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On the Anticipatory Precue Activity in Motor Cortex

Overview
Journal J Neurosci
Specialty Neurology
Date 2012 Nov 2
PMID 23115174
Citations 16
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Abstract

Motor cortical neurons are activated during movement preparation and execution, and in response to task-relevant visual cues. A few studies also report activation before the expected presentation of cues. Here, we study specifically this anticipatory activity preceding visual cues in motor cortical areas. We recorded the activity of 1215 neurons in the motor cortex of two macaque monkeys while they performed a center-out reaching task, including two consecutive delays of equal duration, known in advance. During the first delay (D1), they had to await the spatial cue and only reach to the cued target after the second delay (D2). Forty-two percent of the neurons displayed anticipatory activity during D1. Among these anticipatory neurons, 59% increased (D1up) their activity and the remaining decreased (D1down) their activity. By classifying the neurons according to these firing rate profiles during D1, we found that the activity during D2 differed in a systematic way. The D1up neurons were more likely to discharge phasically soon after the spatial cue and were less active during movement execution, whereas the D1down neurons showed the opposite pattern. But, regardless of their temporal activity profiles, the two categories seemed equally involved in early and late motor preparation, as reflected in their directional selectivity. This precue activity in motor cortex may reflect two complementary, coexisting processes: the facilitation of incoming spatial information in parallel with the downregulation of corticospinal excitability to prevent a premature response.

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References
1.
Schubotz R, von Cramon D . Functional organization of the lateral premotor cortex: fMRI reveals different regions activated by anticipation of object properties, location and speed. Brain Res Cogn Brain Res. 2001; 11(1):97-112. DOI: 10.1016/s0926-6410(00)00069-0. View

2.
Vaadia E, Benson D, Hienz R, GOLDSTEIN Jr M . Unit study of monkey frontal cortex: active localization of auditory and of visual stimuli. J Neurophysiol. 1986; 56(4):934-52. DOI: 10.1152/jn.1986.56.4.934. View

3.
Riehle A, Requin J . Monkey primary motor and premotor cortex: single-cell activity related to prior information about direction and extent of an intended movement. J Neurophysiol. 1989; 61(3):534-49. DOI: 10.1152/jn.1989.61.3.534. View

4.
Fujioka T, Trainor L, Large E, Ross B . Internalized timing of isochronous sounds is represented in neuromagnetic β oscillations. J Neurosci. 2012; 32(5):1791-802. PMC: 6703342. DOI: 10.1523/JNEUROSCI.4107-11.2012. View

5.
Coull J, Nobre A . Dissociating explicit timing from temporal expectation with fMRI. Curr Opin Neurobiol. 2008; 18(2):137-44. DOI: 10.1016/j.conb.2008.07.011. View