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首页> 外文期刊>Frontiers in Behavioral Neuroscience >Combining Real-Time fMRI Neurofeedback Training of the DLPFC with N-Back Practice Results in Neuroplastic Effects Confined to the Neurofeedback Target Region
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Combining Real-Time fMRI Neurofeedback Training of the DLPFC with N-Back Practice Results in Neuroplastic Effects Confined to the Neurofeedback Target Region

机译:将DLPFC的实时功能磁共振成像神经反馈训练与 N -back练习结果相结合,将神经塑性作用限制在神经反馈目标区域内

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In traditional fMRI, individuals respond to exogenous stimuli and are na?ve to the effects of the stimuli on their neural activity patterns. Changes arising in the fMRI signal are analyzed post-hoc to elucidate the spatial and temporal activation of brain regions associated with the tasks performed. The advent of real-time fMRI has enabled a new method to systematically alter brain activity across space and time using neurofeedback training (NFT), providing a new tool to study internally-driven processes such as neuroplasticity. In this work, we combined n -back practice with fMRI-NFT of the left dorsolateral prefrontal cortex (DLPFC) to better understand the relationship between open- and closed-loop neuromodulation. FMRI data were acquired during both traditional n -back and NFT across five imaging sessions. Region-of-interest (ROI) and voxel-wise 2 × 2 within subjects ANOVAs were carried out to determine the effects of, and interaction between, training session and neuromodulation type. A main effect of training session was identified for only a single, highly focused cluster that shared spatial properties with the fMRI-NFT target region (left DLPFC). This finding indicates that combined open- and closed-loop neuroplastic enhancement techniques result in focal changes that are confined to the target area of NFT, and do not affect up- or down-stream network components that are normally engaged during working memory. Additionally, we identified a main effect of neuromodulation type for 15 clusters with significantly different activation between open- and closed-loop neuromodulation during training, 12 of which demonstrated higher activity during the open-loop neuromodulation. Our results, taken together with previous reports, indicate that fMRI-NFT combined with n -back practice leads to a highly focal volume exhibiting neuroplasticity without additional network effects.
机译:在传统的功能磁共振成像中,个体对外源性刺激做出反应,并且对这些刺激对其神经活动模式的影响不了解。事后分析功能磁共振成像信号中发生的变化,以阐明与执行的任务相关的大脑区域的时空激活。实时功能磁共振成像的出现使一种新方法能够使用神经反馈训练(NFT)在空间和时间上系统地改变大脑活动,为研究内部驱动过程(例如神经可塑性)提供了新工具。在这项工作中,我们将n背练习与左背外侧前额叶皮层(DLPFC)的fMRI-NFT相结合,以更好地理解开环和闭环神经调节之间的关系。 FMRI数据是在五个成像阶段的传统n反向和NFT期间获取的。进行受试者方差分析中的感兴趣区域(ROI)和体素方式2×2,以确定训练过程和神经调节类型的影响以及它们之间的相互作用。仅针对与fMRI-NFT目标区域(左DLPFC)共享空间特性的单个高度集中的集群,确定了培训课程的主要效果。这一发现表明,开环和闭环神经塑性增强技术的结合导致局灶性变化局限于NFT的目标区域,并且不会影响通常在工作记忆中参与的上游或下游网络组件。此外,我们确定了神经调节类型对15个簇的主要影响,这些簇在训练过程中的开环和闭环神经调节之间的激活明显不同,其中有12个在开环神经调节过程中表现出更高的活性。我们的研究结果与以前的报道一起表明,fMRI-NFT与n-back练习相结合可导致表现出高度可塑性的高聚焦体积,而无其他网络效应。

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