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Dynamic causal modeling suggests serial processing of tactile vibratory stimuli in the human somatosensory cortex-An fMRI study

机译:动态因果模型表明,在人体体感皮层中对触觉振动刺激进行串行处理-fMRI研究

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Sensitivity to location and frequency of tactile stimuli is a characterizing feature of human primary (S1), and secondary (S2) somatosensory cortices. Recent evidence suggests that S1 is predominantly receptive to stimulus location, while S2 is attuned to stimulus frequency. Although it is well established in humans that tactile frequency information is relayed serially from S1 to S2, a recent study, using functional magnetic resonance imaging (fMRI) in combination with dynamic causal modeling (DCM), suggested that somatosensory inputs are processed in parallel in S1 and S2. In the present fMRI/DCM study, we revisited this controversy and investigated the specialization of the human somatosensory cortical areas with regard to tactile stimulus representations, as well as their effective connectivity. During brain imaging, 14 participants performed a somatosensory discrimination task on vibrotactile stimuli. Importantly, the model space for DCM was chosen to allow for direct inference on the question of interest by systematically varying the information transmission from pure parallel to pure serial implementations. Bayesian model comparison on the level of model families strongly favors a serial, instead of a parallel processing route for tactile stimulus information along the somatosensory pathway. Our fMRI/DCM data thus support previous suggestions of a sequential information transmission from S1 to S2 in humans.
机译:对触觉刺激的位置和频率的敏感性是人类初级(S1)和次级(S2)体感皮质的特征。最近的证据表明,S1主要接受刺激位置,而S2则适应刺激频率。尽管人类已经很好地将触觉频率信息从S1串行传递到S2,但是最近的一项研究将功能磁共振成像(fMRI)与动态因果模型(DCM)结合使用,建议将体感输入并行处理。 S1和S2。在目前的fMRI / DCM研究中,我们重新审视了这一争议,并就触觉刺激表示法及其有效连通性研究了人体体感皮层区域的特殊性。在大脑成像期间,有14位参与者对触觉刺激进行了体感辨别任务。重要的是,选择了DCM的模型空间,以便通过系统地将信息传输方式从纯并行实现更改为纯串行实现,来直接推断感兴趣的问题。在模型家族水平上进行贝叶斯模型比较,强烈支持沿着体感途径的触觉刺激信息的串行而不是并行处理路径。因此,我们的fMRI / DCM数据支持先前关于在人体中从S1到S2进行顺序信息传输的建议。

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