Center for Mind/Brain Sciences (CIMeC), University of Trento, Italy.
Center for Mind/Brain Sciences (CIMeC), University of Trento, Italy.
Neuroimage. 2017 Aug 15;157:648-659. doi: 10.1016/j.neuroimage.2017.05.028. Epub 2017 May 18.
Understanding how humans code for and respond to environmental uncertainty/regularity is a question shared by current computational and neurobiological approaches to human cognition. To date, studies investigating neurobiological systems that track input uncertainty have examined responses to uni-sensory streams. It is not known, however, whether there exist brain systems that combine information about the regularity of input streams presented to different senses. We report an fMRI study that aimed to identify brain systems that relate statistical information across sensory modalities. We constructed temporally extended auditory and visual streams, each of which could be random or highly regular, and presented them concurrently. We found strong signatures of "regularity matching" in visual cortex bilaterally; responses were higher when the level of regularity in the auditory and visual streams mismatched than when it matched, [(AudHigh/VisLow and AudLow/VisHigh) >(AudLow/VisLow and AudHigh/VisHigh)]. In addition, several frontal and parietal regions tracked regularity of the auditory or visual stream independently of the other stream's regularity. An individual-differences analysis suggested that signatures of single-modality-focused regularity tracking in these fronto-parietal regions are inversely related to signatures of regularity-matching in visual cortex. Our findings suggest that i) visual cortex is a junction for integration of temporally-extended auditory and visual inputs and that ii) multisensory regularity-matching depends on balanced processing of both input modalities. We discuss the implications of these findings for neurobiological models of uncertainty and for understanding computations that underlie multisensory interactions in occipital cortex.
理解人类如何对环境不确定性/规律性进行编码并做出反应,是当前计算和神经生物学方法研究人类认知的共同问题。迄今为止,研究人员已经研究了跟踪输入不确定性的神经生物学系统,这些研究考察了对单一感觉流的反应。但是,尚不清楚是否存在结合了不同感觉输入流规律性信息的大脑系统。我们报告了一项 fMRI 研究,旨在确定与跨感觉模式相关的大脑系统。我们构建了时间上扩展的听觉和视觉流,每个流都可以是随机的或高度规则的,并同时呈现它们。我们在双侧视觉皮层中发现了“规律性匹配”的强烈特征;当听觉和视觉流的规则性不匹配时,反应高于匹配时的反应,[(AudHigh/VisLow 和 AudLow/VisHigh) >(AudLow/VisLow 和 AudHigh/VisHigh)]。此外,几个额顶区域独立于另一个流的规则性跟踪听觉或视觉流的规则性。个体差异分析表明,这些额顶区域中单一模式聚焦的规则性跟踪的特征与视觉皮层中规则性匹配的特征呈负相关。我们的发现表明:i)视觉皮层是时间上扩展的听觉和视觉输入的整合交点,ii)多感觉规则匹配取决于两种输入模式的平衡处理。我们讨论了这些发现对不确定性的神经生物学模型以及对理解枕叶皮层中多感觉相互作用的计算的意义。