Home LiteratureArticle Details
PMID: 3416964 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Functional organization of inferior area 6 in the macaque monkey. I. Somatotopy and the control of proximal movements.

Experimental brain research ·Vol. 71 ·No. 3 ·1988-00-00 ·Pages 475-90

Gentilucci M, Fogassi L, Luppino G, Matelli M, Camarda R, Rizzolatti G

Abstract

Two series of experiments are reported in this paper. The first concerns the movement representation in the macaque inferior area 6, the second the functional properties of neurons located in the caudal part of this area (histochemical area F4). By combining single neuron recording and intracortical microstimulation, we found that inferior area 6 is somatotopically organized. The axio-proximal movements are represented caudally, the distal movements are represented near the arcuate sulcus. The mouth field is located laterally, the hand field medially. There is no leg field. A comparison between neuron properties and histochemical characteristics of inferior area 6 showed that the proximal movements representation includes most of area F4, whereas the distal movements representation corresponds to area F5 and to the rostral part of F4. Neurons located in that part of F4 where proximal movements are represented respond very well to tactile stimuli. They have large receptive fields mostly located on the face and on the upper part of the body. A large number of these neurons respond to visual stimuli. Objects approaching the animal are particularly effective. The tactile and the visual receptive fields are in register. The most represented movements are reaching movements, movements bringing the hand to the mouth or to the body and facial movements. There is a congruence between location of visual fields and preferred arm movements. It is argued that the receptive field arrangement and the response properties are more complex in area F4 than in the primary motor cortex and that area F4 neurons are involved in the control of arm movements towards different space sectors.

MeSH Terms
Animals Brain Mapping Electric Stimulation Evoked Potentials, Somatosensory Evoked Potentials, Visual Frontal Lobe/physiology Macaca/physiology Macaca nemestrina/physiology Movement Photic Stimulation Touch
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Gentilucci M
Istituto di Fisiologia Umana, Universitá di Parma, Italy.
Fogassi L
Luppino G
Matelli M
Camarda R
Rizzolatti G
References (37)
37 references, click to expand
  1. Behaviour of neurons in monkey peri-arcuate and precentral cortex before and during visually guided arm and hand movements.
    Exp Brain Res. 1981;44(1):113-6 PMID: 7274360
  2. Integration in descending motor pathways controlling the forelimb in the cat. 1. Pyramidal effects on motoneurones.
    Exp Brain Res. 1976 Dec 22;26(5):509-19 PMID: 1010004
  3. An autoradiographic analysis of the efferent connections from premotor and adjacent prefrontal regions (areas 6 and 9) in macaca fascicularis.
    Brain Behav Evol. 1978;15(3):185-234 PMID: 99205
  4. Functional organization of inferior area 6 in the macaque monkey. II. Area F5 and the control of distal movements.
    Exp Brain Res. 1988;71(3):491-507 PMID: 3416965
  5. Motor conditional associative-learning after selective prefrontal lesions in the monkey.
    Behav Brain Res. 1982 Aug;5(4):407-13 PMID: 7126320
  6. Afferent properties of periarcuate neurons in macaque monkeys. II. Visual responses.
    Behav Brain Res. 1981 Mar;2(2):147-63 PMID: 7248055
  7. The premotor cortex of the monkey.
    J Neurosci. 1982 Sep;2(9):1329-45 PMID: 7119878
  8. Visual responses in the postarcuate cortex (area 6) of the monkey that are independent of eye position.
    Exp Brain Res. 1983;50(2-3):464-8 PMID: 6641880
  9. A neurophysiological study of the premotor cortex in the rhesus monkey.
    Brain. 1984 Jun;107 ( Pt 2):385-414 PMID: 6722510
  10. Posterior parietal association cortex of the monkey: command functions for operations within extrapersonal space.
    J Neurophysiol. 1975 Jul;38(4):871-908 PMID: 808592
  11. Afferent input to movement-related precentral neurones in conscious monkeys.
    Proc R Soc Lond B Biol Sci. 1976 Oct 29;194(1116):313-39 PMID: 11491
  12. Exact cortical extent of the origin of the corticospinal tract (CST) and the quantitative contribution to the CST in different cytoarchitectonic areas. A study with horseradish peroxidase in the monkey.
    J Hirnforsch. 1982;23(3):257-69 PMID: 7130676
  13. Patterns of cytochrome oxidase activity in the frontal agranular cortex of the macaque monkey.
    Behav Brain Res. 1985 Nov-Dec;18(2):125-36 PMID: 3006721
  14. Integration in descending motor pathways controlling the forelimb in the cat. 9. Differential behavioural defects after spinal cord lesions interrupting defined pathways from higher centres to motoneurones.
    Exp Brain Res. 1981;42(3-4):299-318 PMID: 7238672
  15. Spatial organization of precentral cortex in awake primates. II. Motor outputs.
    J Neurophysiol. 1978 Sep;41(5):1120-31 PMID: 100584
  16. Afferent properties of periarcuate neurons in macaque monkeys. I. Somatosensory responses.
    Behav Brain Res. 1981 Mar;2(2):125-46 PMID: 7248054
  17. Cortical projection to hand-arm motor area from post-arcuate area in macaque monkeys: a histological study of retrograde transport of horseradish peroxidase.
    Neurosci Lett. 1979 Mar;11(3):241-6 PMID: 117403
  18. Cortical afferents and efferents of monkey postarcuate area: an anatomical and electrophysiological study.
    Exp Brain Res. 1984;56(3):410-24 PMID: 6094229
  19. Integration in descending motor pathways controlling the forelimb in the cat. 3. Convergence on propriospinal neurones transmitting disynaptic excitation from the corticospinal tract and other descending tracts.
    Exp Brain Res. 1977 Sep 28;29(3-4):323-46 PMID: 913521
  20. Patterns of localization in precentral and "supplementary" motor areas and their relation to the concept of a premotor area.
    Res Publ Assoc Res Nerv Ment Dis. 1952;30:238-64 PMID: 12983675
  21. Afferent and efferent projections of the inferior area 6 in the macaque monkey.
    J Comp Neurol. 1986 Sep 15;251(3):281-98 PMID: 3021823
  22. The role of premotor and parietal cortex in the direction of action.
    Brain Res. 1982 May 27;240(2):368-72 PMID: 7104700
  23. Spatial organization of precentral cortex in awake primates. I. Somatosensory inputs.
    J Neurophysiol. 1978 Sep;41(5):1107-19 PMID: 100583
  24. The supplementary motor area of the cerebral cortex; a clinical and experimental study.
    AMA Arch Neurol Psychiatry. 1951 Sep;66(3):289-317 PMID: 14867993
  25. Corticospinal neurones. Their role in movement.
    Monogr Physiol Soc. 1977;(34):v-xii, 1-450 PMID: 351378
  26. Architecture and frontal cortical connections of the premotor cortex (area 6) in the rhesus monkey.
    J Comp Neurol. 1987 Feb 8;256(2):211-28 PMID: 3558879
  27. Relationship between the activity of precentral neurones during active and passive movements in conscious monkeys.
    Proc R Soc Lond B Biol Sci. 1976 Oct 29;194(1116):341-73 PMID: 11492
  28. Premotor cortical ablations in monkeys: contralateral changes in visually guided reaching behavior.
    Science. 1977 Oct 21;198(4314):317-9 PMID: 410103
  29. Organization of corticospinal neurons in the monkey.
    J Comp Neurol. 1981 Jan 10;195(2):339-65 PMID: 7251930
  30. Premotor cortex neurons in macaques: activity before distal and proximal forelimb movements.
    J Neurosci. 1986 Feb;6(2):403-11 PMID: 3950703
  31. The primate premotor cortex: past, present, and preparatory.
    Annu Rev Neurosci. 1985;8:1-19 PMID: 3920943
  32. How do the basal ganglia and cerebellum gain access to the cortical motor areas?
    Behav Brain Res. 1985 Nov-Dec;18(2):107-23 PMID: 3913443
  33. Frontal lobe inputs to primate motor cortex: evidence for four somatotopically organized 'premotor' areas.
    Brain Res. 1979 Nov 9;177(1):176-82 PMID: 115545
  34. Corticospinal projections originate from the arcuate premotor area.
    Brain Res. 1987 Feb 24;404(1-2):307-12 PMID: 3032334
  35. Response properties and behavioral modulation of "mouth" neurons of the postarcuate cortex (area 6) in macaque monkeys.
    Brain Res. 1981 Nov 30;225(2):421-4 PMID: 7306798
  36. [Neurons with visual receptive fields independent of eye position in the caudal portion of the ventral wall of the cruciate sulcus of the cat cerebral cortex].
    Neirofiziologiia. 1986;18(6):800-5 PMID: 3808118
  37. Structural and functional definition of the motor cortex in the monkey (Macaca fascicularis).
    J Physiol. 1982 Feb;323:245-65 PMID: 7097574
Article Info
Journal
Experimental brain research
Abbr.
Exp Brain Res
ISSN
0014-4819
Published
1988-00-00
Pages
475-90
Language
English
Region
Germany
NLM ID
0043312
Subset
IM
Grants
NINDS NIH HHS · 1 RO1 NS 19206-01A1 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]