Blink-perturbed saccades in monkey. I. Behavioral analysis.
- 1 June 2000
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 83 (6) , 3411-3429
- https://doi.org/10.1152/jn.2000.83.6.3411
Abstract
Saccadic eye movements are thought to be influenced by blinking through premotor interactions, but it is still unclear how. The present paper describes the properties of blink-associated eye movements and quantifies the effect of reflex blinks on the latencies, metrics, and kinematics of saccades in the monkey. In particular, it is examined to what extent the saccadic system accounts for blink-related perturbations of the saccade trajectory. Trigeminal reflex blinks were elicited near the onset of visually evoked saccades by means of air puffs directed on the eye. Reflex blinks were also evoked during a straight-ahead fixation task. Eye and eyelid movements were measured with the magnetic-induction technique. The data show that saccade latencies were reduced substantially when reflex blinks were evoked prior to the impending visual saccades as if these saccades were triggered by the blink. The evoked blinks also caused profound spatial-temporal perturbations of the saccades. Deflections of the saccade trajectory, usually upward, extended up to approximately 15 degrees. Saccade peak velocities were reduced, and a two- to threefold increase in saccade duration was typically observed. In general, these perturbations were largely compensated in saccade mid-flight, despite the absence of visual feedback, yielding near-normal endpoint accuracies. Further analysis revealed that blink-perturbed saccades could not be described as a linear superposition of a pure blink-associated eye movement and an unperturbed saccade. When evoked during straight-ahead fixation, blinks were accompanied by initially upward and slightly abducting eye rotations of approximately 2-15 degrees. Back and forth wiggles of the eye were frequently seen; but in many cases the return movement was incomplete. Rather than drifting back to its starting position, the eye then maintained its eccentric orbital position until a downward corrective saccade toward the fixation spot followed. Blink-associated eye movements were quite rapid, albeit slower than saccades, and the velocity-amplitude-duration characteristics of the initial excursions as well as the return movements were approximately linear. These data strongly support the idea that blinks interfere with the saccade premotor circuit, presumably upstream from the neural eye-position integrator. They also indicated that a neural mechanism, rather than passive elastic restoring forces within the oculomotor plant, underlies the compensatory behavior. The tight latency coupling between saccades and blinks is consistent with an inhibition of omnipause neurons by the blink system, suggesting that the observed changes in saccade kinematics arise elsewhere in the saccadic premotor system.Keywords
This publication has 41 references indexed in Scilit:
- Endpoint accuracy in saccades interrupted by stimulation in the omnipause region in monkeyVisual Neuroscience, 1996
- The Anatomy and Physiology of Primate Neurons that Control Rapid Eye MovementsAnnual Review of Neuroscience, 1994
- Quantitative analysis of eyelid movement metrics reveals the highly stereotyped nature of monkey blinksBrain Research, 1993
- MICROSACCADIC FLUTTERBrain, 1991
- Raphe nucleus of the pons containing omnipause neurons of the oculomotor system in the monkey, and Its homologue in manJournal of Comparative Neurology, 1988
- Anatomical observation on the afferent projections to the retractor bulbi motoneuronal cell group and other pathways possibly related to the blink reflex in the catBrain Research, 1986
- Blink‐induced saccadic oscillationsAnnals of Neurology, 1986
- Corollary Discharge Provides Accurate Eye Position Information to the Oculomotor SystemScience, 1983
- Neuronal unit activity in the abducens nucleus during classical conditioning of the nictitating membrane response in the rabbit (Oryctolagus cuniculus).Journal of Comparative and Physiological Psychology, 1979
- Unit activity in the pontine reticular formation associated with eye movementsBrain Research, 1972