The Florey Institute of Neuroscience and Mental Health, University of Melbourne, Melbourne, Victoria, Australia.
Department of Neurobiology, University of Chicago, Chicago, Illinois, USA.
Nat Commun. 2024 Jul 26;15(1):6300. doi: 10.1038/s41467-024-50163-w.
Perception is largely supported by cortical processing that involves communication among multiple areas, typically starting with primary sensory cortex and then involving higher order cortices. This communication is served in part by transthalamic (cortico-thalamo-cortical) pathways, which ubiquitously parallel direct corticocortical pathways, but their role in sensory processing has largely remained unexplored. Here, we suggest that transthalamic processing propagates task-relevant information required for correct sensory decisions. Using optogenetics, we specifically inhibited the pathway at its synapse in higher order somatosensory thalamus of mice performing a texture-based discrimination task. We concurrently monitored the cellular effects of inhibition in primary or secondary cortex using two-photon calcium imaging. Inhibition severely impaired performance despite intact direct corticocortical projections, thus challenging the purely corticocentric map of perception. Interestingly, the inhibition did not reduce overall cell responsiveness to texture stimulation in somatosensory cortex, but rather disrupted the texture selectivity of cells, a discriminability that develops over task learning. This discriminability was more disrupted in the secondary than primary somatosensory cortex, emphasizing the feedforward influence of the transthalamic route. Transthalamic pathways may therefore act to deliver performance-relevant information to higher order cortex and are underappreciated hierarchical pathways in perceptual decision-making.
感知在很大程度上依赖于皮质处理,涉及多个区域之间的通讯,通常从初级感觉皮质开始,然后涉及更高阶的皮质。这种通讯部分由丘脑间(皮质-丘脑-皮质)通路提供服务,该通路普遍平行于直接皮质内通路,但它们在感觉处理中的作用在很大程度上仍未得到探索。在这里,我们提出丘脑间处理传播了正确感觉决策所需的任务相关信息。使用光遗传学,我们在执行基于纹理的辨别任务的小鼠的高级体感丘脑内特异性抑制该通路的突触。我们同时使用双光子钙成像监测初级或次级皮质中抑制的细胞效应。尽管直接皮质内投射完好无损,但抑制严重损害了性能,从而挑战了纯粹的皮质感知图。有趣的是,抑制并没有降低体感皮质中对纹理刺激的整体细胞反应性,而是破坏了细胞的纹理选择性,这种可辨别性是在任务学习中发展起来的。这种可辨别性在次级体感皮质中比在初级体感皮质中受到更大的破坏,强调了丘脑间通路的前馈影响。因此,丘脑间通路可能起到将与性能相关的信息传递到高级皮质的作用,并且是在感知决策中被低估的分层通路。