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研究神经血管耦合中的静态非线性。

Investigating static nonlinearities in neurovascular coupling.

机构信息

Max Planck Institute for Biological Cybernetics, 72076 Tübingen, Germany.

出版信息

Magn Reson Imaging. 2011 Dec;29(10):1358-64. doi: 10.1016/j.mri.2011.04.017. Epub 2011 Jun 8.

Abstract

Many statistical models of coupling between time changes of the band-limited power of neural signals and functional magnetic resonance imaging Blood Oxygenation Level Dependent (BOLD) signal time changes rely on linear convolution. The effect of nonlinear behaviors in single-trial relationships between neural signals and BOLD responses is rarely tested and included in models. Here we investigate whether using a static nonlinearity improves the prediction of single-trial BOLD responses from neural signals. A static nonlinearity is a nonlinear transformation of the convolution of neural responses which is implemented by the same nonlinear function for all time points. We evaluated this approach by applying it to simultaneous recordings of functional magnetic resonance imaging BOLD and band-limited neural signals (Local Field Potentials and Multi Unit Activity) from primary visual cortex of anaesthetized macaques. We found that using a simple polynomial static nonlinearity was sufficient to obtain highly significant improvements of the accuracy of single-trial BOLD prediction over the accuracy obtained with linear convolution. This suggests that static nonlinearities may be a useful tool for a compact and accurate statistical description of neurovascular coupling.

摘要

许多将神经信号带宽限制的功率随时间变化与功能磁共振成像血氧水平依赖(BOLD)信号随时间变化之间的耦合进行建模的统计模型都依赖于线性卷积。在模型中很少测试和包含神经信号和 BOLD 响应之间单次试验关系中的非线性行为的影响。在这里,我们研究了使用静态非线性是否可以提高从神经信号预测单次试验 BOLD 响应的能力。静态非线性是对神经响应的卷积的非线性变换,对于所有时间点都使用相同的非线性函数来实现。我们通过将其应用于麻醉猕猴初级视觉皮层的功能磁共振成像 BOLD 和带宽限制的神经信号(局部场电位和多单位活动)的同步记录来评估此方法。我们发现,使用简单的多项式静态非线性即可显著提高单次试验 BOLD 预测的准确性,超过了线性卷积获得的准确性。这表明静态非线性可能是对神经血管耦合进行紧凑而准确的统计描述的有用工具。

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