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The Perceived Position of Moving Objects: Transcranial Magnetic Stimulation of Area MT+ Reduces the Flash-Lag Effect

机译:运动物体的感知位置:MT +区域的经颅磁刺激减少了闪光滞后效应

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摘要

How does the visual system assign the perceived position of a moving object? This question is surprisingly complex, since sluggish responses of photoreceptors and transmission delays along the visual pathway mean that visual cortex does not have immediate information about a moving object's position. In the flash-lag effect (FLE), a moving object is perceived ahead of an aligned flash. Psychophysical work on this illusion has inspired models for visual localization of moving objects. However, little is known about the underlying neural mechanisms. Here, we investigated the role of neural activity in areas MT+ and V1/V2 in localizing moving objects. Using short trains of repetitive Transcranial Magnetic Stimulation (TMS) or single pulses at different time points, we measured the influence of TMS on the perceived location of a moving object. We found that TMS delivered to MT+ significantly reduced the FLE; single pulse timings revealed a broad temporal tuning with maximum effect for TMS pulses, 200 ms after the flash. Stimulation of V1/V2 did not significantly influence perceived position. Our results demonstrate that area MT+ contributes to the perceptual localization of moving objects and is involved in the integration of position information over a long time window.
机译:视觉系统如何分配运动物体的感知位置?这个问题令人惊讶地复杂,因为感光器的反应迟钝和沿着视觉路径的传输延迟意味着视觉皮层没有关于运动物体位置的即时信息。在闪光滞后效应(FLE)中,在对准的闪光之前会感觉到移动的物体。针对这种错觉的心理物理学工作启发了运动对象视觉定位的模型。然而,关于潜在的神经机制知之甚少。在这里,我们研究了MT +和V1 / V2区域中神经活动在定位运动对象中的作用。在不同的时间点使用短周期的重复经颅磁刺激(TMS)或单个脉冲,我们测量了TMS对运动物体感知位置的影响。我们发现,交付给MT +的TMS大大降低了FLE;单脉冲时序揭示了广泛的时间调谐,对TMS脉冲(闪光后200毫秒)具有最大影响。 V1 / V2的刺激不会显着影响感知的位置。我们的结果表明,MT +区域有助于移动对象的感知定位,并且在很长的时间范围内参与了位置信息的集成。

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