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Erschienen in: Experimental Brain Research 1/2005

01.01.2005 | Research Article

Spatial orientation of optokinetic nystagmus and ocular pursuit during orbital space flight

verfasst von: Steven T. Moore, Bernard Cohen, Theodore Raphan, Alain Berthoz, Gilles Clément

Erschienen in: Experimental Brain Research | Ausgabe 1/2005

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Abstract

On Earth, eye velocity of horizontal optokinetic nystagmus (OKN) orients to gravito-inertial acceleration (GIA), the sum of linear accelerations acting on the head and body. We determined whether adaptation to microgravity altered this orientation and whether ocular pursuit exhibited similar properties. Eye movements of four astronauts were recorded with three-dimensional video-oculography. Optokinetic stimuli were stripes moving horizontally, vertically, and obliquely at 30°/s. Ocular pursuit was produced by a spot moving horizontally or vertically at 20°/s. Subjects were either stationary or were centrifuged during OKN with 1 or 0.5 g of interaural or dorsoventral centripetal linear acceleration. Average eye position during OKN (the beating field) moved into the quick-phase direction by 10° during lateral and upward field movement in all conditions. The beating field did not shift up during downward OKN on Earth, but there was a strong upward movement of the beating field (9°) during downward OKN in the absence of gravity; this likely represents an adaptation to the lack of a vertical 1-g bias in-flight. The horizontal OKN velocity axis tilted 9° in the roll plane toward the GIA during interaural centrifugation, both on Earth and in space. During oblique OKN, the velocity vector tilted towards the GIA in the roll plane when there was a disparity between the direction of stripe motion and the GIA, but not when the two were aligned. In contrast, dorsoventral acceleration tilted the horizontal OKN velocity vector 6° in pitch away from the GIA. Roll tilts of the horizontal OKN velocity vector toward the GIA during interaural centrifugation are consistent with the orientation properties of velocity storage, but pitch tilts away from the GIA when centrifuged while supine are not. We speculate that visual suppression during OKN may have caused the velocity vector to tilt away from the GIA during dorsoventral centrifugation. Vertical OKN and ocular pursuit did not exhibit orientation toward the GIA in any condition. Static full-body roll tilts and centrifugation generating an equivalent interaural acceleration produced the same tilts in the horizontal OKN velocity before and after flight. Thus, the magnitude of tilt in OKN velocity was dependent on the magnitude of interaural linear acceleration, rather than the tilt of the GIA with regard to the head. These results favor a ‘filter’ model of spatial orientation in which orienting eye movements are proportional to the magnitude of low frequency interaural linear acceleration, rather than models that postulate an internal representation of gravity as the basis for spatial orientation.
Literatur
Zurück zum Zitat Andre-Deshays C, Israel I, Charade O, Berthoz A, Popov K, Lipshits M (1993) Gaze control in microgravity. 1. Saccades, pursuit and eye-head coordination. J Vestib Res 3:331–343PubMed Andre-Deshays C, Israel I, Charade O, Berthoz A, Popov K, Lipshits M (1993) Gaze control in microgravity. 1. Saccades, pursuit and eye-head coordination. J Vestib Res 3:331–343PubMed
Zurück zum Zitat Angelaki DA, Wei M, Merfeld DM (2001) Vestibular discrimination of gravity and translational acceleration. Ann NY Acad Sci 942:114–127PubMed Angelaki DA, Wei M, Merfeld DM (2001) Vestibular discrimination of gravity and translational acceleration. Ann NY Acad Sci 942:114–127PubMed
Zurück zum Zitat Angelaki DE, Hess BJM (1994) Inertial representation of angular motion in the vestibular system of rhesus monkeys. I. Vestibuloocular reflex. J Neurophysiol 71:1222–1249PubMed Angelaki DE, Hess BJM (1994) Inertial representation of angular motion in the vestibular system of rhesus monkeys. I. Vestibuloocular reflex. J Neurophysiol 71:1222–1249PubMed
Zurück zum Zitat Angelaki DE, Hess BJM (1995) Inertial representation of angular motion in the vestibular system of rhesus monkeys. II. Otolith-controlled transformation that depends on an intact cerebellar nodulus. J Neurophysiol 73:1729–1751PubMed Angelaki DE, Hess BJM (1995) Inertial representation of angular motion in the vestibular system of rhesus monkeys. II. Otolith-controlled transformation that depends on an intact cerebellar nodulus. J Neurophysiol 73:1729–1751PubMed
Zurück zum Zitat Angelaki DE, McHenry MQ, Dickman D, Newlands SD, Hess BJM (1999) Computation of inertial motion: neural strategies to resolve ambiguous otolith information. J Neuroscience 19:316–327 Angelaki DE, McHenry MQ, Dickman D, Newlands SD, Hess BJM (1999) Computation of inertial motion: neural strategies to resolve ambiguous otolith information. J Neuroscience 19:316–327
Zurück zum Zitat Angelaki DE, Merfeld DM, Hess BJM (2000) Low frequency otolith and semicircular canal interactions after canal inactivation. Exp Brain Res 132:539–549CrossRefPubMed Angelaki DE, Merfeld DM, Hess BJM (2000) Low frequency otolith and semicircular canal interactions after canal inactivation. Exp Brain Res 132:539–549CrossRefPubMed
Zurück zum Zitat Baloh R, Yee R, Honrubia V, Jacobson K (1988) A comparison of the dynamics of horizontal and vertical smooth pursuit in normal human subjects. Aviat Space Environ Med 59:121–124PubMed Baloh R, Yee R, Honrubia V, Jacobson K (1988) A comparison of the dynamics of horizontal and vertical smooth pursuit in normal human subjects. Aviat Space Environ Med 59:121–124PubMed
Zurück zum Zitat Benson AJ (1974) Modification of the response to angular accelerations by linear accelerations. In: Kornhuber H (ed) Handbook of sensory physiology. Springer, Berlin, pp 281–320 Benson AJ (1974) Modification of the response to angular accelerations by linear accelerations. In: Kornhuber H (ed) Handbook of sensory physiology. Springer, Berlin, pp 281–320
Zurück zum Zitat Berthoz A, Brandt T, Dichgans J, Probst T, Bruzek W, Vieville T (1986) European vestibular experiments on the Spacelab-1 mission: 5. Contribution of the otoliths to the vertical vestibulo-ocular reflex. Exp Brain Res 64:272–278PubMed Berthoz A, Brandt T, Dichgans J, Probst T, Bruzek W, Vieville T (1986) European vestibular experiments on the Spacelab-1 mission: 5. Contribution of the otoliths to the vertical vestibulo-ocular reflex. Exp Brain Res 64:272–278PubMed
Zurück zum Zitat Bockisch CJ, Haslwanter T (2001) Three-dimensional eye position during static roll and pitch in humans. Vis Res 41:2127–2137CrossRefPubMed Bockisch CJ, Haslwanter T (2001) Three-dimensional eye position during static roll and pitch in humans. Vis Res 41:2127–2137CrossRefPubMed
Zurück zum Zitat Borries GVT (1926) Fixation and nystagmus. Linds, Copenhagen Borries GVT (1926) Fixation and nystagmus. Linds, Copenhagen
Zurück zum Zitat Brandt T (1999) Vertigo. Springer-Verlag, London Brandt T (1999) Vertigo. Springer-Verlag, London
Zurück zum Zitat Brucher JM (1964) L’aire oculogyre frontale du singe. Ses fonctions et ses voies efferents. In: Editions Arscia. Librairie maloine, Bruxelles-Paris Brucher JM (1964) L’aire oculogyre frontale du singe. Ses fonctions et ses voies efferents. In: Editions Arscia. Librairie maloine, Bruxelles-Paris
Zurück zum Zitat Chun K-S, Robinson DA (1978) A model of quick phase generation in the vestibuloocular reflex. Biol Cybern 28:209–221PubMed Chun K-S, Robinson DA (1978) A model of quick phase generation in the vestibuloocular reflex. Biol Cybern 28:209–221PubMed
Zurück zum Zitat Clarke AH, Grigull J, Mueller R, Scherer H (2000) The three-dimensional vestibulo-ocular reflex during prolonged microgravity. Exp Brain Res 134:322–334CrossRefPubMed Clarke AH, Grigull J, Mueller R, Scherer H (2000) The three-dimensional vestibulo-ocular reflex during prolonged microgravity. Exp Brain Res 134:322–334CrossRefPubMed
Zurück zum Zitat Clément G (1998) Alteration of eye movements and motion perception in microgravity. Brain Res Rev 28:161–172CrossRefPubMed Clément G (1998) Alteration of eye movements and motion perception in microgravity. Brain Res Rev 28:161–172CrossRefPubMed
Zurück zum Zitat Clément G, Lathan CE (1991) Effect of static tilt about the roll axis on horizontal and vertical optokinetic nystagmus and optokinetic after-nystagmus in humans. Exp Brain Res 84:335–341PubMed Clément G, Lathan CE (1991) Effect of static tilt about the roll axis on horizontal and vertical optokinetic nystagmus and optokinetic after-nystagmus in humans. Exp Brain Res 84:335–341PubMed
Zurück zum Zitat Clément G, Reschke MF (1996) Neurosensory and sensory-motor functions. In: Moore D, Bie P, Oser H (eds) Biological and medical research in space: an overview of life sciences research in microgravity. Springer-Verlag, Heidelberg, pp 178–258 Clément G, Reschke MF (1996) Neurosensory and sensory-motor functions. In: Moore D, Bie P, Oser H (eds) Biological and medical research in space: an overview of life sciences research in microgravity. Springer-Verlag, Heidelberg, pp 178–258
Zurück zum Zitat Clément G, Reschke MF, Verrett CM, Wood SJ (1992a) Effects of gravitational force variation on optokinetic nystagmus and on perception of visual stimulus orientation. Aviat Space Environ Med 63:771–777PubMed Clément G, Reschke MF, Verrett CM, Wood SJ (1992a) Effects of gravitational force variation on optokinetic nystagmus and on perception of visual stimulus orientation. Aviat Space Environ Med 63:771–777PubMed
Zurück zum Zitat Clément G, Wood SJ, Reschke MF (1992b) Effects of microgravity on the interaction of vestibular and optokinetic nystagmus in the vertical plane. Aviat Space Environ Med 63:778–784PubMed Clément G, Wood SJ, Reschke MF (1992b) Effects of microgravity on the interaction of vestibular and optokinetic nystagmus in the vertical plane. Aviat Space Environ Med 63:778–784PubMed
Zurück zum Zitat Clément G, Moore ST, Raphan T, Cohen B (2001) Perception of tilt (somatogravic illusion) in response to sustained linear acceleration during space flight. Exp Brain Res 138:410–418CrossRefPubMed Clément G, Moore ST, Raphan T, Cohen B (2001) Perception of tilt (somatogravic illusion) in response to sustained linear acceleration during space flight. Exp Brain Res 138:410–418CrossRefPubMed
Zurück zum Zitat Cohen B, Matsuo V, Raphan T (1977) Quantitative analysis of the velocity characteristics of optokinetic nystagmus and optokinetic after-nystagmus. J Physiol (Lond) 270:321–344 Cohen B, Matsuo V, Raphan T (1977) Quantitative analysis of the velocity characteristics of optokinetic nystagmus and optokinetic after-nystagmus. J Physiol (Lond) 270:321–344
Zurück zum Zitat Cohen B, Raphan T, Solomon D, Helwig D, Cohen N, Kozlovskaya IB, Sirota MG, Yakushin SB (1991) Effects of spaceflight in the “Cosmos” biosatellite 2044 on the VOR of Rhesus Monkey. Proceedings: International Meeting “Biosatellite Cosmos”, Leningrad 12–15 August. IMBP, Moscow, pp 113 Cohen B, Raphan T, Solomon D, Helwig D, Cohen N, Kozlovskaya IB, Sirota MG, Yakushin SB (1991) Effects of spaceflight in the “Cosmos” biosatellite 2044 on the VOR of Rhesus Monkey. Proceedings: International Meeting “Biosatellite Cosmos”, Leningrad 12–15 August. IMBP, Moscow, pp 113
Zurück zum Zitat Cohen B, Maruta J, Raphan T (2001) Orientation of the eyes to gravito-inertial acceleration. Ann NY Acad Sci 942:241–258PubMed Cohen B, Maruta J, Raphan T (2001) Orientation of the eyes to gravito-inertial acceleration. Ann NY Acad Sci 942:241–258PubMed
Zurück zum Zitat Collewijn H (1969) Optokinetic eye movements in the rabbit: input-output relations. Vision Res 9:117–132CrossRefPubMed Collewijn H (1969) Optokinetic eye movements in the rabbit: input-output relations. Vision Res 9:117–132CrossRefPubMed
Zurück zum Zitat Crawford JD, Vilis T (1991) Axes of eye rotation and Listing’s law during rotations of the head. J Neurophysiol 65:407–423PubMed Crawford JD, Vilis T (1991) Axes of eye rotation and Listing’s law during rotations of the head. J Neurophysiol 65:407–423PubMed
Zurück zum Zitat Dai M, Raphan T, Cohen B (1991) Spatial orientation of the vestibular system: dependence of optokinetic after nystagmus on gravity. J Neurophysiol 66:1422–1438PubMed Dai M, Raphan T, Cohen B (1991) Spatial orientation of the vestibular system: dependence of optokinetic after nystagmus on gravity. J Neurophysiol 66:1422–1438PubMed
Zurück zum Zitat Dai M, McGarvie L, Kozlovskaya IB, Raphan T, Cohen B (1994) Effects of spaceflight on ocular counterrolling and spatial orientation of the vestibular system. Exp Brain Res 102:45–56PubMed Dai M, McGarvie L, Kozlovskaya IB, Raphan T, Cohen B (1994) Effects of spaceflight on ocular counterrolling and spatial orientation of the vestibular system. Exp Brain Res 102:45–56PubMed
Zurück zum Zitat Dai M, Raphan T, Kozlovskaya I, Cohen B (1996) Modulation of vergence by off-vertical yaw axis rotation in the monkey: normal characteristics and effects of space flight. Exp Brain Res 111:21–29PubMed Dai M, Raphan T, Kozlovskaya I, Cohen B (1996) Modulation of vergence by off-vertical yaw axis rotation in the monkey: normal characteristics and effects of space flight. Exp Brain Res 111:21–29PubMed
Zurück zum Zitat Fetter M, Heimberger J, Black RA, Hermann W, Sievering F, Dichgans J (1996) Otolith-semicircular canal interaction during postrotatory nystagmus in humans. Exp Brain Res 108:463–473PubMed Fetter M, Heimberger J, Black RA, Hermann W, Sievering F, Dichgans J (1996) Otolith-semicircular canal interaction during postrotatory nystagmus in humans. Exp Brain Res 108:463–473PubMed
Zurück zum Zitat Fick A (1854) Die Bewegungen des menschlichen Augapfels. Z Rationelle Med 4:101–128 Fick A (1854) Die Bewegungen des menschlichen Augapfels. Z Rationelle Med 4:101–128
Zurück zum Zitat Gizzi M, Raphan T, Rudolph S, Cohen B (1994) Orientation of human optokinetic nystagmus to gravity: a model based approach. Exp Brain Res 99:347–360PubMed Gizzi M, Raphan T, Rudolph S, Cohen B (1994) Orientation of human optokinetic nystagmus to gravity: a model based approach. Exp Brain Res 99:347–360PubMed
Zurück zum Zitat Goldstein H (1980) Classical Mechanics. Reading, MA, Addison-Wesley Goldstein H (1980) Classical Mechanics. Reading, MA, Addison-Wesley
Zurück zum Zitat Grasse K, Lisberger S (1992) Analysis of naturally occurring asymmetry in vertical smooth pursuit in the monkey. J Neurophysiol 67:164–179PubMed Grasse K, Lisberger S (1992) Analysis of naturally occurring asymmetry in vertical smooth pursuit in the monkey. J Neurophysiol 67:164–179PubMed
Zurück zum Zitat Harris LR (1987) Vestibular and optokinetic eye movements evoked in the cat by rotation about a tilted axis. Exp Brain Res 66:522–532PubMed Harris LR (1987) Vestibular and optokinetic eye movements evoked in the cat by rotation about a tilted axis. Exp Brain Res 66:522–532PubMed
Zurück zum Zitat Harris LR, Barnes GR (1987) Orientation of vestibular nystagmus is modified by head tilt. In: Graham MD, Kemink JL (eds) The vestibular system: neurophysiologic and clinical research. Raven Press, New York, pp 539–548 Harris LR, Barnes GR (1987) Orientation of vestibular nystagmus is modified by head tilt. In: Graham MD, Kemink JL (eds) The vestibular system: neurophysiologic and clinical research. Raven Press, New York, pp 539–548
Zurück zum Zitat Haslwanter T (1995) Mathematics of three-dimensional eye rotations. Vision Res 35:1727–1739CrossRefPubMed Haslwanter T (1995) Mathematics of three-dimensional eye rotations. Vision Res 35:1727–1739CrossRefPubMed
Zurück zum Zitat Haslwanter T, Straumann D, Hepp K, Hess BJM, Henn V (1991) Smooth pursuit eye movements obey Listing’s law in the monkey. Exp Brain Res 87:470–472PubMed Haslwanter T, Straumann D, Hepp K, Hess BJM, Henn V (1991) Smooth pursuit eye movements obey Listing’s law in the monkey. Exp Brain Res 87:470–472PubMed
Zurück zum Zitat Haslwanter T, Straumann D, Hess BJM, Henn V (1992) Static roll and pitch in the monkey: shift and rotation in Listing’s plane. Vis Res 32:1341–1348CrossRefPubMed Haslwanter T, Straumann D, Hess BJM, Henn V (1992) Static roll and pitch in the monkey: shift and rotation in Listing’s plane. Vis Res 32:1341–1348CrossRefPubMed
Zurück zum Zitat Helmholz HV (1867) Handbuch der Physiologichen Optik. Leopold Voss, Leipzig Helmholz HV (1867) Handbuch der Physiologichen Optik. Leopold Voss, Leipzig
Zurück zum Zitat Hess BJM, Angelaki DA (1999) Inertial processing of vestibulo-ocular signals. Ann NY Acad Sci 871:148–161PubMed Hess BJM, Angelaki DA (1999) Inertial processing of vestibulo-ocular signals. Ann NY Acad Sci 871:148–161PubMed
Zurück zum Zitat Hood JD (1967) Observations upon the neurological mechanism of optokinetic nystagmus with special reference to the contribution of peripheral vision. Acta Otolaryngol (Stockh) 63:208–215 Hood JD (1967) Observations upon the neurological mechanism of optokinetic nystagmus with special reference to the contribution of peripheral vision. Acta Otolaryngol (Stockh) 63:208–215
Zurück zum Zitat Hood JD, Leech J (1974) The significance of peripheral vision in the perception of movement. Acta Otolarygol (Stockh) 1974:73–79 Hood JD, Leech J (1974) The significance of peripheral vision in the perception of movement. Acta Otolarygol (Stockh) 1974:73–79
Zurück zum Zitat Imai T, Moore ST, Raphan T, Cohen B (2001) Interaction of the body, head and eyes during walking and turning. Exp Brain Res 136:1–18CrossRefPubMed Imai T, Moore ST, Raphan T, Cohen B (2001) Interaction of the body, head and eyes during walking and turning. Exp Brain Res 136:1–18CrossRefPubMed
Zurück zum Zitat Kushiro K, Dai M, Kunin M, Yakushin SB, Cohen B, Raphan T (2002) Compensatory and orienting eye movements induced by off-vertical axis Rotation (OVAR) in monkeys. J Neurophysiol 88:2445–2462PubMed Kushiro K, Dai M, Kunin M, Yakushin SB, Cohen B, Raphan T (2002) Compensatory and orienting eye movements induced by off-vertical axis Rotation (OVAR) in monkeys. J Neurophysiol 88:2445–2462PubMed
Zurück zum Zitat Markham CH (1989) Anatomy and physiology of otolith-controlled ocular counterrolling. Acta Otolaryngol Suppl 468:263–266PubMed Markham CH (1989) Anatomy and physiology of otolith-controlled ocular counterrolling. Acta Otolaryngol Suppl 468:263–266PubMed
Zurück zum Zitat Mayne R (1974) A systems concept of the vestibular organs. In: Kornhuber HH (ed) Handbook of vestibular physiology. Vestibular System. Springer-Verlag, New York, pp 493–580 Mayne R (1974) A systems concept of the vestibular organs. In: Kornhuber HH (ed) Handbook of vestibular physiology. Vestibular System. Springer-Verlag, New York, pp 493–580
Zurück zum Zitat Merfeld DM (1995) Modeling the vestibulo-ocular reflex of the squirrel monkey during eccentric rotation and roll tilt. Exp Brain Res 106:123–134PubMed Merfeld DM (1995) Modeling the vestibulo-ocular reflex of the squirrel monkey during eccentric rotation and roll tilt. Exp Brain Res 106:123–134PubMed
Zurück zum Zitat Merfeld DM, Young LR (1995) The vestibulo-ocular reflex of the squirrel monkey during eccentric rotation and roll tilt. Exp Brain Res 106:111–122PubMed Merfeld DM, Young LR (1995) The vestibulo-ocular reflex of the squirrel monkey during eccentric rotation and roll tilt. Exp Brain Res 106:111–122PubMed
Zurück zum Zitat Merfeld DM, Young LR, Paige GD, Tomko DL (1993) Three dimensional eye movements of squirrel monkeys following postrotatory tilt. J Vest Res 3:123–141 Merfeld DM, Young LR, Paige GD, Tomko DL (1993) Three dimensional eye movements of squirrel monkeys following postrotatory tilt. J Vest Res 3:123–141
Zurück zum Zitat Merfeld DM, Zupan L, Peterka RJ (1999) Humans use internal models to estimate gravity and linear acceleration. Nature 398:615–618CrossRefPubMed Merfeld DM, Zupan L, Peterka RJ (1999) Humans use internal models to estimate gravity and linear acceleration. Nature 398:615–618CrossRefPubMed
Zurück zum Zitat Misslisch H, Tweed D, Fetter M, Sievering D, Koenig E (1994) Rotational kinematics of the human vestibuloocular reflex. III. Listing’s law. J Neurophysiol 72:2490–2502PubMed Misslisch H, Tweed D, Fetter M, Sievering D, Koenig E (1994) Rotational kinematics of the human vestibuloocular reflex. III. Listing’s law. J Neurophysiol 72:2490–2502PubMed
Zurück zum Zitat Mittelstaedt H, Glasauer S (1993) Illusions of verticality in weightlessness. Clin Investig 71:732–739PubMed Mittelstaedt H, Glasauer S (1993) Illusions of verticality in weightlessness. Clin Investig 71:732–739PubMed
Zurück zum Zitat Moore ST, McCoy SG, Curthoys IS (1991) VTM—an image processing system for measuring ocular torsion. Comp Meth Prog Biomed 35:219–230CrossRef Moore ST, McCoy SG, Curthoys IS (1991) VTM—an image processing system for measuring ocular torsion. Comp Meth Prog Biomed 35:219–230CrossRef
Zurück zum Zitat Moore ST, Haslwanter T, Curthoys IS, Smith ST (1996) A geometric basis for measurement of three-dimensional eye position using image processing. Vis Res 36:445–459CrossRefPubMed Moore ST, Haslwanter T, Curthoys IS, Smith ST (1996) A geometric basis for measurement of three-dimensional eye position using image processing. Vis Res 36:445–459CrossRefPubMed
Zurück zum Zitat Moore ST, Clément G, Raphan T, Cohen B (2001) Ocular counter-rolling induced by centrifugation during orbital spaceflight. Exp Brain Res 137:323–335CrossRefPubMed Moore ST, Clément G, Raphan T, Cohen B (2001) Ocular counter-rolling induced by centrifugation during orbital spaceflight. Exp Brain Res 137:323–335CrossRefPubMed
Zurück zum Zitat Moore ST, Clément G, Dai M, Raphan T, Solomon D, Cohen B (2003) Ocular and perceptual responses to linear acceleration in microgravity: alterations in otolith function on the COSMOS and Neurolab flights. J Vest Res 13:377–393 Moore ST, Clément G, Dai M, Raphan T, Solomon D, Cohen B (2003) Ocular and perceptual responses to linear acceleration in microgravity: alterations in otolith function on the COSMOS and Neurolab flights. J Vest Res 13:377–393
Zurück zum Zitat Moore ST, Diedrich A, Biaggioni I, Kaufmann H, Raphan T, Cohen B (2004) Artificial gravity: a possible countermeasure for post-flight orthostatic intolerance. Acta Astronautica (in press) Moore ST, Diedrich A, Biaggioni I, Kaufmann H, Raphan T, Cohen B (2004) Artificial gravity: a possible countermeasure for post-flight orthostatic intolerance. Acta Astronautica (in press)
Zurück zum Zitat Paige GD (1991) Linear vestibulo-ocular reflex (LVOR) and modulation by vergence. Neurosci Lett 481[Suppl]: 282–286 Paige GD (1991) Linear vestibulo-ocular reflex (LVOR) and modulation by vergence. Neurosci Lett 481[Suppl]: 282–286
Zurück zum Zitat Paige GD, Seidman SH (1999) Characteristics of the VOR response to linear acceleration. Ann NY Acad Sci 871:123–135PubMed Paige GD, Seidman SH (1999) Characteristics of the VOR response to linear acceleration. Ann NY Acad Sci 871:123–135PubMed
Zurück zum Zitat Paige GD, Tomko DL (1991a) Eye movement responses to linear head motion in the squirrel monkey. I. Basic Characteristics. J Neurophysiol 65:1170–1182PubMed Paige GD, Tomko DL (1991a) Eye movement responses to linear head motion in the squirrel monkey. I. Basic Characteristics. J Neurophysiol 65:1170–1182PubMed
Zurück zum Zitat Paige GD, Tomko DL (1991b) Eye movement responses to linear head motion in the squirrel monkey. II. Visual-vestibular interactions and kinematic considerations. J Neurophysiol 65:1183–1196PubMed Paige GD, Tomko DL (1991b) Eye movement responses to linear head motion in the squirrel monkey. II. Visual-vestibular interactions and kinematic considerations. J Neurophysiol 65:1183–1196PubMed
Zurück zum Zitat Parker DE, Reschke MF, Arrott AP, Homick JL, Lichtenberg BK (1985) Otolith tilt translation reinterpretation following prolonged weightlessness: implications for preflight training. Aviat Space Environ Med 56:601–607PubMed Parker DE, Reschke MF, Arrott AP, Homick JL, Lichtenberg BK (1985) Otolith tilt translation reinterpretation following prolonged weightlessness: implications for preflight training. Aviat Space Environ Med 56:601–607PubMed
Zurück zum Zitat Purkinje JE (1820) Beiträge zur näheren Kenntnis des Schwindels aus heutognostischen Daten. Med JB (Wien) 6:79–125 Purkinje JE (1820) Beiträge zur näheren Kenntnis des Schwindels aus heutognostischen Daten. Med JB (Wien) 6:79–125
Zurück zum Zitat Rademacher GGJ, Ter Braak JWG (1948) On the central mechanism of some optic reactions. Brain 71:48–76 Rademacher GGJ, Ter Braak JWG (1948) On the central mechanism of some optic reactions. Brain 71:48–76
Zurück zum Zitat Raphan T (1998) Modeling control of eye orientation in three dimensions. I. Role of muscle pulleys in determining saccadic trajectory. J Neurophysiol 79:2653–2667PubMed Raphan T (1998) Modeling control of eye orientation in three dimensions. I. Role of muscle pulleys in determining saccadic trajectory. J Neurophysiol 79:2653–2667PubMed
Zurück zum Zitat Raphan T, Cohen B (1988) Organizational principles of velocity storage in three dimensions: the effect of gravity on cross-coupling of optokinetic after-nystagmus. Ann NY Acad Sci 545:74–92PubMed Raphan T, Cohen B (1988) Organizational principles of velocity storage in three dimensions: the effect of gravity on cross-coupling of optokinetic after-nystagmus. Ann NY Acad Sci 545:74–92PubMed
Zurück zum Zitat Raphan T, Cohen B (2002) The vestibulo-ocular reflex (VOR) in three dimensions. Exp Brain Res 145:1–27CrossRefPubMed Raphan T, Cohen B (2002) The vestibulo-ocular reflex (VOR) in three dimensions. Exp Brain Res 145:1–27CrossRefPubMed
Zurück zum Zitat Raphan T, Sturm D (1991) Modelling the spatiotemporal organization of velocity storage in the vestibuloocular reflex by optokinetic studies. J Neurophysiol 66:1410–1420PubMed Raphan T, Sturm D (1991) Modelling the spatiotemporal organization of velocity storage in the vestibuloocular reflex by optokinetic studies. J Neurophysiol 66:1410–1420PubMed
Zurück zum Zitat Raphan T, Matsuo V, Cohen B (1979) Velocity storage in the vestibulo-ocular reflex arc (VOR). Exp Brain Res 35:229–248PubMed Raphan T, Matsuo V, Cohen B (1979) Velocity storage in the vestibulo-ocular reflex arc (VOR). Exp Brain Res 35:229–248PubMed
Zurück zum Zitat Raphan T, Cohen B, Henn V (1981) Effects of gravity on rotatory nystagmus in monkeys. Ann NY Acad Sci 374:44–55PubMed Raphan T, Cohen B, Henn V (1981) Effects of gravity on rotatory nystagmus in monkeys. Ann NY Acad Sci 374:44–55PubMed
Zurück zum Zitat Raphan T, Wearne S, Cohen B (1996) Modeling the organization of the linear and angular vestibulo-ocular reflexes. Ann NY Acad Sci 781:348–363PubMed Raphan T, Wearne S, Cohen B (1996) Modeling the organization of the linear and angular vestibulo-ocular reflexes. Ann NY Acad Sci 781:348–363PubMed
Zurück zum Zitat Rashbass C (1961) The relationship between saccadic and smooth tracking eye movements. J Physiol 159:326–338PubMed Rashbass C (1961) The relationship between saccadic and smooth tracking eye movements. J Physiol 159:326–338PubMed
Zurück zum Zitat Robinson D (1977) Vestibular and optokinetic symbiosis: an example of explaining by modeling. In: Baker R, Berthoz A (eds) Control of gaze by brain stem neurons. Elsevier/North Holland, Amsterdam, pp 49–58 Robinson D (1977) Vestibular and optokinetic symbiosis: an example of explaining by modeling. In: Baker R, Berthoz A (eds) Control of gaze by brain stem neurons. Elsevier/North Holland, Amsterdam, pp 49–58
Zurück zum Zitat Seidman SH, Telford L, Paige GD (1998) Tilt perception during dynamic linear acceleration. Exp Brain Res 119:307–314CrossRefPubMed Seidman SH, Telford L, Paige GD (1998) Tilt perception during dynamic linear acceleration. Exp Brain Res 119:307–314CrossRefPubMed
Zurück zum Zitat Solomon D, Straumann D, Zee DS (1997) Three-dimensional eye movements during vertical axis rotation: effects of visual suppression, orbital eye position and head position. In: Fetter M, Haslwanter T, Misslisch H, Tweed D (eds) Three-dimensional kinematics of eye, head and limb movements. Harwood academic publishers, The Netherlands, pp 197–208 Solomon D, Straumann D, Zee DS (1997) Three-dimensional eye movements during vertical axis rotation: effects of visual suppression, orbital eye position and head position. In: Fetter M, Haslwanter T, Misslisch H, Tweed D (eds) Three-dimensional kinematics of eye, head and limb movements. Harwood academic publishers, The Netherlands, pp 197–208
Zurück zum Zitat Ter Braak JWG (1936) Untersuchungen ueber optokinetischen Nystagmus. Archives Neerlander Physiologie 21:309–376 Ter Braak JWG (1936) Untersuchungen ueber optokinetischen Nystagmus. Archives Neerlander Physiologie 21:309–376
Zurück zum Zitat Thurtell MJ, Black RA, Halmagyi GM, Curthoys IS, Aw ST (1999) Vertical eye position-dependence of the human vestibuloocular reflex during passive and active yaw head rotations. J Neurophysiol 81:2415–2428PubMed Thurtell MJ, Black RA, Halmagyi GM, Curthoys IS, Aw ST (1999) Vertical eye position-dependence of the human vestibuloocular reflex during passive and active yaw head rotations. J Neurophysiol 81:2415–2428PubMed
Zurück zum Zitat Thurtell MJ, Kunin M, Raphan T (2000) Role of muscle pulleys in producing eye position-dependence in the angular vestibuloocular reflex: a model-based study. J Neurophysiol 84:639–650PubMed Thurtell MJ, Kunin M, Raphan T (2000) Role of muscle pulleys in producing eye position-dependence in the angular vestibuloocular reflex: a model-based study. J Neurophysiol 84:639–650PubMed
Zurück zum Zitat Tweed D, Vilis T (1987) Implications of rotational kinematics for the oculomotor system in three dimensions. J Neurophysiol 58:832–849PubMed Tweed D, Vilis T (1987) Implications of rotational kinematics for the oculomotor system in three dimensions. J Neurophysiol 58:832–849PubMed
Zurück zum Zitat Tweed D, Vilis T (1990) Geometric relations of eye position and velocity vectors during saccades. Vision Res 30:111–127CrossRefPubMed Tweed D, Vilis T (1990) Geometric relations of eye position and velocity vectors during saccades. Vision Res 30:111–127CrossRefPubMed
Zurück zum Zitat Uchino Y, Sasaki M, Sato H, Imagawa M, Suwa H, Isu N (1996) Utriculoocular reflex arc of the cat. J Neurophysiol 76:1896–1903PubMed Uchino Y, Sasaki M, Sato H, Imagawa M, Suwa H, Isu N (1996) Utriculoocular reflex arc of the cat. J Neurophysiol 76:1896–1903PubMed
Zurück zum Zitat Uchino Y, Sato H, Sasaki M, Ikegami H, Isu N, Graf W (1997) Sacculocollic reflex arcs in cats. J Neurophysiol 77:3003–3012PubMed Uchino Y, Sato H, Sasaki M, Ikegami H, Isu N, Graf W (1997) Sacculocollic reflex arcs in cats. J Neurophysiol 77:3003–3012PubMed
Zurück zum Zitat Wearne S, Raphan T, Cohen B (1997) Contribution of vestibular commissural pathways to velocity storage and spatial orientation of the angular vestibuloocular reflex. J Neurophysiol 78:1193–1197PubMed Wearne S, Raphan T, Cohen B (1997) Contribution of vestibular commissural pathways to velocity storage and spatial orientation of the angular vestibuloocular reflex. J Neurophysiol 78:1193–1197PubMed
Zurück zum Zitat Wearne S, Raphan T, Cohen B (1998) Control of spatial orientation of the angular vestibuloocular reflex by the nodulus and uvula. J Neurophysiol 79:2690–2715PubMed Wearne S, Raphan T, Cohen B (1998) Control of spatial orientation of the angular vestibuloocular reflex by the nodulus and uvula. J Neurophysiol 79:2690–2715PubMed
Zurück zum Zitat Yakushin SB, Dai MJ, Suzuki J-I, Raphan T, Cohen B (1995) Semicircular canal contribution to the three-dimensional vestibulo-ocular reflex: a model-based approach. J Neurophysiol 74:2722–2738PubMed Yakushin SB, Dai MJ, Suzuki J-I, Raphan T, Cohen B (1995) Semicircular canal contribution to the three-dimensional vestibulo-ocular reflex: a model-based approach. J Neurophysiol 74:2722–2738PubMed
Zurück zum Zitat Yakushin SB, Gizzi M, Reisine H, Raphan T, Buttner-Ennever J, Cohen B (2000) Functions of the nucleus of the optic tract (NOT). II. Control of ocular pursuit. Exp Brain Res 131:416–432CrossRefPubMed Yakushin SB, Gizzi M, Reisine H, Raphan T, Buttner-Ennever J, Cohen B (2000) Functions of the nucleus of the optic tract (NOT). II. Control of ocular pursuit. Exp Brain Res 131:416–432CrossRefPubMed
Zurück zum Zitat Young LR, Oman CM, Watt DGD, Money KE, Lichtenberg BK (1984) Spatial orientation and readaptation to Earth’s gravity. Science 225:205–208PubMed Young LR, Oman CM, Watt DGD, Money KE, Lichtenberg BK (1984) Spatial orientation and readaptation to Earth’s gravity. Science 225:205–208PubMed
Zurück zum Zitat Zhu D, Moore ST, Raphan T (1999) Robust pupil center detection using a curvature algorithm. Comp Meth Prog Biomed 59:145–157CrossRef Zhu D, Moore ST, Raphan T (1999) Robust pupil center detection using a curvature algorithm. Comp Meth Prog Biomed 59:145–157CrossRef
Zurück zum Zitat Zhu D, Moore ST, Raphan T (2004) Robust and real-time torsional eye position calculation using a template matching technique. Comp Meth Prog Biomed 74:201–209CrossRef Zhu D, Moore ST, Raphan T (2004) Robust and real-time torsional eye position calculation using a template matching technique. Comp Meth Prog Biomed 74:201–209CrossRef
Metadaten
Titel
Spatial orientation of optokinetic nystagmus and ocular pursuit during orbital space flight
verfasst von
Steven T. Moore
Bernard Cohen
Theodore Raphan
Alain Berthoz
Gilles Clément
Publikationsdatum
01.01.2005
Erschienen in
Experimental Brain Research / Ausgabe 1/2005
Print ISSN: 0014-4819
Elektronische ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-004-1984-0

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