Neuronal based prosthetic control of volitional movement
Neuronal based prosthetic control of volitional movement
批准号:
8287593
负责人:
Ziv Williams
金额:
$26.48万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-04-01 至 2015-12-31
关键词:
AnimalsAreaBrain StemCell NucleusCervical spinal cord structureCommunicationComputer SimulationComputersDevelopmentDevicesEventFeedbackImplantIndividualInjuryIntentionLimb structureMacaca mulattaMeasuresModelingMonkeysMotorMovementNatural regenerationNeuraxisNeuronal PlasticityNeuronsNeurostimulation procedures of spinal cord tissuePatientsPhysiologic pulsePlayPrimatesProductionProsthesisRetinalRoleSocial ImpactsSpinalSpinal CordSpinal cord injuryStimulusStructure of subthalamic nucleusSystemTestingTrainingVisualWorkabstractingawakebasecentral nervous system injurydesigndisabilityinsightlimb movementmotor controlmotor deficitnovel strategiesreconstitutionrepairedresponsesensory feedbackvectorvisual feedback
中文摘要
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英文摘要
Abstract
The inability to communicate underlies one of the most disabling aspects of injury to the central
nervous system, and includes the inability to perform rudimentary tasks such as flexing and
extending ones' limb or moving a simple cursor on a screen. While the majority of studies thus far
have targeted the intrinsic repair or regeneration of damaged areas of the central nervous system
such as brainstem or proximal cervical spinal cord, alternative approaches for redirecting
information between areas that remain functionally intact is largely unexplored. Work by our group
and others has demonstrated that neuronal activity in cortical and subcortical areas responsible for
motor control can accurately predict volitional movement intention, and that delivery of event-related
electrical stimuli in areas responsible for motor production can reproducibly alter targeted limb
movement. In the current study, we aim to extend these findings by systematically matching and
altering motor intent with movement production in primates performing a motor directional task. To
this end, we will obtain single-neuronal recording from the same subcortical areas shown to predict
motor intention and use a similar system design to deliver electrical stimuli to the ventral spinal cord
in order to approximate and alter movement production. Changes in neuronal activity will be
examined over multiple trials as observed movements predicted by neuronal activity are made to
either correspond or mismatch movements produced by spinal cord stimulation. These findings will
provide a unique perspective into the individual roles that motor neuronal plasticity and spinal
efferent activity play in adaptive motor control, and may offer valuable new insight into the
development of prosthetic designs aimed at restoring volitional movement.
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