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操作手持物体时动力学的中枢表征。

Central representation of dynamics when manipulating handheld objects.

作者信息

Milner Theodore E, Franklin David W, Imamizu Hiroshi, Kawato Mitsuo

机构信息

Computational Neuroscience Laboratories, ATR, Kyoto, Japan.

出版信息

J Neurophysiol. 2006 Feb;95(2):893-901. doi: 10.1152/jn.00198.2005. Epub 2005 Oct 26.

Abstract

To explore the neural mechanisms related to representation of the manipulation dynamics of objects, we performed whole-brain fMRI while subjects balanced an object in stable and highly unstable states and while they balanced a rigid object and a flexible object in the same unstable state, in all cases without vision. In this way, we varied the extent to which an internal model of the manipulation dynamics was required in the moment-to-moment control of the object's orientation. We hypothesized that activity in primary motor cortex would reflect the amount of muscle activation under each condition. In contrast, we hypothesized that cerebellar activity would be more strongly related to the stability and complexity of the manipulation dynamics because the cerebellum has been implicated in internal model-based control. As hypothesized, the dynamics-related activation of the cerebellum was quite different from that of the primary motor cortex. Changes in cerebellar activity were much greater than would have been predicted from differences in muscle activation when the stability and complexity of the manipulation dynamics were contrasted. On the other hand, the activity of the primary motor cortex more closely resembled the mean motor output necessary to execute the task. We also discovered a small region near the anterior edge of the ipsilateral (right) inferior parietal lobule where activity was modulated with the complexity of the manipulation dynamics. We suggest that this is related to imagining the location and motion of an object with complex manipulation dynamics.

摘要

为了探究与物体操作动力学表征相关的神经机制,我们在受试者于稳定和高度不稳定状态下平衡一个物体时,以及在他们于相同不稳定状态下平衡一个刚性物体和一个柔性物体时,进行了全脑功能磁共振成像(fMRI),所有情况均无视觉参与。通过这种方式,我们改变了在物体方向的即时控制中所需操作动力学内部模型的程度。我们假设初级运动皮层的活动将反映每种条件下的肌肉激活量。相比之下,我们假设小脑活动将与操作动力学的稳定性和复杂性更密切相关,因为小脑已被认为与基于内部模型的控制有关。正如所假设的,小脑与动力学相关的激活与初级运动皮层的激活有很大不同。当对比操作动力学的稳定性和复杂性时,小脑活动的变化比根据肌肉激活差异所预测的要大得多。另一方面,初级运动皮层的活动更类似于执行任务所需的平均运动输出。我们还在同侧(右侧)顶下小叶前缘附近发现了一个小区域,其活动随操作动力学的复杂性而调制。我们认为这与想象具有复杂操作动力学的物体的位置和运动有关。

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