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Stimulus frequency dependence of blood oxygenation level-dependent functional magnetic resonance imaging signals in the somatosensory cortex of rats

机译:体感皮层中血液氧合水平依赖性功能磁共振成像信号的刺激频率依赖性

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摘要

Understanding the mechanism Of Coupling between neuronal events and hemodynamic responses is important in non-invasive functional imaging of the brain. The stimulus frequency dependence of hemodynamic responses has been studied using a rat somatosensory cortex model most results for short stimulus durations reveal peak frequencies at which the hemodynamic response is maximized. However, such peak frequencies have not been observed in studies using blood oxygenation level-dependent (BOLD) functional magnetic resonance imaging (fMRI) signals with long stimulus durations. To clarify whether the stimulus frequency dependence of BOLD signals depends on the stimulus duration, we measured BOLD signals at 7 T with short- and long-stimulus durations for stimulating rat forepaw at 1-10 Hz using spin-echo echo-planar imaging to enhance changes in activation focus. For both these durations, BOLD signals were significantly higher at stimulus frequencies of 3 or 5 Hz in agreement with the results of previous studies using optical techniques. Our results show that stimulus duration has little influence on the stimulus frequency dependence of BOLD signals in the rat somatosensory model. The discrepant results of most previous fMRI studies using gradient-echo sequence may be ascribed to the difference of imaging to enhance activation focus or draining vein. (C) 2008 Elsevier Ireland Ltd and the Japan Neuroscience Society. All rights reserved.
机译:了解神经元事件与血液动力学反应之间的耦合机制在大脑的非侵入性功能成像中很重要。已经使用大鼠体感皮层模型研究了血流动力学响应的刺激频率依赖性,大多数短时间刺激持续时间的结果显示了血流动力学响应最大化的峰值频率。然而,在使用具有长刺激持续时间的血液氧合水平依赖性(BOLD)功能性磁共振成像(fMRI)信号的研究中未观察到此类峰值频率。为了弄清BOLD信号的刺激频率依赖性是否取决于刺激持续时间,我们使用自旋回波回波平面成像增强了在7 T下短和长刺激持续时间下的BOLD信号,以刺激1-10 Hz的大鼠前爪。激活重点的变化。在这两个时间段内,在3或5 Hz的刺激频率下,BOLD信号均显着较高,这与先前使用光学技术的研究结果一致。我们的结果表明,刺激持续时间对大鼠体感模型中BOLD信号的刺激频率依赖性几乎没有影响。以前使用梯度回波序列进行的大多数fMRI研究的差异结果可能归因于成像方面的差异,以增强激活焦点或引流静脉。 (C)2008 Elsevier Ireland Ltd和日本神经科学学会。版权所有。

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