Center for Molecular and Behavioral Neuroscience, Rutgers University, Newark, New Jersey;
J Neurophysiol. 2013 Nov;110(9):2007-18. doi: 10.1152/jn.00333.2013. Epub 2013 Aug 7.
Visual motion on the macaque retina is processed by direction- and speed-selective neurons in extrastriate middle temporal cortex (MT). There is strong evidence for a link between the activity of these neurons and direction perception. However, there is conflicting evidence for a link between speed selectivity of MT neurons and speed perception. Here we study this relationship by using a strong perceptual illusion in speed perception: when two transparently superimposed dot patterns move in opposite directions, their apparent speed is much larger than the perceived speed of a single pattern moving at that physical speed. Moreover, the sensitivity for speed discrimination is reduced for such bidirectional patterns. We first confirmed these behavioral findings in human subjects and extended them to a monkey subject. Second, we determined speed tuning curves of MT neurons to bidirectional motion and compared these to speed tuning curves for unidirectional motion. Consistent with previous reports, the response to bidirectional motion was often reduced compared with unidirectional motion at the preferred speed. In addition, we found that tuning curves for bidirectional motion were shifted to lower preferred speeds. As a consequence, bidirectional motion of some speeds typically evoked larger responses than unidirectional motion. Third, we showed that these changes in neural responses could explain changes in speed perception with a simple labeled line decoder. These data provide new insight into the encoding of transparent motion patterns and provide support for the hypothesis that MT activity can be decoded for speed perception with a labeled line model.
猴视网膜上的视觉运动在外侧颞中脑(MT)的方向和速度选择神经元中进行处理。有强有力的证据表明这些神经元的活动与方向知觉之间存在联系。然而,MT 神经元的速度选择性与速度知觉之间存在联系的证据存在冲突。在这里,我们通过使用一种强大的速度知觉错觉来研究这种关系:当两个透明叠加的点模式向相反方向移动时,它们的表观速度远大于以该物理速度移动的单个模式的感知速度。此外,这种双向模式的速度辨别灵敏度降低。我们首先在人类受试者中证实了这些行为发现,并将其扩展到猴子受试者。其次,我们确定了 MT 神经元对双向运动的速度调谐曲线,并将其与单向运动的速度调谐曲线进行了比较。与先前的报告一致,与首选速度相比,双向运动的反应通常比单向运动的反应减少。此外,我们发现双向运动的调谐曲线向较低的首选速度转移。因此,一些速度的双向运动通常会引起比单向运动更大的反应。第三,我们表明,这些神经反应的变化可以用简单的标记线解码器来解释速度知觉的变化。这些数据为透明运动模式的编码提供了新的见解,并为 MT 活动可以通过标记线模型解码速度知觉的假设提供了支持。