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用于使用灵长类动物脑电皮质图数据进行实时意识监测和虚拟干预的数字孪生脑模拟器。

Digital twin brain simulator for real-time consciousness monitoring and virtual intervention using primate electrocorticogram data.

作者信息

Takahashi Yuta, Idei Hayato, Komatsu Misako, Tani Jun, Tomita Hiroaki, Yamashita Yuichi

机构信息

Department of Information Medicine, National Center of Neurology and Psychiatry, Tokyo, Japan.

Department of Psychiatry, Graduate School of Medicine, Tohoku University, Sendai, Japan.

出版信息

NPJ Digit Med. 2025 Feb 10;8(1):80. doi: 10.1038/s41746-025-01444-1.

Abstract

At the forefront of bridging computational brain modeling with personalized medicine, this study introduces a novel, real-time, electrocorticogram (ECoG) simulator, based on the digital twin brain concept. Utilizing advanced data assimilation techniques, specifically a Variational Bayesian Recurrent Neural Network model with hierarchical latent units, the simulator dynamically predicts ECoG signals reflecting real-time brain latent states. By assimilating broad ECoG signals from macaque monkeys across awake and anesthetized conditions, the model successfully updated its latent states in real-time, enhancing precision of ECoG signal simulations. Behind successful data assimilation, self-organization of latent states in the model was observed, reflecting brain states and individuality. This self-organization facilitated simulation of virtual drug administration and uncovered functional networks underlying changes in brain function during anesthesia. These results show that the proposed model can simulate brain signals in real-time with high accuracy and is also useful for revealing underlying information processing dynamics.

摘要

在将计算脑模型与个性化医疗相结合的前沿领域,本研究引入了一种基于数字孪生脑概念的新型实时脑电信号(ECoG)模拟器。该模拟器利用先进的数据同化技术,特别是具有分层潜在单元的变分贝叶斯递归神经网络模型,动态预测反映实时脑潜在状态的ECoG信号。通过同化来自猕猴在清醒和麻醉状态下的广泛ECoG信号,该模型成功地实时更新其潜在状态,提高了ECoG信号模拟的精度。在成功的数据同化背后,观察到模型中潜在状态的自组织,反映了脑状态和个体特征。这种自组织促进了虚拟药物给药的模拟,并揭示了麻醉期间脑功能变化背后的功能网络。这些结果表明,所提出的模型能够高精度地实时模拟脑信号,并且对于揭示潜在的信息处理动力学也很有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/425e/11811282/7b1132fc8401/41746_2025_1444_Fig1_HTML.jpg

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