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整合癫痫动态。

Assimilating seizure dynamics.

机构信息

Center for Neural Engineering, Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, Pennsylvania, USA.

出版信息

PLoS Comput Biol. 2010 May 6;6(5):e1000776. doi: 10.1371/journal.pcbi.1000776.

Abstract

Observability of a dynamical system requires an understanding of its state-the collective values of its variables. However, existing techniques are too limited to measure all but a small fraction of the physical variables and parameters of neuronal networks. We constructed models of the biophysical properties of neuronal membrane, synaptic, and microenvironment dynamics, and incorporated them into a model-based predictor-controller framework from modern control theory. We demonstrate that it is now possible to meaningfully estimate the dynamics of small neuronal networks using as few as a single measured variable. Specifically, we assimilate noisy membrane potential measurements from individual hippocampal neurons to reconstruct the dynamics of networks of these cells, their extracellular microenvironment, and the activities of different neuronal types during seizures. We use reconstruction to account for unmeasured parts of the neuronal system, relating micro-domain metabolic processes to cellular excitability, and validate the reconstruction of cellular dynamical interactions against actual measurements. Data assimilation, the fusing of measurement with computational models, has significant potential to improve the way we observe and understand brain dynamics.

摘要

对动力学系统的可观测性需要了解其状态——即其变量的集体值。然而,现有的技术太有限,无法测量神经元网络的所有物理变量和参数,只能测量一小部分。我们构建了神经元膜、突触和微环境动力学的生物物理特性模型,并将它们纳入现代控制理论的基于模型的预测控制器框架中。我们证明,现在使用单个测量变量就可以有意义地估计小神经元网络的动态。具体来说,我们将单个海马神经元的噪声膜电位测量值同化,以重建这些细胞的网络、它们的细胞外微环境以及癫痫发作期间不同神经元类型的活动的动力学。我们使用重建来解释神经元系统的未测量部分,将微域代谢过程与细胞兴奋性联系起来,并根据实际测量值验证细胞动态相互作用的重建。数据同化是将测量值与计算模型融合,它具有显著提高我们观察和理解大脑动态的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8957/2865517/2058c090dba3/pcbi.1000776.g001.jpg

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