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When global rule reversal meets local task switching: The neural mechanisms of coordinated behavioral adaptation to instructed multi-level demand changes

机译:当全球规则逆转符合当地任务交换时:协调行为适应的神经机制,指示了指示多级需求变化

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Cognitive flexibility is essential to cope with changing task demands and often it is necessary to adapt to combined changes in a coordinated manner. The present fMRI study examined how the brain implements such multi-level adaptation processes. Specifically, on a "local," hierarchically lower level, switching between two tasks was required across trials while the rules of each task remained unchanged for blocks of trials. On a "global" level regarding blocks of twelve trials, the task rules could reverse or remain the same. The current task was cued at the start of each trial while the current task rules were instructed before the start of a new block. We found that partly overlapping and partly segregated neural networks play different roles when coping with the combination of global rule reversal and local task switching. The fronto-parietal control network (FPN) supported the encoding of reversed rules at the time of explicit rule instruction. The same regions subsequently supported local task switching processes during actual implementation trials, irrespective of rule reversal condition. By contrast, a cortico-striatal network (CSN) including supplementary motor area and putamen was increasingly engaged across implementation trials and more so for rule reversal than for nonreversal blocks, irrespective of task switching condition. Together, these findings suggest that the brain accomplishes the coordinated adaptation to multi-level demand changes by distributing processing resources either across time (FPN for reversed rule encoding and later for task switching) or across regions (CSN for reversed rule implementation and FPN for concurrent task switching).
机译:认知灵活性对于应对改变的任务需求并往往有必要以协调的方式适应组合变化。目前的FMRI研究检查了大脑如何实现这种多级适应过程。具体而言,在“本地”分层较低的级别上,试验需要两个任务之间的切换,而每个任务的规则保持不变,则无法进行试验。在有关十二项试验块的“全球”级别上,任务规则可以反转或保持不变。当前任务在每次试用的开始时被提示,而当前任务规则在新块开始之前被指示。我们发现,部分重叠和部分隔离的神经网络在应对全局规则逆转和本地任务交换的组合时发挥不同的角色。前景控制网络(FPN)支持在显式规则指令时对逆转规则进行编码。与规则反转条件无关,同一区域随后在实际实施试验期间支持本地任务切换过程。相比之下,包括补充电机区域和熔化的皮质纹纹网络(CSN)越来越多地参与实施试验,而且对于不论任务切换条件而言,对于规则反转而言,规则逆转,而且对于非重杆块。这些发现表明,大脑通过在时间(FPN用于逆转规则编码的FPN和任务切换的FPN)或跨越区域(用于反转规则实现和FPN的CSN的FPN的FPN)来完成对多级需求变化的协调适应任务切换)。

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