilepsy and functional neurological deficits. The most consistent responses were obtained using the pattern reversal visual evoked response and the spinal somatosensory evoked response, abnormal responses being found with both techniques in a significant number of patients with suspected demyelinating disease even in the absence of symptoms or signs referable to the visual or somatosensory pathways. The complementary role of these techniques in the detection of sub-clinical abnormalities of conduction in sensory pathways in patients with suspected MS is emphasized.

Adolescent↗

Impaired motor learning and diffuse axonal damage in motor and visual systems of the rat following traumatic brain injury.

Cognitive-motor functioning or motor skill learning is impaired in humans following traumatic brain injury. A more complete understanding of the mechanisms involved in disorders of motor skill learning is essential for any effective rehabilitation. The specific goals of this study were to examine motor learning disorders, and their relationship to pathological changes in adult rats with mild to moderate closed head injury. Motor learning deficits were determined by comparing the ability to complete a series of complex motor learning tasks with simple motor activity. The extent of neuronal damage was determined using silver impregnation. At all post-injury time points (day 1 to day 14), statistically significant deficits were observed in parallel bar traversing, foot placing, ladder climbing, and rope climbing. Performance improved with time, but never reached control levels. In contrast, no deficits were found in simple motor activity skills tested with beam balance and runway traverse. Histologically, axonal degeneration was widely distributed in several brain areas that relate to motor learning, including the white matter of sensorimotor cortex, corpus callosum, striatum, thalamus and cerebellum. Additionally, severely damaged axons were observed in the primary visual pathway, including the optic chiasm, optic tract, lateral geniculate nuclei, and superior colliculus. These findings suggest that motor learning deficits could be detected in mild or moderate brain injury, and this deficit could be attributed to a diffuse axonal injury distributed both in the motor and the visual systems.

Animals↗

Psychophysics of motion adaptation parallels insect electrophysiology.

We investigate the form and time course of motion adaptation, comparing the psychophysical performance of human subjects with existing electrophysiological data on insect vision. In the H1 neuron of the fly, the response to a maintained motion stimulus is known to decrease over time while sensitivity to variations in speed around the maintained level increases. This behaviour can be modelled by modifying a correlation-based motion detector to include adaptable temporal filters (Fig. 1). We find that the form and time course of sensitivity changes in human motion perception are comparable to fly vision. We propose that, in both cases, adaptation serves to improve the transmission of novel motion information along the visual pathways at the expense of maintaining an accurate representation of the unchanging components of the stimulus.

Adaptation, Physiological↗

Visual evoked potentials altered by serum IgG of patients with multiple sclerosis.

Immunoglobulin G, isolated from serum of patients with multiple sclerosis was repeatedly injected into guinea pigs and serial visual evoked potentials were recorded. Latency changes indicated a reversible delay in conduction velocity in the central visual pathways. This finding suggests that some component of immunoglobulin plays a role in the pathogenesis of multiple sclerosis.

Animals↗

Fast and slow parietal pathways mediate spatial attention.

Mechanisms of selective attention are vital for guiding human behavior. The parietal cortex has long been recognized as a neural substrate of spatial attention, but the unique role of distinct parietal subregions has remained unclear. Using single-pulse transcranial magnetic stimulation, we found that the angular gyrus of the right parietal cortex mediates spatial orienting during two distinct time periods after the onset of a behaviorally relevant event. The biphasic involvement of the angular gyrus suggests that both fast and slow visual pathways are necessary for orienting spatial attention.

Attention↗

Unique profile of visuo-perceptual skills in a genetic syndrome.

Williams syndrome (WS) and Down syndrome (DS) are genetic disorders with characteristic neuropsychological profiles. Subjects with WS show surface similarities to subjects with right hemisphere damage (RHD) in their relative preservation of linguistic skills, their poor visuo-constructive skills, and their hierarchical processing biases. Ten adolescents and young adults with WS and nine matched subjects with DS were administered a battery of visuospatial perceptual tasks to test whether the profile of performance in WS would resemble that in RHD. It was found instead that the WS subjects showed a distinctive clustering of skills, with particular preservation of facial discrimination, but impairment of other perceptual skills. Subjects with DS showed a more homogeneous profile. The WS profile may map onto the functional dichotomy between ventral and dorsal visual pathways in the cerebral cortex.

Adolescent↗

Effects of early monocular deprivation on choline acetyltransferase and glutamic acid decarboxylase in pigeon visual Wulst.

Choline acetyltransferase (ChAT) and glutamic acid decarboxylase (GAD) activities were measured in various visual structures of the pigeon brain after long-term monocular deprivation followed by short-term binocular presence or absence of light stimulation. The short-term phase (45 min) was coupled with a 2-deoxyglucose experiment in order to select the adequate brain samples. After mononuclear deprivation during the first 6-11 months, ChAT activity was higher by 40-60% in the dorsolateral visual Wulst contralateral to the deprived eye, as compared to the other side. In the same structure, animals, either monocularly deprived or undeprived and exposed binocularly to environmental light for 45 min, had higher ChAT activities on both sides than those maintained in the dark. Mononuclear deprivation performed in adult animals did not affect the ChAT activity in visual Wulst. GAD activity was bilaterally decreased in the visual Wulst after early monocular deprivation. These results suggest that early monocular deprivation has an effect on biochemical systems involved in synaptic transmission at selected relays of the visual pathways.

Age Factors↗

Spatial summation of blue-on-yellow light increments and decrements in human vision.

In the primate retina, blue-OFF cells are less numerous than blue-ON cells but no psychophysical equivalent of this asymmetry has been found so far. The hypothesis put forward in the present study is that the ON-OFF asymmetry should manifest itself in the size and effectiveness of spatial summation of S-cone signals of opposite polarity. To test this hypothesis upon selective stimulation of the S-cones in man, a 3 cd/m(2) blue light was superimposed on a 300 cd/m(2) yellow background and the test stimulus consisted in a luminance increment or decrement of the blue light from its steady level over a circular area of variable size. The test stimuli were presented at 12.5 degrees retinal eccentricity. Within the test-stimulus spectral band, sensitivity was that of Stiles' pi(1) mechanism. Increasing stimulus area reduced more the decrement threshold than the increment threshold, and Ricco's area was larger for luminance decrements (0.8-2 degrees ) than for increments (0.6-0.9 degrees ). Experiments with red-on-red stimuli confirmed that the large summation area and stimulus-polarity-dependent spatial summation are specific for the isolated S-cone signals. The sign-dependency of spatial summation is probably a psychophysical correlate of the asymmetry of the ON- and OFF- visual pathways receiving S-cone input.

Adult↗

Magnocellular and parvocellular contributions to backward masking dysfunction in schizophrenia.

Patients with schizophrenia have repeatedly shown deficits in visual processing. These deficits have been well documented using visual backward masking (VBM). The VBM deficit in schizophrenia is thought to be due to aberrant interactions between magnocellular (M) and parvocellular (P) visual pathways. To date, no study has studied these claims with rigorous stimuli isolating M and P pathway responses. This study examined the function of each pathway and their interactions by creating M- and P-biased targets based on their known physiological properties. The M system responds to very low luminance contrast whereas the P system does not, and the P system responds to color contrast whereas the M system generally does not. Thus, to activate the P system, target letters and masks utilized color contrast, and to activate the M system, target letters and masks utilized very low luminance contrast. Four conditions were presented such that M- and P-biased targets were paired with both M- and P-biased masks. A significant Group x Mask Condition interaction was found when a P target was used in combination with an M or P mask, but not when an M target was used. In particular, schizophrenia patients needed significantly longer interstimulus intervals (ISIs) than controls to escape from masking in the P target/M mask condition, but not in any of the other three conditions. In addition, the critical stimulus durations (CSDs) for unmasked stimuli were significantly increased for both M and P targets in patients relative to controls. These findings demonstrate a significant impairment in M, but not P pathway, function in patients with schizophrenia. Furthermore, deficits of letter identification, including those of P targets, may also reflect impairment of the M pathway given the priming function of the dorsal stream.

Adult↗

Intracortical termination of the retino-geniculo-striate pathway studied with transsynaptic tracer (wheat germ agglutinin-horseradish peroxidase) and cytochrome oxidase staining in the macaque monkey.

The tracer, wheat germ agglutinin conjugated to horseradish peroxidase (WGA-HRP), was used as a transneuronal marker in the macaque monkey to study retino-geniculo-striate pathway terminals in area 17. Concomitantly, we stained matching sections for metabolic capacity using the cytochrome oxidase staining technique. Terminal labeling by WGA-HRP and cytochrome oxidase activity staining revealed duplicate patterns in layers II and III, IVA, IVC alpha, IVC beta, and VI. The absence of WGA-HRP-labeled neuronal cell bodies in area 17 supports the conclusion that WGA-HRP is a transsynaptic marker in the macaque visual pathways.

Animals↗

Visual development of infants with severe ocular disorders.

Among 11 patients who presented as blind in early infancy, with Leber's congenital amaurosis (5 patients), optic nerve hypoplasia (4 patients), or macular colobomata (2 patients), 8 developed visually guided behavior and measurable grating acuity by age 5 to 46 months. All children with measurable grating acuity demonstrated visually guided mobility. Grating acuity was predictive of later visual performance in 10 of 11 patients by age 12 to 16 months. The best grating acuity attained by 7 months was 1.3 to 3.0 cycles/degrees (20/460 to 20/200) and 0.13 cycles/degrees (20/4700) by month 8. Two patients with Leber's congenital amaurosis and one with optic nerve hypoplasia remained blind. No clinical features existed to differentiate these three patients from the eight whose visual status improved. Posterior visual pathway maturation may underlie the improvement.

Child↗

Understanding the recognition of facial identity and facial expression.

Faces convey a wealth of social signals. A dominant view in face-perception research has been that the recognition of facial identity and facial expression involves separable visual pathways at the functional and neural levels, and data from experimental, neuropsychological, functional imaging and cell-recording studies are commonly interpreted within this framework. However, the existing evidence supports this model less strongly than is often assumed. Alongside this two-pathway framework, other possible models of facial identity and expression recognition, including one that has emerged from principal component analysis techniques, should be considered.

Face↗

Presumed bilateral occipital neurosarcoidosis. A case report.

A 37-year-old man with a history of sarcoidosis, hypertension, asthma, depression and prior intravenous drug use presented with complaints of difficulty in finding his way around the house, headache, and blurred vision in both eyes. The symptoms had been increasing in severity over the prior several months. Physical examination showed normal visual acuity, pupil reactions, and fundi but severe, circumferential constriction of the visual fields bilaterally. The visual fields enlarged appropriately on increasing the distance from the patient to the tangent screen. Neuroimaging revealed bilateral, occipital meningeal involvement and parenchymal lesions consistent with sarcoidosis. Treatment with oral corticosteroids produced a mild subjective improvement in the patient's symptoms and stabilized the visual fields, without improving them. This case represents an unusual presentation of presumed neurosarcoidosis involving the visual pathways at the level of the occipital lobes.

Adult↗

Retinogeniculate connections: A balancing act between connection specificity and receptive field diversity.

Retinogeniculate connections are one of the most striking examples of connection specificity within the visual pathway. In almost every connection there is one dominant afferent cell per geniculate cell, and both afferent and geniculate cells have very similar receptive fields. The remarkable specificity and strength of retinogeniculate connections have inspired comparisons of the lateral geniculate nucleus (LGN) with a simple relay that connects the retina with the visual cortex. However, because each retinal ganglion cell diverges to innervate multiple cells in the LGN, most geniculate cells must receive additional inputs from other retinal afferents that are not the dominant ones. These additional afferents make weaker connections and their receptive fields are not as perfectly matched with the geniculate target as the dominant afferent. We argue that these 'match imperfections' are important to create receptive field diversity among the cells that represent each point of visual space in the LGN. We propose that the convergence of dominant and weak retinal afferents in the LGN multiplexes the array of retinal ganglion cells by creating receptive fields that have a richer range of positions, sizes and response time courses than those available at the ganglion cell layer of the retina.

Animals↗