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采用开环逆控制策略调节体外海马假体模型的CA1非线性动力学。

Using an open-loop inverse control strategy to regulate CA1 nonlinear dynamics for an in vitro hippocampal prosthesis model.

作者信息

Hsiao Min-Chi, Song Dong, Berger Theodore W

机构信息

Department of Biomedical Engineering at University of Southern California (USC), Los Angeles, CA 90089 USA.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2009;2009:1529-32. doi: 10.1109/IEMBS.2009.5333072.

Abstract

A modeling-control paradigm to regulate output of the hippocampus (CA1) for a hippocampal neuroprosthesis was developed and validated using an in vitro slice preparation. Our previous study has shown that the VLSI implementation of a CA3 nonlinear dynamic model can functionally replace the CA3 subregion of the hippocampal slice. The propagation of temporal patterns of activity from DG-->VLSI-->CA1 reproduces the activity observed experimentally in the biological DG-->CA3-->CA1 circuit. In this project, we incorporate an open-loop controller to optimize the output (CA1) response. Specifically, we seek to optimize the stimulation signal to CA1 using a predictive dentate gyrus (DG)-CA1 nonlinear model (i.e., DG-CA1 trajectory model) and a CA1 input-output model (i.e., CA1 plant model), such that the ultimate CA1 response (i.e., desired output) can be first predicted by the DG-CA1 trajectory model and then transformed to the desired stimulation intensity through the CA1 inverse plant model. Laguerre-Volterra kernel model for random - interval, graded - input, contemporaneous - graded -output system is formulated and applied to build the DG-CA1 trajectory model and the CA1 plant model. The inverse model to transform desired output to input is also derived and validated. We validated the paradigm in hippocampal slices, and results showed the CA1 response evoked by the controlled stimulation signal reinstated the CA1 response evoked by the trisynaptic pathway.

摘要

我们开发了一种用于调节海马神经假体中海马体(CA1)输出的建模 - 控制范式,并使用体外切片制备进行了验证。我们之前的研究表明,CA3非线性动态模型的超大规模集成电路(VLSI)实现可以在功能上替代海马切片的CA3亚区。从齿状回(DG)→VLSI→CA1的时间活动模式传播再现了在生物DG→CA3→CA1回路中实验观察到的活动。在这个项目中,我们纳入了一个开环控制器来优化输出(CA1)响应。具体而言,我们试图使用预测性齿状回(DG) - CA1非线性模型(即DG - CA1轨迹模型)和CA1输入 - 输出模型(即CA1对象模型)来优化对CA1的刺激信号,以便最终的CA1响应(即期望输出)可以首先由DG - CA1轨迹模型预测,然后通过CA1逆对象模型转换为期望的刺激强度。针对随机间隔、分级输入、同期分级输出系统的拉盖尔 - 沃尔泰拉核模型被制定并应用于构建DG - CA1轨迹模型和CA1对象模型。将期望输出转换为输入的逆模型也被推导和验证。我们在海马切片中验证了该范式,结果表明由受控刺激信号诱发的CA1响应恢复了由三突触通路诱发的CA1响应。

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