Chen Qunlin, Kenett Yoed N, Cui Zaixu, Takeuchi Hikaru, Fink Andreas, Benedek Mathias, Zeitlen Daniel C, Zhuang Kaixiang, Lloyd-Cox James, Kawashima Ryuta, Qiu Jiang, Beaty Roger E
Faculty of Psychology, Southwest University, Chongqing, China.
Department of Psychology, Pennsylvania State University, University Park, Pennsylvania, USA.
Commun Biol. 2025 Jan 15;8(1):54. doi: 10.1038/s42003-025-07470-9.
Creativity is hypothesized to arise from a mental state which balances spontaneous thought and cognitive control, corresponding to functional connectivity between the brain's Default Mode (DMN) and Executive Control (ECN) Networks. Here, we conduct a large-scale, multi-center examination of this hypothesis. Employing a meta-analytic network neuroscience approach, we analyze resting-state fMRI and creative task performance across 10 independent samples from Austria, Canada, China, Japan, and the United States (N = 2433)-constituting the largest and most ethnically diverse creativity neuroscience study to date. Using time-resolved network analysis, we investigate the relationship between creativity (i.e., divergent thinking ability) and dynamic switching between DMN and ECN. We find that creativity, but not general intelligence, can be reliably predicted by the number of DMN-ECN switches. Importantly, we identify an inverted-U relationship between creativity and the degree of balance between DMN-ECN switching, suggesting that optimal creative performance requires balanced brain network dynamics. Furthermore, an independent task-fMRI validation study (N = 31) demonstrates higher DMN-ECN switching during creative idea generation (compared to a control condition) and replicates the inverted-U relationship. Therefore, we provide robust evidence across multi-center datasets that creativity is tied to the capacity to dynamically switch between brain networks supporting spontaneous and controlled cognition.
创造力被假定源于一种平衡自发思维和认知控制的心理状态,这与大脑默认模式网络(DMN)和执行控制网络(ECN)之间的功能连接相对应。在此,我们对这一假设进行了大规模、多中心的检验。采用元分析网络神经科学方法,我们分析了来自奥地利、加拿大、中国、日本和美国的10个独立样本(N = 2433)的静息态功能磁共振成像(fMRI)和创造性任务表现,这构成了迄今为止规模最大、种族最多样化的创造力神经科学研究。使用时间分辨网络分析,我们研究了创造力(即发散性思维能力)与DMN和ECN之间的动态切换之间的关系。我们发现,创造力而非一般智力,可以通过DMN - ECN切换的次数可靠地预测。重要的是,我们确定了创造力与DMN - ECN切换之间的平衡程度呈倒U型关系,这表明最佳的创造性表现需要平衡的脑网络动力学。此外,一项独立的任务 - fMRI验证研究(N = 31)表明,在创造性想法产生过程中(与对照条件相比)DMN - ECN切换更高,并重现了倒U型关系。因此,我们在多中心数据集中提供了有力证据,证明创造力与在支持自发和受控认知的脑网络之间动态切换的能力相关。