Patterns of calcium-binding proteins support parallel and hierarchical organization of human auditory areas

被引:43
作者
Chiry, O
Tardif, E
Magistretti, PJ
Clarke, S [1 ]
机构
[1] CHU Vaudois, Div Neuropsychol, CH-1011 Lausanne, Switzerland
[2] Univ Lausanne, Inst Physiol, CH-1005 Lausanne, Switzerland
关键词
auditory pathways; calbindin; calretinin; immunohistochemistry; parvalbumin;
D O I
10.1046/j.1460-9568.2003.02430.x
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The human primary auditory cortex (AI) is surrounded by several other auditory areas, which can be identified by cyto-, myelo- and chemoarchitectonic criteria. We report here on the pattern of calcium-binding protein immunoreactivity within these areas. The supratemporal regions of four normal human brains (eight hemispheres) were processed histologically, and serial sections were stained for parvalbumin, calretinin or calbindin. Each calcium-binding protein yielded a specific pattern of labelling, which differed between auditory areas. In AI, defined as area TC [see C. von Economo and L. Horn (1930) Z. Ges. Neurol. Psychiatr., 130 , 678-757], parvalbumin labelling was dark in layer IV; several parvalbumin-positive multipolar neurons were distributed in layers III and IV. Calbindin yielded dark labelling in layers I-III and V; it revealed numerous multipolar and pyramidal neurons in layers II and III. Calretinin labelling was lighter than that of parvalbumin or calbindin in AI; calretinin-positive bipolar and bitufted neurons were present in supragranular layers. In non-primary auditory areas, the intensity of labelling tended to become progressively lighter while moving away from AI, with qualitative differences between the cytoarchitectonically defined areas. In analogy to non-human primates, our results suggest differences in intrinsic organization between auditory areas that are compatible with parallel and hierarchical processing of auditory information.
引用
收藏
页码:397 / 410
页数:14
相关论文
共 60 条
[11]   CYTOARCHITECTONIC ORGANIZATION OF THE HUMAN AUDITORY-CORTEX [J].
GALABURDA, A ;
SANIDES, F .
JOURNAL OF COMPARATIVE NEUROLOGY, 1980, 190 (03) :597-610
[12]   Comparative analysis of calcium-binding protein-immunoreactive neuronal populations in the auditory and visual systems of the bottlenose dolphin (Tursiops truncatus) and the macaque monkey (Macaca fascicularis) [J].
Glezer, II ;
Hof, PR ;
Morgane, PJ .
JOURNAL OF CHEMICAL NEUROANATOMY, 1998, 15 (04) :203-237
[13]   Right parietal cortex is involved in the perception of sound movement in humans [J].
Griffiths, TD ;
Rees, G ;
Rees, A ;
Green, GGR ;
Witton, C ;
Rowe, D ;
Buchel, C ;
Turner, R ;
Frackowiak, RSJ .
NATURE NEUROSCIENCE, 1998, 1 (01) :74-79
[14]   The planum temporale as a computational hub [J].
Griffiths, TD ;
Warren, JD .
TRENDS IN NEUROSCIENCES, 2002, 25 (07) :348-353
[15]   Architectonic identification of the core region in auditory cortex of macaques, chimpanzees, and humans [J].
Hackett, TA ;
Preuss, TM ;
Kaas, JH .
JOURNAL OF COMPARATIVE NEUROLOGY, 2001, 441 (03) :197-222
[16]  
Hackett TA, 1998, J COMP NEUROL, V400, P271, DOI 10.1002/(SICI)1096-9861(19981019)400:2<271::AID-CNE8>3.0.CO
[17]  
2-6
[18]   PATCHY AND LAMINAR TERMINATIONS OF MEDIAL GENICULATE AXONS IN MONKEY AUDITORY-CORTEX [J].
HASHIKAWA, T ;
MOLINARI, M ;
RAUSELL, E ;
JONES, EG .
JOURNAL OF COMPARATIVE NEUROLOGY, 1995, 362 (02) :195-208
[19]   PARVALBUMIN-CONTAINING AND CALBINDIN-CONTAINING NEURONS IN THE MONKEY MEDIAL GENICULATE COMPLEX - DIFFERENTIAL DISTRIBUTION AND CORTICAL LAYER SPECIFIC PROJECTIONS [J].
HASHIKAWA, T ;
RAUSELL, E ;
MOLINARI, M ;
JONES, EG .
BRAIN RESEARCH, 1991, 544 (02) :335-341
[20]   Functional differentiation in the human auditory and language areas revealed by a dichotic listening task [J].
Hashimoto, R ;
Homae, F ;
Nakajima, K ;
Miyashita, Y ;
Sakai, KL .
NEUROIMAGE, 2000, 12 (02) :147-158