一种预测对皮质内微刺激行为敏感性的计算模型。

A computational model that predicts behavioral sensitivity to intracortical microstimulation.

作者信息

Kim Sungshin, Callier Thierri, Bensmaia Sliman J

机构信息

Department of Organismal Biology and Anatomy, University of Chicago, Chicago, IL, USA.

出版信息

J Neural Eng. 2017 Feb;14(1):016012. doi: 10.1088/1741-2552/14/1/016012. Epub 2016 Dec 15.

Abstract

OBJECTIVE

Intracortical microstimulation (ICMS) is a powerful tool to investigate the neural mechanisms of perception and can be used to restore sensation for patients who have lost it. While sensitivity to ICMS has previously been characterized, no systematic framework has been developed to summarize the detectability of individual ICMS pulse trains or the discriminability of pairs of pulse trains.

APPROACH

We develop a simple simulation that describes the responses of a population of neurons to a train of electrical pulses delivered through a microelectrode. We then perform an ideal observer analysis on the simulated population responses to predict the behavioral performance of non-human primates in ICMS detection and discrimination tasks.

MAIN RESULTS

Our computational model can predict behavioral performance across a wide range of stimulation conditions with high accuracy (R  = 0.97) and generalizes to novel ICMS pulse trains that were not used to fit its parameters. Furthermore, the model provides a theoretical basis for the finding that amplitude discrimination based on ICMS violates Weber's law.

SIGNIFICANCE

The model can be used to characterize the sensitivity to ICMS across the range of perceptible and safe stimulation regimes. As such, it will be a useful tool for both neuroscience and neuroprosthetics.

摘要

目的

皮层内微刺激(ICMS)是研究感知神经机制的有力工具,可用于为感觉丧失的患者恢复感觉。虽然此前已对ICMS的敏感性进行了表征,但尚未建立系统框架来总结单个ICMS脉冲序列的可检测性或成对脉冲序列的可辨别性。

方法

我们开发了一个简单的模拟,描述了一群神经元对通过微电极传递的一串电脉冲的反应。然后,我们对模拟的群体反应进行理想观察者分析,以预测非人类灵长类动物在ICMS检测和辨别任务中的行为表现。

主要结果

我们的计算模型能够在广泛的刺激条件下高精度地预测行为表现(R = 0.97),并能推广到未用于拟合其参数的新型ICMS脉冲序列。此外,该模型为基于ICMS的幅度辨别违反韦伯定律这一发现提供了理论基础。

意义

该模型可用于表征在可感知和安全刺激范围内对ICMS的敏感性。因此,它将成为神经科学和神经假体领域的有用工具。

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