Human vestibular cortex as identified with caloric stimulation in functional magnetic resonance imaging

被引:284
作者
Fasold, O [1 ]
von Brevern, M [1 ]
Kuhberg, M [1 ]
Ploner, CJ [1 ]
Villringer, A [1 ]
Lempert, T [1 ]
Wenzel, R [1 ]
机构
[1] Humboldt Univ, Charite, Dept Neurol, D-10098 Berlin, Germany
关键词
D O I
10.1006/nimg.2002.1241
中图分类号
Q189 [神经科学];
学科分类号
071006 [神经生物学];
摘要
Anatomic and electrophysiological studies in monkeys have yielded a detailed map of cortex areas receiving vestibular afferents. In contrast, comparatively little is known about the cortical representation of the human vestibular system. In this study we applied caloric stimulation and fMRI to further characterize human cortical vestibular areas and to test for hemispheric dominance of vestibular information processing. For caloric vestibular stimulation we used cold nitrogen to avoid susceptibility artifacts induced by water calorics. Right and left side vestibular stimulation was repetitively performed inducing a nystagmus for at least 90 s after the end of the stimulation in all subjects. Only the first 60 s of this nystagmus period was included for statistical analysis and compared with the baseline condition. Activation maps revealed a cortical network with right hemispheric dominance, which in all subjects comprised the temporoparietal junction extending into the posterior insula and, furthermore, the anterior insula, pre- and postcentral gyrus, areas in the parietal lobe, the ventrolateral portion of the occipital lobe, and the inferior frontal gyrus extending into the inferior part of the precentral sulcus. In conclusion, caloric stimulation in fMRI reveals a widespread cortical network involved in vestibular signal processing corresponding to the findings from animal experiments and previous functional imaging studies in humans. Furthermore, this study demonstrates a strong right hemispheric dominance of vestibular cortex areas regardless of the stimulated side, consistent with the current view of a rightward asymmetrical cortical network for spatial orientation. (C) 2002 Elsevier Science (USA).
引用
收藏
页码:1384 / 1393
页数:10
相关论文
共 41 条
[1]
CORTICOFUGAL CONNECTIONS BETWEEN THE CEREBRAL-CORTEX AND BRAIN-STEM VESTIBULAR NUCLEI IN THE MACAQUE MONKEY [J].
AKBARIAN, S ;
GRUSSER, OJ ;
GULDIN, WO .
JOURNAL OF COMPARATIVE NEUROLOGY, 1994, 339 (03) :421-437
[2]
CORTICOFUGAL PROJECTIONS TO THE VESTIBULAR NUCLEI IN SQUIRREL-MONKEYS - FURTHER EVIDENCE OF MULTIPLE CORTICAL VESTIBULAR FIELDS [J].
AKBARIAN, S ;
GRUSSER, OJ ;
GULDIN, WO .
JOURNAL OF COMPARATIVE NEUROLOGY, 1993, 332 (01) :89-104
[3]
The contributions of vestibular signals to the representations of space in the posterior parietal cortex [J].
Andersen, RA ;
Shenoy, KV ;
Snyder, LH ;
Bradley, DC ;
Crowell, JA .
OTOLITH FUNCTION IN SPATIAL ORIENTATION AND MOVEMENT, 1999, 871 :282-292
[4]
Multisensory cortical signal increases and decreases during vestibular galvanic stimulation (fMRI) [J].
Bense, S ;
Stephan, T ;
Yousry, TA ;
Brandt, T ;
Dieterich, M .
JOURNAL OF NEUROPHYSIOLOGY, 2001, 85 (02) :886-899
[5]
BOTTINI G, 1994, EXP BRAIN RES, V99, P164
[6]
The vestibular cortex - Its locations, functions, and disorders [J].
Brandt, T ;
Dieterich, M .
OTOLITH FUNCTION IN SPATIAL ORIENTATION AND MOVEMENT, 1999, 871 :293-312
[7]
VESTIBULAR CORTEX LESIONS AFFECT THE PERCEPTION OF VERTICALITY [J].
BRANDT, T ;
DIETERICH, M ;
DANEK, A .
ANNALS OF NEUROLOGY, 1994, 35 (04) :403-412
[8]
Linear vestibular self-motion signals in monkey medial superior temporal area [J].
Bremmer, F ;
Kubischik, M ;
Pekel, M ;
Lappe, M ;
Hoffmann, KP .
OTOLITH FUNCTION IN SPATIAL ORIENTATION AND MOVEMENT, 1999, 871 :272-281
[9]
Cerebral functional magnetic resonance imaging of vestibular, auditory, and nociceptive areas during galvanic stimulation [J].
Bucher, SF ;
Dieterich, M ;
Wiesmann, M ;
Weiss, A ;
Zink, R ;
Yousry, TA ;
Brandt, T .
ANNALS OF NEUROLOGY, 1998, 44 (01) :120-125
[10]
REMISSION OF HEMINEGLECT AND ANOSOGNOSIA DURING VESTIBULAR STIMULATION [J].
CAPPA, S ;
STERZI, R ;
VALLAR, G ;
BISIACH, E .
NEUROPSYCHOLOGIA, 1987, 25 (05) :775-+