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Erschienen in: Experimental Brain Research 1/2008

01.03.2008 | Research Article

Auditory-motor and cognitive aspects in area 8B of macaque monkey’s frontal cortex: a premotor ear–eye field (PEEF)

verfasst von: C. Lucchetti, M. Lanzilotto, L. Bon

Erschienen in: Experimental Brain Research | Ausgabe 1/2008

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Abstract

In previous reports, we showed the involvement of area 8B neurons in both spontaneous ear and eye movement and in auditory information processing. Audition-related cells responded to complex environmental stimuli, but not to pure tones, and their activity changed during visual fixation as a possible inhibitory expression of the engagement of attention. We observed auditory, auditory-motor and motor cells for both eye and ear movements. This finding suggests that area 8B may be involved in the integration of auditory input with ear and eye motor output. In this paper, we extended these previous studies by examining area 8B activity in relation to auditive orienting behaviour, as well as the ocular orientation (i.e., visual fixation) studied previously. Visual fixation led to inhibition of activity in auditory and auditory-motor cells, which suggests that attention may be involved in both, maintaining the eye position and reducing the response of these cell types. Accordingly, during a given task or natural behaviour, spatial attention seems to affect more than one sensorimotor channel simultaneously. These data add to our understanding of how the neural network, through a two-channel attentive process, accomplishes to switch between two effectors, namely eyes and ears. Considering the functional, anatomical and cytoarchitectonic differences among the frontal eye field (FEF), the supplementary eye field (SEF) and area 8B, we propose to consider area 8B as a separate premotor ear–eye field (PEEF).
Literatur
Zurück zum Zitat Alain C, Arnott SR, Hevenor S, Graham S, Grady CL (2001) “What” and “Where” in the human auditory system. Proc Natl Acad Sci USA 98:12301–12306PubMedCrossRef Alain C, Arnott SR, Hevenor S, Graham S, Grady CL (2001) “What” and “Where” in the human auditory system. Proc Natl Acad Sci USA 98:12301–12306PubMedCrossRef
Zurück zum Zitat Barbas H, Mesulam MM (1981) Organization of afferent input to subdivisions of area 8 in the rhesus monkey. J Comp Neurol 200:407–431PubMedCrossRef Barbas H, Mesulam MM (1981) Organization of afferent input to subdivisions of area 8 in the rhesus monkey. J Comp Neurol 200:407–431PubMedCrossRef
Zurück zum Zitat Barbas H, Pandya DN (1989) Architecture and intrinsic connections of the prefrontal cortex in the rhesus monkey. J Comp Neurol 286:353–375PubMedCrossRef Barbas H, Pandya DN (1989) Architecture and intrinsic connections of the prefrontal cortex in the rhesus monkey. J Comp Neurol 286:353–375PubMedCrossRef
Zurück zum Zitat Barbas H, Ghashghaei H, Dombrowski SM, Rempel-Clower NL (1999) Medial prefrontal cortices are unified by common connections with superior temporal cortices and distinguished by input from memory-related areas in the rhesus monkey. J Comp Neurol 410:343–367PubMedCrossRef Barbas H, Ghashghaei H, Dombrowski SM, Rempel-Clower NL (1999) Medial prefrontal cortices are unified by common connections with superior temporal cortices and distinguished by input from memory-related areas in the rhesus monkey. J Comp Neurol 410:343–367PubMedCrossRef
Zurück zum Zitat Barbas H, Medalla M, Alade O, Suski J, Zikopoulos B, Lera P (2005) Relationship of prefrontal connections to inhibitory systems in superior temporal areas in the rhesus monkey. Cereb Cortex 15:1356–1370PubMedCrossRef Barbas H, Medalla M, Alade O, Suski J, Zikopoulos B, Lera P (2005) Relationship of prefrontal connections to inhibitory systems in superior temporal areas in the rhesus monkey. Cereb Cortex 15:1356–1370PubMedCrossRef
Zurück zum Zitat Bell AH, Corneil BD, Munoz DP, Meredith MA (2003) Engagement of visual fixation suppresses sensory responsiveness and multisensory integration in the primate superior colliculus. Eur J Neurosci 18:2867–2873PubMedCrossRef Bell AH, Corneil BD, Munoz DP, Meredith MA (2003) Engagement of visual fixation suppresses sensory responsiveness and multisensory integration in the primate superior colliculus. Eur J Neurosci 18:2867–2873PubMedCrossRef
Zurück zum Zitat Bon L, Lucchetti C (1991) Behavioural and motor mechanisms of dorsomedial frontal cortex of macaca monkey. Int J Neurosci 60:187–193PubMedCrossRef Bon L, Lucchetti C (1991) Behavioural and motor mechanisms of dorsomedial frontal cortex of macaca monkey. Int J Neurosci 60:187–193PubMedCrossRef
Zurück zum Zitat Bon L, Lucchetti C (1992) The dorsomedial frontal cortex of the macaca monkey: fixation and saccade-related activity. Exp Brain Res 89:571–580PubMedCrossRef Bon L, Lucchetti C (1992) The dorsomedial frontal cortex of the macaca monkey: fixation and saccade-related activity. Exp Brain Res 89:571–580PubMedCrossRef
Zurück zum Zitat Bon L, Lucchetti C (1994) Ear and eye representation in the frontal cortex, area 8b, of the macaque monkey: an electrophysiological study. Exp Brain Res 102:259–271PubMedCrossRef Bon L, Lucchetti C (1994) Ear and eye representation in the frontal cortex, area 8b, of the macaque monkey: an electrophysiological study. Exp Brain Res 102:259–271PubMedCrossRef
Zurück zum Zitat Bon L, Lucchetti C (1997) Attentional-related neurons in the supplementary eye field of the macaque monkey. Exp Brain Res 113:180–185PubMedCrossRef Bon L, Lucchetti C (1997) Attentional-related neurons in the supplementary eye field of the macaque monkey. Exp Brain Res 113:180–185PubMedCrossRef
Zurück zum Zitat Bon L, Lucchetti C (2006) Auditory environmental cells and visual fixation effect in area 8B of macaque monkey. Exp Brain Res 168:441–449PubMedCrossRef Bon L, Lucchetti C (2006) Auditory environmental cells and visual fixation effect in area 8B of macaque monkey. Exp Brain Res 168:441–449PubMedCrossRef
Zurück zum Zitat Bruce CJ, Goldberg ME, Bushnell MC, Stanton GB (1985) Primate frontal eye fields: II. Physiological and anatomic correlates of electrically evoked eye movements. J Neurophysiol 54:714–734PubMed Bruce CJ, Goldberg ME, Bushnell MC, Stanton GB (1985) Primate frontal eye fields: II. Physiological and anatomic correlates of electrically evoked eye movements. J Neurophysiol 54:714–734PubMed
Zurück zum Zitat Chen LL, Walton MMG (2005) Head movement evoked by electric stimulation in the supplementary eye field of the rhesus monkey. J Neurophysiol 94:4502–4519PubMedCrossRef Chen LL, Walton MMG (2005) Head movement evoked by electric stimulation in the supplementary eye field of the rhesus monkey. J Neurophysiol 94:4502–4519PubMedCrossRef
Zurück zum Zitat Cherry EC (1953) Some experiments on the recognition of speech with one and with two ears. J Acust Soc Am 25:975–979CrossRef Cherry EC (1953) Some experiments on the recognition of speech with one and with two ears. J Acust Soc Am 25:975–979CrossRef
Zurück zum Zitat Cohen YE, Russ BE, Gifford III GW (2005) Auditory processing in the posterior parietal cortex. Behav Cogn Neurosci Rev 4:218–231PubMedCrossRef Cohen YE, Russ BE, Gifford III GW (2005) Auditory processing in the posterior parietal cortex. Behav Cogn Neurosci Rev 4:218–231PubMedCrossRef
Zurück zum Zitat Fries W (1984) Cortical projections to the superior colliculus in the macaque monkey: a retrograde study using horseradish peroxidase. J Comp Neurol 230:55–76PubMedCrossRef Fries W (1984) Cortical projections to the superior colliculus in the macaque monkey: a retrograde study using horseradish peroxidase. J Comp Neurol 230:55–76PubMedCrossRef
Zurück zum Zitat Fuster JM, Bodner M, Kroger JK (2000) Cross-modal and cross-temporal association in neurons of frontal cortex. Nature 405:347–351PubMedCrossRef Fuster JM, Bodner M, Kroger JK (2000) Cross-modal and cross-temporal association in neurons of frontal cortex. Nature 405:347–351PubMedCrossRef
Zurück zum Zitat Ghazanfar AA, Maier JX, Hoffman KL, Logothetis NK (2005) Multisensory integration of dynamic faces and voices in rhesus monkey auditory cortex. J Neurosci 18:5004–5012CrossRef Ghazanfar AA, Maier JX, Hoffman KL, Logothetis NK (2005) Multisensory integration of dynamic faces and voices in rhesus monkey auditory cortex. J Neurosci 18:5004–5012CrossRef
Zurück zum Zitat Gifford III GW, Cohen YE (2004) The effect of a central fixation light on auditory spatial responses in area LIP. J Neurophysiol 91:2929–2933PubMedCrossRef Gifford III GW, Cohen YE (2004) The effect of a central fixation light on auditory spatial responses in area LIP. J Neurophysiol 91:2929–2933PubMedCrossRef
Zurück zum Zitat Jay MF, Sparks DL (1987) Sensorimotor integration in the superior colliculus. II. Coordinates of auditory signals. J Neurophysiol 57:35–55PubMed Jay MF, Sparks DL (1987) Sensorimotor integration in the superior colliculus. II. Coordinates of auditory signals. J Neurophysiol 57:35–55PubMed
Zurück zum Zitat Judge SJ, Richmond BJ, Chu FC (1980) Implantation of magnetic search coil for measurement of eye position: an improved method. Vision Res 20:535–538PubMedCrossRef Judge SJ, Richmond BJ, Chu FC (1980) Implantation of magnetic search coil for measurement of eye position: an improved method. Vision Res 20:535–538PubMedCrossRef
Zurück zum Zitat Kaas JH, Hackett TA (2000) Subdivision of auditory cortex and processing streams in primates. Proc Natl Acad Sci USA 97:11793–11799PubMedCrossRef Kaas JH, Hackett TA (2000) Subdivision of auditory cortex and processing streams in primates. Proc Natl Acad Sci USA 97:11793–11799PubMedCrossRef
Zurück zum Zitat Kass RE, Ventura V, Brown EN (2005) Statistical Issue in the analysis of neuronal data. J Neurophysiol 94:8–25PubMedCrossRef Kass RE, Ventura V, Brown EN (2005) Statistical Issue in the analysis of neuronal data. J Neurophysiol 94:8–25PubMedCrossRef
Zurück zum Zitat Levinsohn G (1909) Uber die beziehungen der grosshirnrinde beim affen zu den bewegungen des auges. Graefes Arch Clin Exp Ophthalmol 71:313–378 Levinsohn G (1909) Uber die beziehungen der grosshirnrinde beim affen zu den bewegungen des auges. Graefes Arch Clin Exp Ophthalmol 71:313–378
Zurück zum Zitat Lucchetti C, Lui F, Bon L (1998) Neglect syndrome for aversive stimuli in a macaque monkey with dorsomedial frontal cortex lesion. Neuropsychologia 36:251–257PubMedCrossRef Lucchetti C, Lui F, Bon L (1998) Neglect syndrome for aversive stimuli in a macaque monkey with dorsomedial frontal cortex lesion. Neuropsychologia 36:251–257PubMedCrossRef
Zurück zum Zitat Luppino G, Rozzi S, Calzavara R, Matelli M (2003) Prefrontal and agranular cingulate projections to the dorsal premotor areas F2 and F7 in the macaque monkey. Eur J Neurosci 17:559–578PubMedCrossRef Luppino G, Rozzi S, Calzavara R, Matelli M (2003) Prefrontal and agranular cingulate projections to the dorsal premotor areas F2 and F7 in the macaque monkey. Eur J Neurosci 17:559–578PubMedCrossRef
Zurück zum Zitat Lynch JC, Hoover JE, Strick PL (1994) Input to the primate frontal eye field from the substantia nigra, superior colliculus, and dentate nucleus demonstrated by transneuronal transport. Exp Brain Res 100:181–186PubMedCrossRef Lynch JC, Hoover JE, Strick PL (1994) Input to the primate frontal eye field from the substantia nigra, superior colliculus, and dentate nucleus demonstrated by transneuronal transport. Exp Brain Res 100:181–186PubMedCrossRef
Zurück zum Zitat Mann SE, Thau R, Schiller PH (1988) Conditional task-related responses in monkey dorsomedial frontal cortex. Exp Brain Res 69:460–468PubMedCrossRef Mann SE, Thau R, Schiller PH (1988) Conditional task-related responses in monkey dorsomedial frontal cortex. Exp Brain Res 69:460–468PubMedCrossRef
Zurück zum Zitat Matelli M, Luppino G, Rizzolatti G (1991) Architecture of superior and mesial area 6 and adjacent cingulate cortex in the macaque monkey. J Comp Neurol 311:445–462PubMedCrossRef Matelli M, Luppino G, Rizzolatti G (1991) Architecture of superior and mesial area 6 and adjacent cingulate cortex in the macaque monkey. J Comp Neurol 311:445–462PubMedCrossRef
Zurück zum Zitat Middleton FA, Strick PL (2001) Cerebellar projections to the prefrontal cortex of the primate. J Neurosci 21:700–712PubMed Middleton FA, Strick PL (2001) Cerebellar projections to the prefrontal cortex of the primate. J Neurosci 21:700–712PubMed
Zurück zum Zitat Mitz AR, Godschalk M (1989) Eye-movement representation in the frontal lobe of rhesus monkeys. Neurosci Lett 106:157–162PubMedCrossRef Mitz AR, Godschalk M (1989) Eye-movement representation in the frontal lobe of rhesus monkeys. Neurosci Lett 106:157–162PubMedCrossRef
Zurück zum Zitat Moschovakis AK, Gregoriou GG, Ugolini G, Doldan M, Graf W, Guldin W, Hadjidimitrakis K, Savaki HE (2004) Oculomotor areas of the primate frontal lobes: a transneuronal transfer of rabies virus and [14 C]-2-deoxyglucose functional imaging study. J Neurosci 24:5726–5740PubMedCrossRef Moschovakis AK, Gregoriou GG, Ugolini G, Doldan M, Graf W, Guldin W, Hadjidimitrakis K, Savaki HE (2004) Oculomotor areas of the primate frontal lobes: a transneuronal transfer of rabies virus and [14 C]-2-deoxyglucose functional imaging study. J Neurosci 24:5726–5740PubMedCrossRef
Zurück zum Zitat Pandya DN, Yeterian EH (1985) Architecture and connections of cortical association areas. In: Peters A, Jones EG (eds) Association and auditory cortices. Plenum, New York, pp 3–61 Pandya DN, Yeterian EH (1985) Architecture and connections of cortical association areas. In: Peters A, Jones EG (eds) Association and auditory cortices. Plenum, New York, pp 3–61
Zurück zum Zitat Passingham R (1993) In: The frontal lobes and voluntary action. Oxford Psychology Series NO 21 Passingham R (1993) In: The frontal lobes and voluntary action. Oxford Psychology Series NO 21
Zurück zum Zitat Petrides M, Pandya DN (1994) Comparative architectonic analysis of the human and the macaque frontal cortex. In: Boller F, Grafman J (eds) Handbook of neuropsychology, vol 9. Elsevier, Amsterdam, pp 17–57 Petrides M, Pandya DN (1994) Comparative architectonic analysis of the human and the macaque frontal cortex. In: Boller F, Grafman J (eds) Handbook of neuropsychology, vol 9. Elsevier, Amsterdam, pp 17–57
Zurück zum Zitat Populin LC, Yin TCT (1998) Pinna movements of the cat during sound localization. J Neuroscience 18:4233–4243 Populin LC, Yin TCT (1998) Pinna movements of the cat during sound localization. J Neuroscience 18:4233–4243
Zurück zum Zitat Populin LC, Yin TCT (2002) Bimodal interactions in the superior colliculus of the behaving cat. J Neurosci 22:2826–2834PubMed Populin LC, Yin TCT (2002) Bimodal interactions in the superior colliculus of the behaving cat. J Neurosci 22:2826–2834PubMed
Zurück zum Zitat Preuss TM, Stepniewska I, Kaas JH (1996) Movement representation in the dorsal and ventral premotor areas of Owl monkeys: a microstimulation study. J Comp Neurol 371:649–676PubMedCrossRef Preuss TM, Stepniewska I, Kaas JH (1996) Movement representation in the dorsal and ventral premotor areas of Owl monkeys: a microstimulation study. J Comp Neurol 371:649–676PubMedCrossRef
Zurück zum Zitat Rao SC, Rainer G, Miller EK (1997) Integration of what and where in the primate prefrontal cortex. Science 276:821–824PubMedCrossRef Rao SC, Rainer G, Miller EK (1997) Integration of what and where in the primate prefrontal cortex. Science 276:821–824PubMedCrossRef
Zurück zum Zitat Rauschecker JP, Tian B, Hauser M (1995) Processing of complex sounds in the macaque non primary auditory cortex. Science 268:111–114PubMedCrossRef Rauschecker JP, Tian B, Hauser M (1995) Processing of complex sounds in the macaque non primary auditory cortex. Science 268:111–114PubMedCrossRef
Zurück zum Zitat Recanzone GH (2000) Spatial processing in the auditory cortex of the macaque monkey. Proc Natl Acad Sci USA 97:11829–11835PubMedCrossRef Recanzone GH (2000) Spatial processing in the auditory cortex of the macaque monkey. Proc Natl Acad Sci USA 97:11829–11835PubMedCrossRef
Zurück zum Zitat Remmel RS (1984) An inexpensive eye movement monitor using the scleral coil technique. IEEE Trans Biomed Engin BME 31(4):388–390CrossRef Remmel RS (1984) An inexpensive eye movement monitor using the scleral coil technique. IEEE Trans Biomed Engin BME 31(4):388–390CrossRef
Zurück zum Zitat Rizzolatti G, Craighero L (1998) Spatial attention: mechanisms and theories. In: Sabourin M, Craik F, Robert M (eds) Advances in psychological science: biological and cognitive aspects, vol 2. Psychological Press, Francis & Taylor, pp 171–198 Rizzolatti G, Craighero L (1998) Spatial attention: mechanisms and theories. In: Sabourin M, Craik F, Robert M (eds) Advances in psychological science: biological and cognitive aspects, vol 2. Psychological Press, Francis & Taylor, pp 171–198
Zurück zum Zitat Rizzolatti G, Camarda R, Grupp LA, Pisa M (1974) Inhibitory effect of remote visual stimuli on visual responses of cat superior colliculus: spatial and temporal factors. J Neurophysiol 37:1262–1275PubMed Rizzolatti G, Camarda R, Grupp LA, Pisa M (1974) Inhibitory effect of remote visual stimuli on visual responses of cat superior colliculus: spatial and temporal factors. J Neurophysiol 37:1262–1275PubMed
Zurück zum Zitat Romanski LM, Bates JF, Goldman-Rakic PS (1999) Auditory belt and parabelt projections to the prefrontal cortex in the rhesus monkey. J Comp Neurol 403:141–157PubMedCrossRef Romanski LM, Bates JF, Goldman-Rakic PS (1999) Auditory belt and parabelt projections to the prefrontal cortex in the rhesus monkey. J Comp Neurol 403:141–157PubMedCrossRef
Zurück zum Zitat Russo GS, Bruce CJ (1994) Frontal eye field activity preceding aurally guided saccades. J Neurophysiol 71:1250–1253PubMed Russo GS, Bruce CJ (1994) Frontal eye field activity preceding aurally guided saccades. J Neurophysiol 71:1250–1253PubMed
Zurück zum Zitat Schall JD (1991) Neuronal activity related to visually guided saccadic eye-movements in the supplementary motor area of Rhesus monkeys J. Neurophysiology 66:530–558PubMed Schall JD (1991) Neuronal activity related to visually guided saccadic eye-movements in the supplementary motor area of Rhesus monkeys J. Neurophysiology 66:530–558PubMed
Zurück zum Zitat Schall JD (1997) Visuomotor areas of the frontal lobe in cerebral cortex. In: Rockland KS, Kaas JH, Peters A (eds) Extrastriate cortex in primates, vol 12. Plenum Press, New York, pp. 527–616 Schall JD (1997) Visuomotor areas of the frontal lobe in cerebral cortex. In: Rockland KS, Kaas JH, Peters A (eds) Extrastriate cortex in primates, vol 12. Plenum Press, New York, pp. 527–616
Zurück zum Zitat Schlag J, Schlag-Rey M (1987) Evidence for a supplementary eye field. J Neurophysiol 57:179–200PubMed Schlag J, Schlag-Rey M (1987) Evidence for a supplementary eye field. J Neurophysiol 57:179–200PubMed
Zurück zum Zitat Schmahmann JD, Pandya DN (1997) Anatomic organization of the basilar pontine projections from prefrontal cortices in rhesus monkey. J Neurosci 17:438–458PubMed Schmahmann JD, Pandya DN (1997) Anatomic organization of the basilar pontine projections from prefrontal cortices in rhesus monkey. J Neurosci 17:438–458PubMed
Zurück zum Zitat Stepniewska I, Preuss TM, Kaas JH (1993) Architectonics, somatotopic organization, and ipsilateral cortical connections of the primary motor area (M1) of owl monkeys. J Comp Neurol 330:238–271PubMedCrossRef Stepniewska I, Preuss TM, Kaas JH (1993) Architectonics, somatotopic organization, and ipsilateral cortical connections of the primary motor area (M1) of owl monkeys. J Comp Neurol 330:238–271PubMedCrossRef
Zurück zum Zitat Tanila H, Carlson S, Linnankoski I, Lindros F, Kahila H (1992) Functional properties of dorsolateral prefrontal cortical neurons in awake monkey. Behav Brain Res 47:169–180PubMedCrossRef Tanila H, Carlson S, Linnankoski I, Lindros F, Kahila H (1992) Functional properties of dorsolateral prefrontal cortical neurons in awake monkey. Behav Brain Res 47:169–180PubMedCrossRef
Zurück zum Zitat Tanila H, Carlson S, Linnankoski I, Kahila H (1993) Regional distribution of functions in dorsolateral prefrontal cortex of the monkey. Behav Brain Res 53:63–71PubMedCrossRef Tanila H, Carlson S, Linnankoski I, Kahila H (1993) Regional distribution of functions in dorsolateral prefrontal cortex of the monkey. Behav Brain Res 53:63–71PubMedCrossRef
Zurück zum Zitat Tehovnik EJ, Lee KM (1993) The dorsomedial frontal cortex of the rhesus monkey. Topographic representation of saccades evoked by electric stimulation. Exp Brain Res 96:430–442PubMedCrossRef Tehovnik EJ, Lee KM (1993) The dorsomedial frontal cortex of the rhesus monkey. Topographic representation of saccades evoked by electric stimulation. Exp Brain Res 96:430–442PubMedCrossRef
Zurück zum Zitat Tehovnik EJ, Sommer MS (1997) Electrically evoked saccades from the dorsomedial frontal cortex and frontal eye field: a parametric evaluation reveals differences between areas. Exp Brain Res 117:369–378PubMedCrossRef Tehovnik EJ, Sommer MS (1997) Electrically evoked saccades from the dorsomedial frontal cortex and frontal eye field: a parametric evaluation reveals differences between areas. Exp Brain Res 117:369–378PubMedCrossRef
Zurück zum Zitat Tehovnik EJ, Sommer MA, Chou IH, Slocum WM, Schiller PH (2000) Eye fields in the frontal lobes of primates. Brain Res Rev 32:413–448PubMedCrossRef Tehovnik EJ, Sommer MA, Chou IH, Slocum WM, Schiller PH (2000) Eye fields in the frontal lobes of primates. Brain Res Rev 32:413–448PubMedCrossRef
Zurück zum Zitat Turatto M, Galfano G, Bridgeman B, Umiltà C (2004) Space-independent modality-driven attentional capture in auditory, tactile and visual systems. Exp Brain Res 155:301–310PubMedCrossRef Turatto M, Galfano G, Bridgeman B, Umiltà C (2004) Space-independent modality-driven attentional capture in auditory, tactile and visual systems. Exp Brain Res 155:301–310PubMedCrossRef
Zurück zum Zitat Vaadia E, Benson DA, Hienz RD, Goldstein MH (1986) Unit study of monkey frontal cortex: active localization of auditory and of visual stimuli. J Neurophysiol 56:934–952PubMed Vaadia E, Benson DA, Hienz RD, Goldstein MH (1986) Unit study of monkey frontal cortex: active localization of auditory and of visual stimuli. J Neurophysiol 56:934–952PubMed
Zurück zum Zitat Von Bonin G, Bailey P (1947) The neocortex of macaca mulatta. University of Illinois Press, Urbana Von Bonin G, Bailey P (1947) The neocortex of macaca mulatta. University of Illinois Press, Urbana
Zurück zum Zitat Walker AE (1940) A cytoarchitectural study of frontal area of the macaque monkey. J Comp Neurol 73:59–86CrossRef Walker AE (1940) A cytoarchitectural study of frontal area of the macaque monkey. J Comp Neurol 73:59–86CrossRef
Zurück zum Zitat Wang YW, Isoda M, Matsuzaka Y, Shima K, Tanji J (2005) Prefrontal cortical cells projecting to the supplementary eye field and presupplementary motor area in the monkey. Neurosci Res 53:1–7PubMedCrossRef Wang YW, Isoda M, Matsuzaka Y, Shima K, Tanji J (2005) Prefrontal cortical cells projecting to the supplementary eye field and presupplementary motor area in the monkey. Neurosci Res 53:1–7PubMedCrossRef
Zurück zum Zitat Wessinger CM, Van Meter J, Tian B, Van Lare J, Pekar J, Rauschecker JP (2001) Hierarchical organization of the human auditory cortex revealed by functional magnetic resonance imaging. J Cogn Neurosci 13:1–7PubMedCrossRef Wessinger CM, Van Meter J, Tian B, Van Lare J, Pekar J, Rauschecker JP (2001) Hierarchical organization of the human auditory cortex revealed by functional magnetic resonance imaging. J Cogn Neurosci 13:1–7PubMedCrossRef
Metadaten
Titel
Auditory-motor and cognitive aspects in area 8B of macaque monkey’s frontal cortex: a premotor ear–eye field (PEEF)
verfasst von
C. Lucchetti
M. Lanzilotto
L. Bon
Publikationsdatum
01.03.2008
Verlag
Springer-Verlag
Erschienen in
Experimental Brain Research / Ausgabe 1/2008
Print ISSN: 0014-4819
Elektronische ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-007-1216-5

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