Kato Daniel D, Bruno Randy M
Department of Neuroscience, Columbia University, New York, NY 10027, USA.
Department of Neuroscience, Columbia University, New York, NY 10027, USA; Department of Physiology, Anatomy, & Genetics, University of Oxford, Oxford OX1 3PT, UK.
Neuron. 2025 Jan 22;113(2):291-306.e7. doi: 10.1016/j.neuron.2024.10.020. Epub 2024 Nov 18.
Merging information across sensory modalities is key to forming robust percepts, yet how the brain achieves this feat remains unclear. Recent studies report cross-modal influences in the primary sensory cortex, suggesting possible multisensory integration in the early stages of cortical processing. We test several hypotheses about the function of auditory influences on mouse primary somatosensory cortex (S1) using in vivo two-photon calcium imaging. We found sound-evoked spiking activity in an extremely small fraction of cells, and this sparse activity did not encode auditory stimulus identity. Moreover, S1 did not encode information about specific audio-tactile feature conjunctions. Auditory and audio-tactile stimulus encoding remained unchanged after both passive experience and reinforcement. These results suggest that while primary sensory cortex is plastic within its own modality, the influence of other modalities is remarkably stable and stimulus nonspecific.
整合跨感觉通道的信息是形成稳健感知的关键,但大脑如何实现这一壮举仍不清楚。最近的研究报告了初级感觉皮层中的跨通道影响,这表明在皮层处理的早期阶段可能存在多感觉整合。我们使用体内双光子钙成像测试了几个关于听觉对小鼠初级躯体感觉皮层(S1)影响的功能的假设。我们在极少部分细胞中发现了声音诱发的尖峰活动,并且这种稀疏活动并未编码听觉刺激特征。此外,S1并未编码有关特定听觉 - 触觉特征结合的信息。在被动体验和强化之后,听觉和听觉 - 触觉刺激编码均保持不变。这些结果表明,虽然初级感觉皮层在其自身感觉通道内具有可塑性,但其他感觉通道的影响却非常稳定且与刺激无关。