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听觉-触觉相互作用在小鼠体感皮层中的光谱特征。

Spectral hallmark of auditory-tactile interactions in the mouse somatosensory cortex.

机构信息

Department of Biomedical Engineering, The Johns Hopkins University School of Medicine, Baltimore, MD, 21205, USA.

Department of Biomedical Engineering, Washington University in St. Louis, St. Louis, MO, 63130, USA.

出版信息

Commun Biol. 2020 Feb 11;3(1):64. doi: 10.1038/s42003-020-0788-5.

Abstract

To synthesize a coherent representation of the external world, the brain must integrate inputs across different types of stimuli. Yet the mechanistic basis of this computation at the level of neuronal populations remains obscure. Here, we investigate tactile-auditory integration using two-photon Ca imaging in the mouse primary (S1) and secondary (S2) somatosensory cortices. Pairing sound with whisker stimulation modulates tactile responses in both S1 and S2, with the most prominent modulation being robust inhibition in S2. The degree of inhibition depends on tactile stimulation frequency, with lower frequency responses the most severely attenuated. Alongside these neurons, we identify sound-selective neurons in S2 whose responses are inhibited by high tactile frequencies. These results are consistent with a hypothesized local mutually-inhibitory S2 circuit that spectrally selects tactile versus auditory inputs. Our findings enrich mechanistic understanding of multisensory integration and suggest a key role for S2 in combining auditory and tactile information.

摘要

为了综合外部世界的连贯表示,大脑必须整合不同类型刺激的输入。然而,在神经元群体层面上,这种计算的机制基础仍然不清楚。在这里,我们使用双光子 Ca 成像在小鼠初级(S1)和次级(S2)体感皮层中研究触觉-听觉整合。将声音与胡须刺激配对会调节 S1 和 S2 中的触觉反应,最显著的调制是 S2 中的强抑制。抑制的程度取决于触觉刺激的频率,频率越低,反应衰减越严重。除了这些神经元之外,我们还在 S2 中鉴定出对高触觉频率抑制的声音选择性神经元。这些结果与局部相互抑制的 S2 回路的假设一致,该回路对触觉与听觉输入进行频谱选择。我们的发现丰富了多感觉整合的机制理解,并表明 S2 在结合听觉和触觉信息方面起着关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ec3/7012892/5dd890a9a826/42003_2020_788_Fig1_HTML.jpg

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