» Articles » PMID: 20463216

A Relative Position Code for Saccades in Dorsal Premotor Cortex

Overview
Journal J Neurosci
Specialty Neurology
Date 2010 May 14
PMID 20463216
Citations 27
Authors
Affiliations
Soon will be listed here.
Abstract

Spatial computations underlying the coordination of the hand and eye present formidable geometric challenges. One way for the nervous system to simplify these computations is to directly encode the relative position of the hand and the center of gaze. Neurons in the dorsal premotor cortex (PMd), which is critical for the guidance of arm-reaching movements, encode the relative position of the hand, gaze, and goal of reaching movements. This suggests that PMd can coordinate reaching movements with eye movements. Here, we examine saccade-related signals in PMd to determine whether they also point to a role for PMd in coordinating visual-motor behavior. We first compared the activity of a population of PMd neurons with a population of parietal reach region (PRR) neurons. During center-out reaching and saccade tasks, PMd neurons responded more strongly before saccades than PRR neurons, and PMd contained a larger proportion of exclusively saccade-tuned cells than PRR. During a saccade relative position-coding task, PMd neurons encoded saccade targets in a relative position code that depended on the relative position of gaze, the hand, and the goal of a saccadic eye movement. This relative position code for saccades is similar to the way that PMd neurons encode reach targets. We propose that eye movement and eye position signals in PMd do not drive eye movements, but rather provide spatial information that links the control of eye and arm movements to support coordinated visual-motor behavior.

Citing Articles

Mapping eye, arm, and reward information in frontal motor cortices using electrocorticography in non-human primates.

Ouchi T, Scholl L, Rajeswaran P, Canfield R, Smith L, Orsborn A bioRxiv. 2024; .

PMID: 39185198 PMC: 11343120. DOI: 10.1101/2024.08.13.607846.


Effector-selective modulation of the effective connectivity within frontoparietal circuits during visuomotor tasks.

Bencivenga F, Tullo M, Maltempo T, von Gal A, Serra C, Pitzalis S Cereb Cortex. 2022; 33(6):2517-2538.

PMID: 35709758 PMC: 10016057. DOI: 10.1093/cercor/bhac223.


Computational Mechanisms Mediating Inhibitory Control of Coordinated Eye-Hand Movements.

Jana S, Gopal A, Murthy A Brain Sci. 2021; 11(5).

PMID: 34068477 PMC: 8150398. DOI: 10.3390/brainsci11050607.


Lower visual field preference for the visuomotor control of limb movements in the human dorsomedial parietal cortex.

Maltempo T, Pitzalis S, Bellagamba M, Di Marco S, Fattori P, Galati G Brain Struct Funct. 2021; 226(9):2989-3005.

PMID: 33738579 PMC: 8541995. DOI: 10.1007/s00429-021-02254-3.


Cognition in Sensorimotor Control: Interfacing With the Posterior Parietal Cortex.

Chivukula S, Jafari M, Aflalo T, Yong N, Pouratian N Front Neurosci. 2019; 13:140.

PMID: 30872993 PMC: 6401528. DOI: 10.3389/fnins.2019.00140.


References
1.
He S, Dum R, Strick P . Topographic organization of corticospinal projections from the frontal lobe: motor areas on the lateral surface of the hemisphere. J Neurosci. 1993; 13(3):952-80. PMC: 6576595. View

2.
Blohm G, Crawford J . Computations for geometrically accurate visually guided reaching in 3-D space. J Vis. 2008; 7(5):4.1-22. DOI: 10.1167/7.5.4. View

3.
Fujii N, Mushiake H, Tanji J . An oculomotor representation area within the ventral premotor cortex. Proc Natl Acad Sci U S A. 1998; 95(20):12034-7. PMC: 21760. DOI: 10.1073/pnas.95.20.12034. View

4.
Schlag J, SCHLAG-REY M . Evidence for a supplementary eye field. J Neurophysiol. 1987; 57(1):179-200. DOI: 10.1152/jn.1987.57.1.179. View

5.
Russo G, Bruce C . Supplementary eye field: representation of saccades and relationship between neural response fields and elicited eye movements. J Neurophysiol. 2000; 84(5):2605-21. DOI: 10.1152/jn.2000.84.5.2605. View