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Neural mechanisms of goal-directed action selection by prefrontal cortex: Implications for brain-machine interfaces.

机译:前额叶皮层进行目标定向动作选择的神经机制:对脑机接口的影响。

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摘要

Initiating a movement goal and maintaining that goal throughout the planning and execution of a goal-directed action is an essential element of all goal-directed behavior. In the context of Brain Machine Interfaces (BMIs), a direct communication pathway between the brain and a man-made computing device, continuous access to movement goals is essential, so as to guide the control of neuroprosthetic limbs that provide neurologically impaired subjects with an alternative to their lost motor function. The Prefrontal cortex (PFC) has been suggested as an executive control area of the brain that bridges the temporal gap between incoming sensory information and ensuing motor actions. The mechanisms underlying the dynamics of PFC neural activity, however, remain poorly understood. The main objective of this dissertation is to elucidate the role of PFC neurons in mediating goal initiation and maintenance during goal-directed behavior.;Using a combination of electrophysiological recordings, optogenetic and pharmacological manipulation of population activity and behavioral assays in awake behaving subjects, we demonstrate that the PFC plays a critical role in the planning and execution of a twoalternative forced choice task. In particular, PFC neurons were mostly goal selective during the choice epoch of the task when subjects had to select the action with the highest utility while suppressing all other unrewarded actions. Decoding PFC neural activity using advanced machine learning algorithms showed robust single trial prediction of motor goals, suggesting that PFC may be a candidate site for inferring volitional motor intent. In addition, results from inactivation experiments demonstrate a lateralized performance decline with respect to the inactivation site, further confirming the critical role of the PFC in mediating the motor---but not the sensory---information during the execution of goal-directed behavior. Taken together, our results suggest that the design of next generation BMIs could be further improved by incorporating goal information from cognitive control areas of the brain, thereby augmenting the capability of current designs that only rely on decoding the moment-by-moment kinematics of intended limb movements from motor areas of the brain.
机译:在计划和执行目标导向的行为的整个过程中,发起运动目标并维持该目标是所有目标导向行为的基本要素。在脑机接口(BMI)(即大脑与人造计算设备之间的直接通信路径)的背景下,持续访问运动目标至关重要,以便指导控制神经修复肢体,从而为神经功能受损的受试者提供替代失去的运动功能。前额叶皮层(PFC)已被建议作为大脑的执行控制区域,可以弥合传入的感觉信息与随之而来的运动动作之间的时间间隔。然而,对于PFC神经活动的动力学机制尚不清楚。本论文的主要目的是阐明PFC神经元在定向行为中介导目标启动和维持的作用。通过结合电生理记录,光遗传学和药理学操作的人群活动以及行为清醒的受试者的行为分析,我们证明PFC在计划或执行两种替代性强制选择任务中起着至关重要的作用。特别是,PFC神经元在任务的选择时期主要是目标选择性的,此时受试者必须选择效用最高的动作,同时还要抑制所有其他未奖励的动作。使用高级机器学习算法对PFC神经活动进行解码显示出对运动目标的可靠单次试验预测,表明PFC可能是推断自愿运动意图的候选位点。此外,灭活实验的结果表明,相对于灭活位点,侧向性能下降,进一步证实了PFC在执行目标定向行为过程中在介导运动信息(而非感觉信息)中的关键作用。综上所述,我们的结果表明,可以通过合并来自大脑认知控制区域的目标信息来进一步改进下一代BMI的设计,从而增强仅依赖于对目标运动的瞬时运动进行解码的当前设计的能力。大脑运动区域的肢体运动。

著录项

  • 作者

    Mohebi, Ali.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Electronics and Electrical.;Biology Neuroscience.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 188 p.
  • 总页数 188
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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