The Doll Reflex: ocular counterrolling with head-body tilt in the median plane.
Explore the source record for details and available documents.
SEARCH · Search PubMed
Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Explore the source record for details and available documents.
It has been previously established that the application of low amplitude mechanical vibrations to the inferior rectus muscle of human subjects results in an illusory upward movement of a luminous spot fixated in total darkness, and in a corresponding overshooting of the target when the subject is asked to point to this spot. In the first experiment described here, we compared the effects of applying vibrations to each eye separately and to both eyes simultaneously, under monocular and binocular viewing conditions, in left- and right-eyed subjects. The results confirmed that proprioceptive signals arising from both eyes are involved in egocentric visual localization. A proprioceptive dominance was observed however since vibration of the dominant eye gave rise to larger pointing displacements. In addition, whichever eye was stimulated, the pointing shift induced by vibrating a covered eye was of smaller amplitude than that which occurred when vibrations were applied to the viewing eye. The second experiment showed that both the vibration induced illusions and the pointing shifts disappeared in a structured visual context, which suggests that the processes involved when the target is viewed in darkness might differ from those occurring in structured surroundings.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
The aim of this study was to investigate validity and limitation of the novel infrared system to record and analyze horizontal visual-vestibular interaction using whole-body rotation rapidly and conveniently in the routine vestibular clinic. We examined 11 patients with cerebellar dysequilibrium and 25 patients with peripheral dysequilibrium for vestibulo-ocular reflex in darkness (DVOR), visually-enhanced vestibulo-ocular reflex (VEVOR), and fixation suppression of vestibulo-ocular reflex (FSVOR), and compared the results with those of examination for head-fixed smooth pursuit and fixation suppression during caloric stimulation. The manual rotation stimuli were 0.5-0.75 Hz in frequency and 60-90 degrees /s in maximal angular velocity. Gain of vestibulo-ocular reflex in darkness was not significantly correlated with maximal slow phase velocity (MSPV) of caloric-induced nystagmus at that stimulus condition either in patients with peripheral dysequilibrium or in those with cerebellar dysequilibrium. An index for fixation suppression of vestibulo-ocular reflex during rotation stimulus was significantly lower in patients with cerebellar dysequilibrium than in normal control subjects and those with peripheral dysequilibrium. On the other hand, there was no significant difference among the two disease groups and the normal control group in gain of visually-enhanced vestibulo-ocular reflex. In about a half of patients with cerebellar dysequilibrium, measured smooth pursuit gain was lower than estimated smooth pursuit gain calculated based on a simple superposition theory of vestibulo-ocular reflex and smooth pursuit. Testing fixation suppression using the present system is an unusually convenient tool for detection of cerebellar dysequilibrium.
The paper provides: (1) a review of the ocular cyclorotation literature; (2) an overview of the environmental factors such as posture and viewing conditions, including biocularity and distance, that can produce ocular cyclorotation; and (3) a discussion of how ocular cyclorotation can affect toric contact lens fitting and performance.
We studied the effects on saccades of ablation of the dorsal cerebellar vermis (lesions centered on lobules VI and VII) in three monkeys in which the deep cerebellar nuclei were spared. One animal, with a symmetrical lesion, showed bilateral hypometric horizontal saccades. Two animals, with asymmetrical lesions, showed hypometric ipsilateral saccades, and saccades to vertically positioned targets were misdirected, usually deviating away from the side to which horizontal saccades were hypometric. Postlesion, all animals showed an increase (2- to 5-fold) in trial-to-trial variability of saccade amplitude. They also showed a change in the ratio of the amplitudes of centripetal to centrifugal saccades (orbital-position effect); usually centrifugal saccades became smaller. In the two animals with asymmetrical lesions, for saccades in the hypometric direction, latencies were markedly increased (up to approximately 500 ms). There was also an absence of express and anticipatory saccades in the hypometric direction. When overall saccade latency was increased, centrifugal saccades became relatively more delayed than centripetal saccades. The dynamic characteristics of saccades were affected to some extent in all monkeys with changes in peak velocity, eye acceleration, and especially eye deceleration. There was relatively little effect of orbital position on saccade dynamics, however, with the exception of one animal that showed an orbital position effect for eye acceleration. In a double-step adaptation paradigm, animals showed an impaired ability to adaptively adjust saccade amplitude, though increased amplitude variability postlesion may have played a role in this deficit. During a single training session, however, the latency to corrective saccades-which had been increased postlesion-gradually decreased and so enabled the animal to reach the final position of the target more quickly. Overall, both in the early postlesion period and during recovery, changes in saccade amplitude and latency tended to vary together but not with changes in saccade dynamics or adaptive capability, both of which behaved relatively independently. These findings suggest that the cerebellum can adjust saccade amplitude and saccade dynamics independently. Our results implicate the cerebellar vermis directly in every aspect of the on-line control of saccades: initiation (latency), accuracy (amplitude and direction), and dynamics (velocity and acceleration) and also in the acquisition of adaptive ocular motor behavior.
The optical density of human macular pigment was measured for 50 observers ranging in age from 10 to 90 years. The psychophysical method required adjusting the radiance of a 1 degree, monochromatic light (400-550 nm) to minimize flicker (15 Hz) when presented in counterphase with a 460 nm standard. This test stimulus was presented superimposed on a broad-band, short-wave background. Macular pigment density was determined by comparing sensitivity under these conditions for the fovea, where macular pigment is maximal, and 5 degrees temporally. This difference spectrum, measured for 12 observers, matched Wyszecki and Stiles's standard density spectrum for macular pigment. To study variation in macular pigment density for a larger group of observers, measurements were made at only selected spectral points (460, 500 and 550 nm). The mean optical density at 460 nm for the complete sample of 50 subjects was 0.39. Substantial individual differences in density were found (ca. 0.10-0.80), but this variation was not systematically related to age.
Explore the source record for details and available documents.
BACKGROUND: We present a 13-year followup of a case of Wallenberg's syndrome, including a first-person account and ocular motor abnormalities. METHODS: Objective infrared eye-tracking systems were used to record horizontal and vertical eye movements binocularly under a variety of conditions. RESULTS: Fixation in the dark along the midline remained as before, with vestibular jerk nystagmus continuously present. While saccades and pursuit to a visual target also remained the same as found earlier, fixation was somewhat worse, revealing not only saccadic intrusions but also a prominent right-jerk nystagmus. DISCUSSION: The results suggest lack of additional oculomotor neural plasticity after the end of the initial 10-year test period, and furthermore reveal apparent subtle age-related changes in oculomotor responsivity.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
Explore the source record for details and available documents.
(1) Eye-head coordination was studied in three human beings with absent labyrinthine function. Each subject adopted a unique pattern of adaptive responses to achieve optimal gaze stability. (2) One subject used saccades (even in darkness) to help stabilize gaze. In addition, during rotation of the body with the head stationary in darkness, he made slow and quick phases of nystagmus in the same direction. This subject apparently used quick phases to help stabilize gaze rather than to redirect the center of visual attention. (3) One subject, to help prevent gaze overshoot, showed a decrease in the saccadic amplitude-retinal error relationship selectively during active combined eye-head movements. (4) One subject showed a significant amount of preprogramming of compensatory slow phases independent of actual head motion. (5) In all subjects, the passively induced cervico-ocular reflex was moderately potentiated, accounting for about 25% of compensation for head motion during active target seeking. (6) In all subjects, 'effort of spatial localization', as shown by imagining targets in total darkness, increased the velocity of compensatory slow phases to near that of head movements during both active and passively induced head rotations. (7) In all subjects, gaze stability was enhanced during tracking of targets jumping in a predictable fashion. (8) The choice of strategies used by each subject may depend, in part, upon the latency of the cervico-ocular reflex during active head movements.
The interpretation of the edrophonium (Tensilon) test in the diagnosis of acquired strabismus caused by myasthenia gravis has been problematic because of poorly defined endpoints and unknown sensitivity and specificity. We evaluated the endpoint criteria, dynamics, sensitivity, and specificity of binocular alignment in response to edrophonium by using the Hess screen test in ten normal control subjects, 12 nonmyasthenic patients with acquired strabismus, and in ten patients with acquired strabismus caused by ocular myasthenia gravis. A positive response to the edrophonium-Hess screen test was defined as a 50% or greater reduction in the strabismic deviation at the fixation point associated with maximum deviation within one minute of edrophonium infusion. All myasthenic patients had a 50% or greater reduction in the initial deviation within one minute of edrophonium infusion. Myasthenic patients had a statistically significant reduction in the average deviation up to 150 seconds after edrophonium infusion (P < .05 for all time periods). In contrast, with or without edrophonium infusion, control subjects had a purely horizontal fluctuation in binocular alignment of less than or equal to 2 degrees for the entire four-minute period after edrophonium infusion. None of the 12 nonmyasthenic patients tested positive to the edrophonium-Hess screen test. According to the criterion of positive response as was defined in this study, the test had a high sensitivity and specificity in this sample. These results suggest that clearly defined endpoint criteria make the edrophonium-Hess screen test a sensitive and specific quantitative study for the diagnosis of acquired strabismus caused by myasthenia gravis.