内在神经时间尺度的动态地形:意识的关键作用。

IF 6.3 2区 医学 Q1 BIOLOGY
Andrea Buccellato , Di Zang , Yasir Çatal , Bianca Ventura , Massimiliano Facca , Zengxin Qi , Patrizia Bisiacchi , Alessandra Del Felice , Xuehai Wu , Georg Northoff
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引用次数: 0

摘要

大脑显示其自发活动的内在持续时间-内在神经时间标度(INTs)。INTs是分层组织的,在单峰域中持续时间较短,在多峰域中间隔时间较长。尽管取得了重大进展,但目前尚不清楚单模态-多模态分层组织本身是否会发生周期性变化,这与INT地形的动态保留表的存在是一致的。为此,我们通过在两个不同的数据集中聚类动态ACW-0矩阵来表征地形INT状态的动态特征:一个是由健康个体和意识障碍患者组成的源重构HCP静息状态MEG数据集,另一个是由hd-EEG静息状态数据集。我们发现健康的被试在不同的脑内神经状态之间表现出动态的转换,表现出不同程度的单跨模式皮层层次。这些动态转换表现出非随机行为,具有中等程度的不可预测性和非平凡记忆效应的证据。与健康受试者不同,这些特性在DoC患者中被破坏,他们表现出更不可预测的INT状态转换和更少的记忆效应。总之,我们的研究结果表明,在清醒状态下,不同INT地形状态之间转换的时间丰富性发挥了重要作用,正如我们的结果所证明的那样,这是维持足够意识水平的关键。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dynamic topographies of intrinsic neural timescales: a key role for consciousness

Dynamic topographies of intrinsic neural timescales: a key role for consciousness
The brain displays intrinsic durations in its own spontaneous activity - Intrinsic Neural Timescales (INTs). INTs are hierarchically organized, with shorter durations within unimodal regions and longer intervals in multimodal domains. Despite significant progress, it's currently not known whether the unimodal-multimodal hierarchical organization undergoes recurrent changes itself - consistent with the existence of a dynamic repertoire of INT topographies. To this aim, we characterized the dynamics of topographic INT states by clustering the dynamic ACW-0 matrices in two different datasets: the source-reconstructed HCP resting-state MEG dataset, and a hd-EEG resting-state dataset, composed of healthy individuals and people with disorders of consciousness (DoCs). We found that healthy subjects display dynamic transitions between different INT states, which exhibit changing degrees of uni-transmodal cortical hierarchies. These dynamic transitions show non-random behavior, with moderate degrees of unpredictability and evidence of nontrivial memory effects. Unlike in healthy subjects, these properties are disrupted in DoC patients, who exhibit less predictable INT state transitions and less memory effects. Together, our results show a prominent role for the temporal richness of the transitions between different INT topographic states in the awake state which, as evidenced by our results, is key for maintaining an adequate level of consciousness.
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来源期刊
Computers in biology and medicine
Computers in biology and medicine 工程技术-工程:生物医学
CiteScore
11.70
自引率
10.40%
发文量
1086
审稿时长
74 days
期刊介绍: Computers in Biology and Medicine is an international forum for sharing groundbreaking advancements in the use of computers in bioscience and medicine. This journal serves as a medium for communicating essential research, instruction, ideas, and information regarding the rapidly evolving field of computer applications in these domains. By encouraging the exchange of knowledge, we aim to facilitate progress and innovation in the utilization of computers in biology and medicine.
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