Orienting eye movements and nystagmus produced by translation while rotating (TWR)

被引:12
作者
Maruta, J
Simpson, JI
Raphan, T
Cohen, B
机构
[1] Mt Sinai Sch Med, Dept Neurol, New York, NY 10029 USA
[2] Mt Sinai Sch Med, Dept Physiol & Biophys, New York, NY 10029 USA
[3] NYU, Sch Med, Dept Physiol & Neurosci, New York, NY USA
[4] CUNY Brooklyn Coll, Dept Comp & Informat Sci, Brooklyn, NY 11210 USA
关键词
linear acceleration; otolith-ocular reflexes; OVAR; rabbit; vestibulo-ocular reflex (VOR);
D O I
10.1007/s00221-004-2178-5
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Sinusoidal translation while rotating at constant angular velocity about a vertical axis (translation while rotating, TWR) produces centripetal and translational accelerations along the direction of translation and an orthogonal Coriolis acceleration due to the translation in the rotating frame. Thus, a Coriolis acceleration is produced along the bitemporal axis when oscillating along the naso-occipital axis, and along the naso-occipital axis when oscillating along the bitemporal axis. Together, these components generate an elliptically rotating acceleration vector that revolves around the head in the direction of rotation at the frequency of oscillation. Here we studied the orienting and compensatory responses of rabbits during TWR. Combinations of centripetal and translational accelerations were held constant at 0.5 g, and oscillation frequencies were varied from 0.01-0.33 Hz. The amplitude of the Coriolis acceleration increased with the frequency of translation. Naso-occipital translation caused vergence and pitch at all frequencies and roll at higher frequencies, and bitemporal translation produced roll at all frequencies and vergence and pitch at higher frequencies. The sensitivity of each ocular orienting component to linear acceleration was comparable across the different oscillation frequencies. TWR also induced continuous yaw nystagmus with slow phase velocity in the direction of rotation of the acceleration vector. Thresholds for appearance of nystagmus were 0.05 Hz, corresponding to a Coriolis acceleration of 0.06 g. Mean slow phase velocity for a rotating linear acceleration vector produced by 0.5 g along the translation axis and 0.34 g of Coriolis acceleration along the orthogonal axis were approximate to 9 degrees/s. Eye velocities during TWR were similar to those generated by off-vertical axis rotation (OVAR), but were opposite in direction with regard to head rotation, following the direction of the rotating acceleration vector in both paradigms. Both are produced by activation of velocity storage in the vestibular system. One important difference between TWR and OVAR is that the head is always upright with regard to gravity during TWR. We speculate that the brain may use these low amplitude rotating linear accelerations to generate eye velocities that help to orient gaze when making turns during normal locomotion.
引用
收藏
页码:273 / 283
页数:11
相关论文
共 47 条
[1]   Three-dimensional organization of otolith-ocular reflexes in rhesus monkeys .1. Linear acceleration responses during off-vertical axis rotation [J].
Angelaki, DE ;
Hess, BJM .
JOURNAL OF NEUROPHYSIOLOGY, 1996, 75 (06) :2405-2424
[2]   Computation of inertial motion: Neural strategies to resolve ambiguous otolith information [J].
Angelaki, DE ;
McHenry, MQ ;
Dickman, JD ;
Newlands, SD ;
Hess, BJM .
JOURNAL OF NEUROSCIENCE, 1999, 19 (01) :316-327
[3]   EYE-MOVEMENTS DUE TO LINEAR ACCELERATIONS IN RABBIT [J].
BAARSMA, EA ;
COLLEWIJN, H .
JOURNAL OF PHYSIOLOGY-LONDON, 1975, 245 (01) :227-247
[4]  
BENJAMINS CE, 1918, ARCH NEERL PHYSL, V2, P536
[5]  
BENSON AJ, 1966, AEROSPACE MED, V37, P144
[6]   Perception of tilt (somatogravic illusion) in response to sustained linear acceleration during space flight [J].
Clément, G ;
Moore, ST ;
Raphan, T ;
Cohen, B .
EXPERIMENTAL BRAIN RESEARCH, 2001, 138 (04) :410-418
[7]   ROLE OF THE OTOLITH ORGANS IN GENERATION OF HORIZONTAL NYSTAGMUS - EFFECTS OF SELECTIVE LABYRINTHINE LESIONS [J].
COHEN, B ;
SUZUKI, JI ;
RAPHAN, T .
BRAIN RESEARCH, 1983, 276 (01) :159-164
[8]  
Cohen B, 2001, ANN NY ACAD SCI, V942, P241
[9]  
COLLEWIJN H, 1972, PFLUG ARCH EUR J PHY, V335, P173, DOI 10.1007/BF00592155
[10]  
DAI MJ, 1994, EXP BRAIN RES, V102, P45