Department of Psychology, University of Michigan, Ann Arbor, Michigan 48109
Department of Psychological and Brain Sciences, Boston University, Boston, Massachusetts 02215.
J Neurosci. 2021 Feb 3;41(5):1033-1045. doi: 10.1523/JNEUROSCI.1253-20.2020. Epub 2020 Nov 19.
fMRI research has revealed that cerebellar lobule VIIb/VIIIa exhibits load-dependent activity that increases with the number of items held in visual working memory (VWM). However, it remains unclear whether these cerebellar responses reflect processes specific to VWM or more general visual attentional mechanisms. To investigate this question, we examined whether cerebellar activity during the delay period of a VWM task is selective for stimuli held in working memory. A sample of male and female human subjects performed a VWM continuous report task in which they were retroactively cued to remember the direction of motion of moving dot stimuli. Cerebellar lobule VIIb/VIIIa delay-period activation accurately decoded the direction of the remembered stimulus, as did frontal and parietal regions of the dorsal attention network. Arguing against a motor explanation, no other cerebellar area exhibited stimulus specificity, including the oculomotor vermis, a key area associated with eye movement control. Finer-scale analysis revealed that the medial portion of lobule VIIb and to a lesser degree the lateral most portion of lobules VIIb and VIIIa, which exhibit robust resting state connectivity with frontal and parietal regions of the dorsal attention network, encoded the identity of the remembered stimulus, while intermediate portions of lobule VIIb/VIIIa did not. These findings of stimulus-specific coding of VWM within lobule VIIb/VIIIa indicate for the first time that the distributed network responsible for the encoding and maintenance of mnemonic representations extends to the cerebellum. There is considerable debate concerning where in the brain the contents of visual working memory (VWM) are stored. To date, this literature has primarily focused on the role of regions located within cerebral cortex. There is growing evidence for cerebellar involvement in higher-order cognitive functions including working memory. While the cerebellum has been previously shown to be recruited by VWM paradigms, it is unclear whether any portion of cerebellum actively encodes and maintains mnemonic representations. The present study demonstrates that cerebellar lobule VIIb/VIIIa activity patterns are selective for remembered stimuli and that this selectivity persists in the absence of perceptual input. These findings provide novel evidence for the participation of cerebellar structures in the persistent storage of visual information.
fMRI 研究表明,小脑叶 VIIb/VIIIa 表现出与视觉工作记忆 (VWM) 中保持的项目数量成正比的负荷依赖性活动。然而,目前尚不清楚这些小脑反应是反映 VWM 特定过程还是更一般的视觉注意力机制。为了研究这个问题,我们研究了小脑在 VWM 任务的延迟期的活动是否对工作记忆中保持的刺激具有选择性。一组男性和女性人类受试者进行了 VWM 连续报告任务,在该任务中,他们被追溯性地提示要记住移动点刺激的运动方向。小脑叶 VIIb/VIIIa 的延迟期激活可以准确地解码记忆中的刺激方向,而背侧注意网络的额区和顶区也可以做到这一点。反对运动解释,没有其他小脑区域表现出刺激特异性,包括与眼球运动控制相关的关键区域小脑蚓部。更精细的分析表明,小脑叶 VIIb 的内侧部分,以及 VIIb 和 VIIIa 的最外侧部分,这些部分与背侧注意网络的额区和顶区表现出强烈的静息状态连通性,编码了记忆中的刺激的身份,而小脑叶 VIIb/VIIIa 的中间部分则没有。这些发现表明,小脑叶 VIIb/VIIIa 内的 VWM 具有刺激特异性编码,这表明负责记忆表现的编码和维持的分布式网络延伸到了小脑。关于视觉工作记忆 (VWM) 的内容在大脑中的何处存储,存在相当大的争议。迄今为止,该文献主要集中在位于大脑皮层内的区域的作用上。越来越多的证据表明小脑参与了更高阶的认知功能,包括工作记忆。虽然小脑以前已经被证明被 VWM 范式招募,但尚不清楚小脑的任何部分是否主动编码和维持记忆表现。本研究表明,小脑叶 VIIb/VIIIa 的活动模式对记忆中的刺激具有选择性,并且这种选择性在没有感知输入的情况下仍然存在。这些发现为小脑结构参与视觉信息的持续存储提供了新的证据。