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相对单感官强度和时间可预测它们的多感官产物。

Relative unisensory strength and timing predict their multisensory product.

作者信息

Miller Ryan L, Pluta Scott R, Stein Barry E, Rowland Benjamin A

机构信息

Department of Neurobiology and Anatomy, Wake Forest School of Medicine, Medical Center Boulevard, Winston-Salem, North Carolina 27157

Department of Neurobiology and Anatomy, Wake Forest School of Medicine, Medical Center Boulevard, Winston-Salem, North Carolina 27157.

出版信息

J Neurosci. 2015 Apr 1;35(13):5213-20. doi: 10.1523/JNEUROSCI.4771-14.2015.

Abstract

Understanding the principles by which the brain combines information from different senses provides us with insight into the computational strategies used to maximize their utility. Prior studies of the superior colliculus (SC) neuron as a model suggest that the relative timing with which sensory cues appear is an important factor in this context. Cross-modal cues that are near-simultaneous are likely to be derived from the same event, and the neural inputs they generate are integrated more strongly than those from cues that are temporally displaced from one another. However, the present results from studies of cat SC neurons show that this "temporal principle" of multisensory integration is more nuanced than previously thought and reveal that the integration of temporally displaced sensory responses is also highly dependent on the relative efficacies with which they drive their common target neuron. Larger multisensory responses were achieved when stronger responses were advanced in time relative to weaker responses. This new temporal principle of integration suggests an inhibitory mechanism that better accounts for the sensitivity of the multisensory product to differences in the timing of cross-modal cues than do earlier mechanistic hypotheses based on response onset alignment or response overlap.

摘要

理解大脑整合来自不同感官信息的原理,能让我们洞察用于最大化其效用的计算策略。先前以上丘(SC)神经元为模型的研究表明,在此背景下,感官线索出现的相对时间是一个重要因素。近乎同时出现的跨模态线索可能源自同一事件,并且它们产生的神经输入比那些在时间上相互错开的线索产生的神经输入整合得更强。然而,目前对猫SC神经元的研究结果表明,这种多感官整合的“时间原则”比之前认为的更为微妙,并揭示了时间上错开的感官反应的整合也高度依赖于它们驱动共同目标神经元的相对效力。当较强反应相对于较弱反应在时间上提前时,会产生更大的多感官反应。这种新的整合时间原则表明了一种抑制机制,与早期基于反应起始对齐或反应重叠的机制假说相比,它能更好地解释多感官产物对跨模态线索时间差异的敏感性。

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