Seo Jeehye, Kim Dae-Jin, Choi Sang-Han, Kim Hyoungkyu, Min Byoung-Kyong
Institute for Brain and Cognitive Engineering, Korea University, Seoul 02841, Korea.
Department of Psychological and Brain Sciences, Indiana University, Bloomington, IN 47405, United States of America.
Neuroimage. 2022 Dec 1;264:119748. doi: 10.1016/j.neuroimage.2022.119748. Epub 2022 Nov 9.
Although conscious perception is a fundamental cognitive function, its neural correlates remain unclear. It remains debatable whether thalamocortical interactions play a decisive role in conscious perception. To clarify this, we used functional magnetic resonance imaging (fMRI) where flickering red and green visual cues could be perceived either as a non-fused colour or fused colour. Here we show significantly differentiated fMRI neurodynamics only in higher-order thalamocortical regions, compared with first-order thalamocortical regions. Anticorrelated neurodynamic behaviours were observed between the visual stream network and default-mode network. Its dynamic causal modelling consistently provided compelling evidence for the involvement of higher-order thalamocortical iterative integration during conscious perception of fused colour, while inhibitory control was revealed during the non-fusion condition. Taken together with our recent magnetoencephalography study, our fMRI findings corroborate a thalamocortical inhibitory model for consciousness, where both thalamic inhibitory regulation and integrative signal iterations across higher-order thalamocortical regions are essential for conscious perception.
尽管意识感知是一种基本的认知功能,但其神经关联仍不清楚。丘脑皮质相互作用在意识感知中是否起决定性作用仍存在争议。为了阐明这一点,我们使用了功能磁共振成像(fMRI),其中闪烁的红色和绿色视觉线索可以被感知为非融合颜色或融合颜色。在这里,与初级丘脑皮质区域相比,我们仅在高级丘脑皮质区域显示出显著不同的fMRI神经动力学。在视觉流网络和默认模式网络之间观察到反相关的神经动力学行为。其动态因果模型持续提供了令人信服的证据,证明在融合颜色的意识感知过程中高阶丘脑皮质迭代整合的参与,而在非融合条件下则揭示了抑制控制。结合我们最近的脑磁图研究,我们的fMRI研究结果证实了一种意识的丘脑皮质抑制模型,其中丘脑抑制调节和跨高阶丘脑皮质区域的整合信号迭代对于意识感知都是必不可少的。