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首页> 外文期刊>The European Journal of Neuroscience >Neural mechanisms of sensorimotor transformation and action selection
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Neural mechanisms of sensorimotor transformation and action selection

机译:传感器变换和动作选择的神经机制

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Abstract Ray Guillery made major contributions to our understanding of the development and function of the brain. One of his principal conceptual insights, developed together with Murray Sherman [S.M. Sherman & R.W. Guillery (2001) Exploring the Thalamus . Elsevier, Amstrerdam; S. Sherman & R. Guillery (2006) Exploring the Thalamus and Its Role in Cortical Functioning . Academic Press, New York, NY; S.M. Sherman & R.W. Guillery (2013) Functional Connections of Cortical Areas: A New View from the Thalamus . MIT Press, Cambridge, MA and then in his last book (R. Guillery (2017) The Brain as a Tool: A Neuroscientist's Account . Oxford University Press, Oxford, UK)], was that the brain is a ‘tool’ to understand the world. In this view, the brain does not passively process sensory information and use the result to inform motor outputs. Rather, sensory and motor signals are widely broadcast and inextricably linked, with ongoing sensorimotor transformations serving as the basis for interaction with the outside world. Here, we describe recent studies from our laboratory and others which demonstrate this astute framing of the link among sensation, perception, and action postulated by Guillery and others [G. Deco & E.T. Rolls (2005) Prog Neurobiol, 76, 236–256; P. Cisek & J.F. Kalaska (2010) Annu Rev Neurosci, 33, 269‐298]. Guillery situated his understanding in the deeply intertwined relationship between the thalamus and cortex, and importantly in the feedback from cortex to thalamus which in turn influences feed‐forward drive to cortex [S.M. Sherman & R.W. Guillery (2001) Exploring the Thalamus . Elsevier, Amstrerdam; S. Sherman & R. Guillery (2006) Exploring the Thalamus and Its Role in Cortical Functioning . Academic Press, New York, NY]. We extend these observations to argue that brain mechanisms for sensorimotor transformations involve cortical and subcortical circuits that create internal models as a substrate for action, that a key role of sensory inputs is to update such models, and that a major function of sensorimotor processing underlying cognition is to enable action selection and execution.
机译:抽象的光线泡出来对我们对大脑的发展和功能的理解作出了重大贡献。他的主要概念见解之一,与Murray Sherman一起开发[S.M.谢尔曼& R.W. Guillery(2001)探索丘脑。 elsevier,amstrerdam; S. Sherman& R. Guillery(2006)探索塔马什和其在皮质功能中的作用。学术出版社,纽约,纽约;星谢尔曼& R.W. Guillery(2013)皮质区域的功能连接:丘陵的新视图。 MIT Press,Cambridge,Ma,然后在他的最后一本书中(R.Guillery(2017)作为一个工具:神经科学家的账户。牛津大学出版社,英国牛津大学)是,大脑是一个“工具”世界。在此视图中,大脑不会被动地处理感官信息并使用结果通知电动机输出。相反,感官和电动机信号广泛地广播和密不可分割地连接,具有持续的感觉体变换,作为与外界互动的基础。在这里,我们描述了我们实验室和其他人的最近的研究,这些研究表明了突出病房和其他人的感觉,感知和行动中的表达的这种精明框架[G. Deco& E.T.劳斯(2005)PROG Neurobiol,76,236-256; P. Cisek& J.F. Kalaska(2010)Annu Rev Neurosci,33,269-298]。突出突出突出的理解在丘脑和皮质之间的深刻交织关系中,重要的是在从皮质到丘脑的反馈中,反过来影响前馈驱动到皮质[下半谢尔曼& R.W. Guillery(2001)探索丘脑。 elsevier,amstrerdam; S. Sherman& R. Guillery(2006)探索塔马什和其在皮质功能中的作用。学术出版社,纽约,纽约。我们扩展了这些观察结果,以争辩说感觉电流变换的脑机制涉及一种皮质和解压缩电路,该电路将内部模型作为动作的基板创建,即感官输入的关键作用是更新这些模型,以及传感器处理潜在认知的主要功能是启用动作选择和执行。

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