The primary aim of this study is to investigate the role of the reticular formation in the control of reaching. Neurons in the reticular formation project to the spinal cord and ultimately contribute to the activation of muscles. Indeed, the reticulospinal system is one of the major descending pathways from the brain to the spinal cord. In most accounts, the role ascribed to the reticular formation is control of posture and other support-related roles, with """"""""more advanced"""""""" systems supplying the details required, for example, to control the hand. Consistent with this view, studies to date have focused on the role of reticulospinal systems in locomotion, a movement with complex postural demands. The anatomical connections, however, suggest a role for reticulospinal systems in skilled movements, especially those requiring preparation to """"""""set-up in advance"""""""" of anticipated movements. The present project has identified activity in the reticular formation related to skille d reaching . In some reticular formation cells, activity starts well in advance of movement, suggesting a role in movement preparation. This function had not previously been ascribed to this part of the brain. A new grant proposal stemming from this work has been submitted to investigate the role of preparatory activity in governing spinal reflexes. A more complete understanding of the normal role of the reticulospinal system in the control of skilled movement will lead to better strategies for rehabilitation after strokes and other brain injuries. FUNDING NIH grants RR00166, NS01767, and NS15017.

Agency
National Institute of Health (NIH)
Institute
National Center for Research Resources (NCRR)
Type
Primate Research Center Grants (P51)
Project #
3P51RR000166-38S1
Application #
6219622
Study Section
Project Start
1999-05-01
Project End
2000-04-30
Budget Start
1998-10-01
Budget End
1999-09-30
Support Year
38
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of Washington
Department
Type
DUNS #
135646524
City
Seattle
State
WA
Country
United States
Zip Code
98195
Hasegawa, Yu; Curtis, Britni; Yutuc, Vernon et al. (2018) Microbial structure and function in infant and juvenile rhesus macaques are primarily affected by age, not vaccination status. Sci Rep 8:15867
Oleskiw, Timothy D; Nowack, Amy; Pasupathy, Anitha (2018) Joint coding of shape and blur in area V4. Nat Commun 9:466
Pham, Amelie; Carrasco, Marisa; Kiorpes, Lynne (2018) Endogenous attention improves perception in amblyopic macaques. J Vis 18:11
Zanos, Stavros; Rembado, Irene; Chen, Daofen et al. (2018) Phase-Locked Stimulation during Cortical Beta Oscillations Produces Bidirectional Synaptic Plasticity in Awake Monkeys. Curr Biol 28:2515-2526.e4
Choi, Hannah; Pasupathy, Anitha; Shea-Brown, Eric (2018) Predictive Coding in Area V4: Dynamic Shape Discrimination under Partial Occlusion. Neural Comput 30:1209-1257
Shushruth, S; Mazurek, Mark; Shadlen, Michael N (2018) Comparison of Decision-Related Signals in Sensory and Motor Preparatory Responses of Neurons in Area LIP. J Neurosci 38:6350-6365
Raghanti, Mary Ann; Edler, Melissa K; Stephenson, Alexa R et al. (2018) A neurochemical hypothesis for the origin of hominids. Proc Natl Acad Sci U S A 115:E1108-E1116
Wool, Lauren E; Crook, Joanna D; Troy, John B et al. (2018) Nonselective Wiring Accounts for Red-Green Opponency in Midget Ganglion Cells of the Primate Retina. J Neurosci 38:1520-1540
Eberle, R; Jones-Engel, L (2017) Understanding Primate Herpesviruses. J Emerg Dis Virol 3:
McAdams, Ryan M; McPherson, Ronald J; Kapur, Raj P et al. (2017) Focal Brain Injury Associated with a Model of Severe Hypoxic-Ischemic Encephalopathy in Nonhuman Primates. Dev Neurosci 39:107-123

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