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深部脑刺激期间神经激活与电场分布之间的关系。

Relationship between neural activation and electric field distribution during deep brain stimulation.

作者信息

Astrom Mattias, Diczfalusy Elin, Martens Hubert, Wardell Karin

机构信息

Department of Biomedical Engineering, Linköping University, Linköping, Sweden.

Sapiens Steering Brain Stimulation B.V., Eindhoven, The Netherlands.

出版信息

IEEE Trans Biomed Eng. 2015 Feb;62(2):664-672. doi: 10.1109/TBME.2014.2363494. Epub 2014 Oct 23.

Abstract

Models and simulations are commonly used to study deep brain stimulation (DBS). Simulated stimulation fields are often defined and visualized by electric field isolevels or volumes of tissue activated (VTA). The aim of the present study was to evaluate the relationship between stimulation field strength as defined by the electric potential V, the electric field E, and the divergence of the electric field ∇(2) V, and neural activation. Axon cable models were developed and coupled to finite-element DBS models in three-dimensional (3-D). Field thresholds ( VT , ET, and ∇(2) VT ) were derived at the location of activation for various stimulation amplitudes (1 to 5 V), pulse widths (30 to 120 μs), and axon diameters (2.0 to 7.5 μm). Results showed that thresholds for VT and ∇(2) VT were highly dependent on the stimulation amplitude while ET were approximately independent of the amplitude for large axons. The activation field strength thresholds presented in this study may be used in future studies to approximate the VTA during model-based investigations of DBS without the need of computational axon models.

摘要

模型和模拟常用于研究深部脑刺激(DBS)。模拟刺激场通常通过电场等势线或组织激活体积(VTA)来定义和可视化。本研究的目的是评估由电势V、电场E和电场散度∇(2)V定义的刺激场强度与神经激活之间的关系。开发了轴突电缆模型,并将其与三维(3-D)有限元DBS模型耦合。针对各种刺激幅度(1至5 V)、脉冲宽度(30至120 μs)和轴突直径(2.0至7.5 μm),在激活位置得出场阈值(VT、ET和∇(2)VT)。结果表明,VT和∇(2)VT的阈值高度依赖于刺激幅度,而对于大轴突,ET大致与幅度无关。本研究中呈现的激活场强阈值可用于未来的研究,以便在基于模型的DBS研究中近似VTA,而无需计算轴突模型。

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