Taste in the monkey cortex

被引:124
作者
Scott, TR
Plata-Salmán, CR
机构
[1] Univ Delaware, Dept Psychol, Newark, DE 19716 USA
[2] Univ Delaware, Program Neurosci, Newark, DE 19716 USA
基金
美国国家科学基金会;
关键词
taste; macaque; monkey; cortex; insula; operculum; electrophysiology;
D O I
10.1016/S0031-9384(99)00115-8
中图分类号
B84 [心理学];
学科分类号
04 ; 0402 ;
摘要
The sense of taste in humans differs substantially from that of rodents, from which a preponderance of gustatory electrophysiology derives. To establish a more appropriate neural model for human gustation, we recorded the activity of single neurons in the primary taste cortex in 11 alert cynomolgus macaques. Taste cells composed 6% of all neurons encountered. Another 24% responded during mouth and jaw movements, and 4% were sensitive to tactile stimulation of the mouth. Smaller numbers responded during olfactory or visual stimulation, or when the monkey extended his tongue. Taste cells could be divided into four statistically independent groups, corresponding to those most responsive to glucose (38%), NaCl (34%), quinine (22%), or HCl (5%). The location of a taste cell did not predict its response profile, i.e., there was no clear topographic organization of taste sensitivity. We established neural thresholds and intensity-response functions to the basic stimuli and determined that-with the exception of HCl, to which the macaque is relatively insensitive-they were similar to those reported by human subjects. We then turned to the coding of taste quality, as inferred in macaques from the patterns of neural activity elicited by each of greater than 100 stimuli. The results proved generally faithful to human reports of the perceived qualities of these same tastants. Finally, an investigation of taste mixtures revealed a degree of mixture suppression and interaction among basic qualities similar to those reported by humans. We conclude that the alert macaque offers a reliable neural model for human gustation. (C) 1999 Elsevier Science Inc.
引用
收藏
页码:489 / 511
页数:23
相关论文
共 165 条
[1]  
Abraham S.F., 1975, OLFACTION TASTE, VV, P253
[2]   CORTICAL AND SUB-CORTICAL AFFERENTS TO THE AMYGDALA OF THE RHESUS-MONKEY (MACACA-MULATTA) [J].
AGGLETON, JP ;
BURTON, MJ ;
PASSINGHAM, RE .
BRAIN RESEARCH, 1980, 190 (02) :347-368
[3]  
AMERINE M. A., 1965, AMER J ENOL VITICULT, V16, P29
[4]  
[Anonymous], 1950, STAT METHODS RES WOR
[5]   Circuitry and functional aspects of the insular lobe in primates including humans [J].
Augustine, JR .
BRAIN RESEARCH REVIEWS, 1996, 22 (03) :229-244
[6]   TOPOGRAPHIC MAPPING OF CORTICAL POTENTIALS-EVOKED BY DISTENSION OF THE HUMAN PROXIMAL AND DISTAL ESOPHAGUS [J].
AZIZ, Q ;
FURLONG, PL ;
BARLOW, J ;
HOBSON, A ;
ALANI, S ;
BANCEWICZ, J ;
RIBBANDS, M ;
HARDING, GFA ;
THOMPSON, DG .
EVOKED POTENTIALS-ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1995, 96 (03) :219-228
[7]   CORTICAL ORGANIZATION IN GUSTATION (MACACA-MULATTA) [J].
BAGSHAW, MH ;
PRIBRAM, KH .
JOURNAL OF NEUROPHYSIOLOGY, 1953, 16 (05) :499-508
[8]  
Bartoshuk L. M., 1978, HDB PERCEPTION, VVIA, P3
[9]   WATER TASTE IN MAN [J].
BARTOSHUK, LM .
PERCEPTION & PSYCHOPHYSICS, 1968, 3 (1B) :69-+
[10]   TASTE MIXTURES - IS MIXTURE SUPPRESSION RELATED TO COMPRESSION [J].
BARTOSHUK, LM .
PHYSIOLOGY & BEHAVIOR, 1975, 14 (05) :643-649