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Timing of V1/V2 and V5+ activations during coherent motion of dots: an MEG study.

机译:点的连贯运动期间V1 / V2和V5 +激活的时间:MEG研究。

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In order to study the temporal activation course of visual areas V1 and V5 in response to a motion stimulus, a random dots kinematogram paradigm was applied to eight subjects while magnetic fields were recorded using magnetoencephalography (MEG). Sources generating the registered magnetic fields were localized with Magnetic Field Tomography (MFT). Anatomical identification of cytoarchitectonically defined areas V1/V2 and V5 was achieved by means of probabilistic cytoarchitectonic maps. We found that the areas V1/V2 and V5+ (V5 and other adjacent motion sensitive areas) exhibited two main activations peaks at 100-130 ms and at 140-200 ms after motion onset. The first peak found for V1/V2, which corresponds to the visual evoked field (VEF) M1, always preceded the peak found in V5+. Additionally, the V5+ peak was correlated significantly and positively with the second V1/V2 peak. This result supports the idea that the M1 component is generated not only by the visual area V1/V2 (as it is usually proposed),but also by V5+. It reflects a forward connection between both structures, and a feedback projection to V1/V2, which provokes a second activation in V1/V2 around 200 ms. This second V1/V2 activation (corresponding to motion VEF M2) appeared earlier than the second V5+ activation but both peaked simultaneously. This result supports the hypothesis that both areas also generate the M2 component, which reflects a feedback input from V5+ to V1/V2 and a crosstalk between both structures. Our study indicates that during visual motion analysis, V1/V2 and V5+ are activated repeatedly through forward and feedback connections and both contribute to m-VEFs M1 and M2.
机译:为了研究视觉区域V1和V5响应运动刺激的时间激活过程,将随机点运动学范式应用于八个对象,同时使用磁脑电图(MEG)记录磁场。用磁场层析成像(MFT)对产生配准磁场的源进行定位。通过概率细胞结构图可对细胞结构定义的区域V1 / V2和V5进行解剖学鉴定。我们发现,区域V1 / V2和V5 +(V5和其他相邻的运动敏感区域)在运动开始后的100-130 ms和140-200 ms处显示出两个主要的激活峰。在V1 / V2中找到的第一个峰(对应于视觉诱发视野(VEF)M1)始终在V5 +中发现的峰之前。此外,V5 +峰与第二个V1 / V2峰显着正相关。该结果支持这样的想法,即M1分量不仅由可视区域V1 / V2(通常建议)生成,而且由V5 +生成。它反映了两个结构之间的正向连接,以及对V1 / V2的反馈投影,这在200 ms左右引发了V1 / V2中的第二次激活。第二次V1 / V2激活(对应于运动VEF M2)出现在第二次V5 +激活之前,但同时达到峰值。该结果支持以下假设:两个区域还生成M2分量,该分量反映了从V5 +到V1 / V2的反馈输入以及两个结构之间的串扰。我们的研究表明,在视觉运动分析过程中,V1 / V2和V5 +通过正向和反馈连接反复激活,并且都对m-VEF M1和M2起作用。

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