Functional magnetic resonance imaging signal has sub-second temporal accuracy

Yi-Tien Li, Hsin-Ju Lee, Fa-Hsuan Lin
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Abstract

Neuronal activation sequence information is essential for understanding brain functions. Extracting such timing information from blood-oxygenation-level-dependent functional magnetic resonance imaging (fMRI) signals is confounded by local cerebral vascular reactivity (CVR), which varies across brain locations. Thus, detecting neuronal synchrony as well as inferring inter-regional causal modulation using fMRI signals can be biased. Here we used fast fMRI measurements sampled at 10 Hz to measure the fMRI latency difference between visual and sensorimotor areas when participants engaged in a visuomotor task. The regional fMRI timing was calibrated by subtracting the CVR latency measured by a breath-holding task. After CVR calibration, the fMRI signal at the lateral geniculate nucleus (LGN) preceded that at the visual cortex by 496 ms, followed by the fMRI signal at the sensorimotor cortex with a latency of 464 ms. Sequential LGN, visual, and sensorimotor cortex activations were found in each participant after the CVR calibration. These inter-regional fMRI timing differences across and within participants were more closely related to the reaction time after the CVR calibration. Our results suggested the feasibility of mapping brain activity using fMRI with accuracy in hundreds of milliseconds.
功能磁共振成像信号具有亚秒级时间精度
神经元激活序列信息对于了解大脑功能至关重要。从依赖于血氧水平的功能性磁共振成像(fMRI)信号中提取这种时间信息会受到局部脑血管反应性(CVR)的干扰,因为CVR在大脑不同位置会有所不同。因此,利用 fMRI 信号检测神经元同步性以及推断区域间因果调制可能会出现偏差。在这里,我们使用以 10 Hz 频率采样的快速 fMRI 测量方法来测量参与者在进行视觉运动任务时视觉区域和感觉运动区域之间的 fMRI 延迟差异。通过减去憋气任务测得的 CVR 延迟,对区域 fMRI 时间进行校准。校准 CVR 后,外侧膝状核(LGN)的 fMRI 信号比视觉皮层的信号早 496 毫秒,其次是感觉运动皮层的 fMRI 信号,延迟时间为 464 毫秒。在 CVR 校准后,每位受试者都发现了 LGN、视觉和感觉运动皮层的连续激活。参与者之间和参与者内部的这些区域间 fMRI 时间差异与 CVR 校准后的反应时间关系更为密切。我们的研究结果表明,使用 fMRI 以数百毫秒的精度绘制大脑活动图是可行的。
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