Gilbert Andrew, Loizos Kyle, RamRakhyani Anil Kumar, Hendrickson Phillip, Lazzi Gianluca, Berger Theodore W
Annu Int Conf IEEE Eng Med Biol Soc. 2015;2015:2295-8. doi: 10.1109/EMBC.2015.7318851.
Hippocampal prosthetic devices have been developed to bridge the gap between functioning portions of the hippocampus, in order to restore lost memory functionality in those suffering from brain injury or diseases. One approach taken in recent neuroprosthetic design is to use a multi-input, multi-output device that reads data from the CA3 in the hippocampus and electrically stimulates the CA1 in an attempt to mimic the appropriate firing pattern that would occur naturally between the two areas. However, further study needs to be conducted in order to optimize electrode placement, pulse magnitude, and shape for creating the appropriate firing pattern. This paper describes the creation and implementation of an anatomically correct 3D model of the hippocampus to simulate the electric field patterns and axonal activation from electrical stimulation due to an implanted electrode array. The activating function was applied to the voltage results to determine the firing patterns in possible axon locations within the CA1.
海马体修复装置已被研发出来,用于弥合海马体各功能部分之间的间隙,以恢复脑损伤或疾病患者丧失的记忆功能。近期神经假体设计采用的一种方法是使用多输入多输出装置,该装置从海马体的CA3读取数据,并对CA1进行电刺激,试图模拟这两个区域之间自然发生的适当放电模式。然而,为了优化电极放置、脉冲幅度和形状以创建适当的放电模式,还需要进行进一步的研究。本文描述了海马体解剖学正确的三维模型的创建和实施,以模拟植入电极阵列产生的电刺激所形成的电场模式和轴突激活。将激活函数应用于电压结果,以确定CA1内可能的轴突位置的放电模式。