The major goal of the proposed experiments is to test the general hypothesis that individual frontal motor areas function in motor learning as well as motor performance. The experiments will test three hypotheses that primary and non-primary frontal motor areas to learning. The first hypothesis is that there is a component of discharge modulation in motor cortex uniquely related to the motor learning process itself. The second hypothesis is that motor learning occurs in association with a functional reorganization of motor cortex that supports newly learned motor behaviors. The third hypothesis that individual frontal motor areas subserve different roles in motor learning. In the proposed experiments, neural activity, EMG, and movement kinematics will be recorded in monkeys during two types of visuomotor learning tasks that involve planar arm reaching movements. The first task will require the monkey to adapt either the extent or direction of the reaching movement when the compatibility between a visual position feedback signal and the amplitude or direction of arm movement is altered. Activity during adaptation will be compared to that obtained before and after adaptation and to trials that control for changes in kinematics and target location. The second task will investigate motor learning that requires the establishment of new spatiotemporal patterns of muscle activity when monkeys learn new sequences of reaching movements. In both tasks, recordings will be made using both single microelectrodes and chronically implanted microwires, which will permit the simultaneous and continued evaluation of multiple motor sites in identical behavioral conditions. Reorganization of the functional relationships of motor cortex neurons with each other, with their target muscles or with encoded kinematic variables will be examined using cross correlation techniques. Electrical stimulation methods will also be used to evaluate changes in cortical output. The proposed studies will demonstrate the potential for learning-related reorganization in each of three major subdivisions of motor cortex and the circumstances under which they change. In addition they will clarify the role of motor cortex in controlling the direction and extent of simple and sequential movements. These results have direct relevance to understanding the role of the motor cortex in the development of movement disorders, in functional recovery after damage and may assist in developing neurorehabilitation strategies. Finally, they may help to identify common cortical processes related to learning.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS025074-07
Application #
2265451
Study Section
Neurology B Subcommittee 2 (NEUB)
Project Start
1987-07-01
Project End
1998-06-30
Budget Start
1995-07-01
Budget End
1996-06-30
Support Year
7
Fiscal Year
1995
Total Cost
Indirect Cost
Name
Brown University
Department
Neurosciences
Type
Schools of Medicine
DUNS #
001785542
City
Providence
State
RI
Country
United States
Zip Code
02912
Milekovic, Tomislav; Sarma, Anish A; Bacher, Daniel et al. (2018) Stable long-term BCI-enabled communication in ALS and locked-in syndrome using LFP signals. J Neurophysiol 120:343-360
Accomando, Alyssa W; Vargas-Irwin, Carlos E; Simmons, James A (2018) Spike Train Similarity Space (SSIMS) Method Detects Effects of Obstacle Proximity and Experience on Temporal Patterning of Bat Biosonar. Front Behav Neurosci 12:13
Rule, Michael E; Vargas-Irwin, Carlos; Donoghue, John P et al. (2018) Phase reorganization leads to transient ?-LFP spatial wave patterns in motor cortex during steady-state movement preparation. J Neurophysiol 119:2212-2228
Rule, Michael E; Vargas-Irwin, Carlos E; Donoghue, John P et al. (2017) Dissociation between sustained single-neuron spiking and transient ?-LFP oscillations in primate motor cortex. J Neurophysiol 117:1524-1543
Aghagolzadeh, Mehdi; Truccolo, Wilson (2016) Inference and Decoding of Motor Cortex Low-Dimensional Dynamics via Latent State-Space Models. IEEE Trans Neural Syst Rehabil Eng 24:272-82
Barrese, James C; Aceros, Juan; Donoghue, John P (2016) Scanning electron microscopy of chronically implanted intracortical microelectrode arrays in non-human primates. J Neural Eng 13:026003
Lu, Yao; Truccolo, Wilson; Wagner, Fabien B et al. (2015) Optogenetically induced spatiotemporal gamma oscillations and neuronal spiking activity in primate motor cortex. J Neurophysiol 113:3574-87
Rule, Michael E; Vargas-Irwin, Carlos; Donoghue, John P et al. (2015) Contribution of LFP dynamics to single-neuron spiking variability in motor cortex during movement execution. Front Syst Neurosci 9:89
Vargas-Irwin, Carlos E; Brandman, David M; Zimmermann, Jonas B et al. (2015) Spike train SIMilarity Space (SSIMS): a framework for single neuron and ensemble data analysis. Neural Comput 27:1-31
Vargas-Irwin, Carlos E; Franquemont, Lachlan; Black, Michael J et al. (2015) Linking Objects to Actions: Encoding of Target Object and Grasping Strategy in Primate Ventral Premotor Cortex. J Neurosci 35:10888-97

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