来自人类大脑皮层不同部分的局部网络产生并共享相同的种群动态。

Alex Willumsen, Jens Midtgaard, Bo Jespersen, Christoffer K K Hansen, Salina N Lam, Sabine Hansen, Ron Kupers, Martin E Fabricius, Minna Litman, Lars Pinborg, José D Tascón-Vidarte, Anne Sabers, Per E Roland
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引用次数: 2

摘要

神经科学的一个主要目标是揭示支持局部和更大规模网络中神经元协同行动的机制。然而,尽管经过了数十年的实验努力,仍未出现明确的总体操作原则。在这里,我们使用无偏方法提取和识别皮层场电位中包含的局部突触后网络状态的动态。在自发活动、感觉、运动和认知实验任务中,通过深度电极针对广泛选择的皮层区域记录场电位。尽管不同的结构和不同的活动,所有的局部皮质网络产生相同类型的动态仅限于一个区域的状态空间。令人惊讶的是,在这个区域内,状态轨迹在所有大脑活动中不断地扩张和收缩,并在一次试验中产生一次扩张,随后是一次收缩。这种行为偏离了已知的吸引子和吸引子网络。在感知、运动和认知任务中,大脑区域的特定子集的状态空间收缩相互关联。我们的研究结果表明,大脑皮层不需要改变其在不同活动之间转换的动态,从而使任务转换成为大脑皮层集体活动的内在动态。我们的结果为局部和更大尺度的皮质动力学提供了数学描述的一般解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Local networks from different parts of the human cerebral cortex generate and share the same population dynamic.

Local networks from different parts of the human cerebral cortex generate and share the same population dynamic.

Local networks from different parts of the human cerebral cortex generate and share the same population dynamic.

Local networks from different parts of the human cerebral cortex generate and share the same population dynamic.

A major goal of neuroscience is to reveal mechanisms supporting collaborative actions of neurons in local and larger-scale networks. However, no clear overall principle of operation has emerged despite decades-long experimental efforts. Here, we used an unbiased method to extract and identify the dynamics of local postsynaptic network states contained in the cortical field potential. Field potentials were recorded by depth electrodes targeting a wide selection of cortical regions during spontaneous activities, and sensory, motor, and cognitive experimental tasks. Despite different architectures and different activities, all local cortical networks generated the same type of dynamic confined to one region only of state space. Surprisingly, within this region, state trajectories expanded and contracted continuously during all brain activities and generated a single expansion followed by a contraction in a single trial. This behavior deviates from known attractors and attractor networks. The state-space contractions of particular subsets of brain regions cross-correlated during perceptive, motor, and cognitive tasks. Our results imply that the cortex does not need to change its dynamic to shift between different activities, making task-switching inherent in the dynamic of collective cortical operations. Our results provide a mathematically described general explanation of local and larger scale cortical dynamic.

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