解码大脑表面以追踪更深层次的活动。

Mark L Tenzer, Jonathan M Lisinski, Stephen M LaConte
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摘要

利用电磁和光信号,神经活动可以很容易地、无创地从头皮上记录下来,但不幸的是,所有基于头皮的技术都有深度依赖的灵敏度。不过,我们假设,大脑皮层与大脑其他部分的连接可以用来构建大脑深层活动的代理信号。例如,功能磁共振成像(fMRI)衍生的模型将表面连接到更深的区域,随后可以扩展其他模式的深度能力。因此,作为实现这一目标的第一步,本研究考察了静息状态fMRI的表面受限支持向量回归是否确实可以在独立数据中跟踪更深的区域和分布网络。我们的研究结果表明,深度受限的fMRI信号实际上可以被校准,以报告更深层次大脑结构的持续活动。尽管未来还有很多工作要做,但目前的研究表明,通过利用头皮表面和大脑其他部分之间的多元信息交换,头皮记录有可能最终克服其内在的物理限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Decoding the Brain's Surface to Track Deeper Activity.

Neural activity can be readily and non-invasively recorded from the scalp using electromagnetic and optical signals, but unfortunately all scalp-based techniques have depth-dependent sensitivities. We hypothesize, though, that the cortex's connectivity with the rest of the brain could serve to construct proxy signals of deeper brain activity. For example, functional magnetic resonance imaging (fMRI)-derived models that link surface connectivity to deeper regions could subsequently extend the depth capabilities of other modalities. Thus, as a first step toward this goal, this study examines whether or not surface-limited support vector regression of resting-state fMRI can indeed track deeper regions and distributed networks in independent data. Our results demonstrate that depth-limited fMRI signals can in fact be calibrated to report ongoing activity of deeper brain structures. Although much future work remains to be done, the present study suggests that scalp recordings have the potential to ultimately overcome their intrinsic physical limitations by utilizing the multivariate information exchanged between the surface and the rest of the brain.

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