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Tactile stimulus predictability modulates activity in a tactile-motor cortical network

机译:触觉刺激的可预测性调节触觉运动皮层网络中的活动。

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Manipulating objects in the hand requires the continuous transformation of sensory input into appropriate motor behaviour. Using a novel vibrotactile device combined with fMRI, the cortical network associated with tactile sensorimotor transformations was investigated. Continuous tactile stimuli were delivered in a random or predictable pattern to the second digit on the right hand of all subjects. To better distinguish sensory and motor processes, subjects were instructed to make proportionate motor gripping responses with their left hand. A consistent cortical network of activation was revealed that included the supplementary motor, dorsal and ventral premotor, posterior parietal, primary and secondary somatosensory and primary motor cortex. Tracking the unpredictable versus predictable tactile stimulus led to greater delays in motor responses and to increased performance errors. Cortical effects due to stimulus predictability were observed in several components of the network, though it was most evident as increased cortical activation in frontal motor regions during tracking of unpredictable tactile stimuli. In contrast to the proposed hypotheses, primary and secondary somatosensory cortices contralateral to tactile input did not reveal enhanced responses during unpredictable tracking. Facilitation during unpredictable tracking was also observed in primary somatosensory cortex contralateral to motor responses, the receptive site for movement-related afference. The present study provides a novel and controlled approach to investigate the loci associated with tactile-motor processing and to measure the task-specific effect of stimulus predictability on network components.
机译:操作手中的物体需要将感觉输入不断转换为适当的运动行为。使用结合功能磁共振成像的新型振动触觉设备,研究了与触觉感觉运动转换相关的皮层网络。连续的触觉刺激以随机或可预测的方式传递到所有受试者右手的第二个手指。为了更好地区分感觉和运动过程,指示受试者用左手按比例做出运动抓握反应。揭示了一个一致的皮层激活网络,包括补充运动,背侧和腹侧前运动,顶叶后壁,初级和次级体感和初级运动皮层。跟踪不可预测与可预测的触觉刺激会导致运动响应的更大延迟,并导致性能误差增加。在网络的几个组件中都观察到了由于刺激可预测性引起的皮质效应,尽管最明显的是在追踪不可预测的触觉刺激过程中额叶运动区皮质激活增加。与提出的假设相反,与触觉输入相对的初级和次级体感皮层在不可预测的跟踪过程中未显示出增强的响应。在与运动反应相反的初级体感皮层中也观察到了在不可预测的跟踪过程中的促进作用,运动反应是与运动相关的情感的接受部位。本研究提供了一种新颖且可控制的方法来研究与触觉运动处理相关的基因座,并测量刺激可预测性对网络组件的任务特定效果。

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