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Task Performance Changes the Amplitude and Timing of the BOLD Signal

机译:任务性能会改变BOLD信号的幅度和时间

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摘要

Translational studies comparing imaging data of animals and humans have gained increasing scientific interests. With this upcoming translational approach, however, identifying harmonized statistical analysis as well as shared data acquisition protocols and/or combined statistical approaches is necessary. Following this idea, we applied Bayesian Adaptive Regression Splines (BARS), which have until now mainly been used to model neural responses of electrophysiological recordings from rodent data, on human hemodynamic responses as measured via fMRI. Forty-seven healthy subjects were investigated while performing the Attention Network Task in the MRI scanner. Fluctuations in the amplitude and timing of the BOLD response were determined and validated externally with brain activation using GLM and also ecologically with the influence of task performance (i.e. good vs. bad performers). In terms of brain activation, bad performers presented reduced activation bilaterally in the parietal lobules, right prefrontal cortex (PFC) and striatum. This was accompanied by an enhanced left PFC recruitment. With regard to the amplitude of the BOLD-signal, bad performers showed enhanced values in the left PFC. In addition, in the regions of reduced activation such as the parietal and striatal regions, the temporal dynamics were higher in bad performers. Based on the relation between BOLD response and neural firing with the amplitude of the BOLD signal reflecting gamma power and timing dynamics beta power, we argue that in bad performers, an enhanced left PFC recruitment hints towards an enhanced functioning of gamma-band activity in a compensatory manner. This was accompanied by reduced parieto-striatal activity, associated with increased and potentially conflicting beta-band activity.
机译:比较动物和人类成像数据的转化研究已获​​得越来越多的科学兴趣。然而,对于即将到来的翻译方法,识别统一的统计分析以及共享的数据获取协议和/或组合的统计方法是必要的。遵循这个想法,我们应用了贝叶斯自适应回归样条线(BARS),该样条到目前为止主要用于通过啮齿类动物磁共振成像对来自啮齿类动物数据的电生理记录的神经反应进行建模,以模拟人的血液动力学反应。在MRI扫描仪中执行“注意网络任务”时,对47位健康受试者进行了调查。确定了BOLD响应的幅度和时间的波动,并使用GLM在外部通过大脑激活进行了外部验证,并且在任务执行的影响(即表现良好与表现不佳)之间进行了生态学验证。在大脑激活方面,表现不佳者表现出双侧顶叶,右前额叶皮层(PFC)和纹状体的激活减少。随之而来的是增加了左PFC的招聘。关于BOLD信号的幅度,性能不佳的人在左侧PFC中显示出增强的值。此外,在激活减少的区域,如顶叶和纹状体区域,表现较差的人的时间动态较高。基于BOLD响应和神经放电之间的关系,BOLD信号的幅度反映了伽马功率和时序动力学β功率,我们认为,在性能较差的表演者中,增强的左PFC募集暗示了在运动中伽马带活动的功能增强。补偿方式。这伴随着顶壁纹状体活动的减少,与增加的和可能相互冲突的β-带活动有关。

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