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首页> 外文期刊>Neuropsychologia >One-way traffic: The inferior frontal gyrus controls brain activation in the middle temporal gyrus and inferior parietal lobule during divergent thinking
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One-way traffic: The inferior frontal gyrus controls brain activation in the middle temporal gyrus and inferior parietal lobule during divergent thinking

机译:单向交通:下额前回流在发散思维期间控制中间时颞波鲁斯和劣质顶叶的脑激活

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Contrary to earlier approaches that focused on the contributions of isolated brain regions to the emergence of creativity, there is now growing consensus that creative thought emerges from the interaction of multiple brain regions, often embedded within larger brain networks. Specifically, recent evidence from studies of divergent thinking suggests that kernel ideas emerge in posterior brain regions residing within the semantic system and/or the default mode network (DMN), and that the prefrontal cortex (PFC) regions within the executive control network (ECN) constrain those ideas for generating outputs that meet task demands. However, despite knowing that regions within these networks exhibit interaction, to date the direction of the relationship has not been tested directly. By applying Dynamic Causal Modeling (DCM) to fMRI data collected during a divergent thinking task, we tested the hypothesis that the PFC exerts unidirectional control over the middle temporal gyrus (MTG) and the inferior parietal lobule (IPL), vs. the hypothesis that these two sets of regions exert bidirectional control over each other (in the form of feedback loops). The data were consistent with the former model by demonstrating that the right inferior frontal gyrus (IFG) exerts unidirectional control over MTG and IPL, although the evidence was somewhat stronger in the case of the MTG than the IPL. Our findings highlight potential causal pathways that could underlie the neural bases of divergent thinking.
机译:与较早的方法相反,专注于孤立的大脑地区对创造力的出现的贡献,现在越来越多的共识,即创意思想从多个大脑区域的相互作用中出现,通常嵌入在较大的脑网络中。具体而言,来自分歧思维的研究的最新证据表明,核心思想在驻留在语义系统和/或默认模式网络(DMN)内的后脑区域中出现,并且执行控制网络(ECN)内的前额外Cortex(PFC)区域(ECN )约束这些想法来生成满足任务需求的输出。但是,尽管知道这些网络中的区域表现出相互作用,但到达关系的方向尚未直接测试。通过将动态因果建模(DCM)应用于在发散思维任务期间收集的FMRI数据,我们测试了PFC对中间时颞型(MTG)和下椎管叶(IPL)的单向控制,与假设的假设这两组区域彼此施加双向控制(以反馈循环的形式)。通过证明右下额相(IFG)对MTG和IPL施加单向控制的右下额相(IFG)符合前模型,尽管在MTG的情况下比IPL的情况有所更强烈。我们的调查结果突出了可能借助发散思维的神经基础的潜在因果途径。

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