心理发展与教育 ›› 2025, Vol. 41 ›› Issue (1): 22-31.doi: 10.16187/j.cnki.issn1001-4918.2025.01.03
• 认知与社会性发展 • 上一篇
李文福1,2, 王康程3, 陈井婷1, 刘传新1, 邱江2
LI Wenfu1,2, Wang Kangcheng3, CHEN Jingting1, LIU Chuanxin1, QIU Jiang2
摘要: 聚合思维是创造性思维的形式之一,但其脑机制目前还不清楚。采用静息态脑功能成像技术和远距离联想测验,基于低频振荡振幅(ALFF)和局部一致性(ReHo)两种分析方法,研究聚合思维的脑机制。结果发现,远距离联想测验得分与楔前叶的ALFF值显著负相关,与右侧罗兰迪克岛盖区/脑岛的ALFF值显著正相关;同时与左侧额下回的ReHo值显著负相关。研究结合ALFF和ReHo两种指标探讨聚合思维的神经机制,为进一步揭示创造性的本质提供依据。
中图分类号:
Abraham, A., Pieritz, K., Thybusch, K., Rutter, B., Kroger, S., Schweckendiek, J., … Hermann, C. (2012). Creativity and the brain: Uncovering the neural signature of conceptual expansion. Neuropsychologia, 50(8), 1906-1917. Agarwal, S., Lu, H., & Pillai, J. J. (2017). Value of Frequency Domain Resting-State Functional Magnetic Resonance Imaging Metrics Amplitude of Low-Frequency Fluctuation and Fractional Amplitude of Low-Frequency Fluctuation in the Assessment of Brain Tumor-Induced Neurovascular Uncoupling.Brain Connectivity, 7(6), 382-389. Arkin, C., Przysinda, E., Pfeifer, C. W., Zeng, T., & Loui, P. (2019). Gray Matter Correlates of Creativity in Musical Improvisation.Frontiers in Human Neuroscience, 13, 169. https://doi.org/10.3389/fnhum.2019.00169 Barrett, K. C., Barrett, F. S., Jiradejvong, P., Rankin, S. K., Landau, A. T., & Limb, C. J. (2020). Classical creativity: A functional magnetic resonance imaging (fMRI) investigation of pianist and improviser Gabriela Montero.NeuroImage, 209, 116496. https://doi.org/10.1016/j.neuroimage.2019.116496 Beaty, R. E., Seli, P., & Schacter, D. L. (2019). Network neuroscience of creative cognition: Mapping cognitive mechanisms and individual differences in the creative brain.Current Opinion in Behavioral Sciences, 27, 22-30. Becker, M., Sommer, T., & Kühn, S. (2020). Inferior frontal gyrus involvement during search and solution in verbal creative problem solving: A parametric fMRI study.NeuroImage, 206, 116294. https://doi.org/10.1016/j.neuroimage.2019.116294 Benedek, M., Jauk, E., Fink, A., Koschutnig, K., Reishofer, G., Ebner, F., & Neubauer, A. C. (2014). To create or to recall? Neural mechanisms underlying the generation of creative new ideas.NeuroImage, 88, 125-133. Benedek, M., Jauk, E., Sommer, M., Arendasy, M., & Neubauer, A. C. (2014). Intelligence, creativity, and cognitive control: The common and differential involvement of executive functions in intelligence and creativity.Intelligence, 46, 73-83. Berkowitz, A. L., & Ansari, D. (2010). Expertise-related deactivation of the right temporoparietal junction during musical improvisation.NeuroImage, 49(1), 712-719. Blumenfeld, R. S., & Ranganath, C. (2007). Prefrontal cortex and long-term memory encoding: An integrative review of findings from neuropsychology and neuroimaging.Neuroscientist, 13(3), 280-291. Boccia, M., Piccardi, L., Palermo, L., Nori, R., & Palmiero, M. (2015). Where do bright ideas occur in our brain? Meta-analytic evidence from neuroimaging studies of domain-specific creativity.Frontiers in Psychology, 6, 1195. https://doi.org/10.3389/fpsyg.2015.01195 Bowden, E. M., & Beeman, J. (2003). Aha! Insight experience correlates with solution activation in the right hemisphere.Psychonomic Bulletin & Review, 10(3), 730-737. Bowden, E. M., & Jung-Beeman, M. (2003). Normative data for 144 compound remote associate problems.Behavior Research Methods, Instruments, & Computers, 35(4), 634-639. Bowden, E. M., & Jung-Beeman, M. (2007). Methods for investigating the neural components of insight.Methods, 42(1), 87-99. Bowden, E. M., Jung-Beeman, M., Fleck, J., & Kounios, J. (2005). New approaches to demystifying insight.Trends in Cognitive Sciences, 9(7), 322-328. Brown, S., Ingham, R. J., Ingham, J. C., Laird, A. R., & Fox, P. T. (2005). Stuttered and fluent speech production: An ALE meta-analysis of functional neuroimaging studies.Human Brain Mapping, 25(1), 105-117. Carson, S. H., Peterson, J. B., & Higgins, D. M. (2003). Decreased latent inhibition is associated with increased creative achievement in high-functioning individuals.Journal of Personality and Social Psychology, 85(3), 499-506. Chen, Q.-L., Xu, T., Yang, W.-J., Li, Y.-D., Sun, J.-Z., Wang, K.-C., … Qiu, J. (2015). Individual differences in verbal creative thinking are reflected in the precuneus.Neuropsychologia, 75, 441-449. Chen, X., Liu, C., He, H., Chang, X., Jiang, Y., Li, Y., … Yao, D. (2017). Transdiagnostic differences in the resting-state functional connectivity of the prefrontal cortex in depression and schizophrenia.Journal of Affective Disorders, 217, 118-124. Dietrich, A., & Kanso, R. (2010). A review of EEG, ERP, and neuroimaging studies of creativity and insight.Psychological Bulletin, 136(5), 822-848. Eysenck, H. J. (1993). Creativity and Personality: Suggestions for a Theory.Psychological Inquiry, 4(3), 147-178. Fink, A., & Neubauer, A. C. (2006). EEG alpha oscillations during the performance of verbal creativity tasks: Differential effects of sex and verbal intelligence.International Journal of Psychophysiology, 62(1), 46-53. Fox, M. D., Snyder, A. Z., Vincent, J. L., Corbetta, M., Van Essen, D. C., & Raichle, M. E. (2005). The human brain is intrinsically organized into dynamic, anticorrelated functional networks.Proceedings of the National Academy of Sciences of the United States of America, 102(27), 9673-9678. Gardini, S., Concari, L., Pagliara, S., Ghetti, C., Venneri, A., & Caffarra, P. (2011). Visuo-spatial imagery impairment in posterior cortical atrophy: A cognitive and SPECT study.Behavioural Neurology, 24(2), 123-132. Gaser, C., & Schlaug, G. (2003). Brain Structures Differ between Musicians and Non-Musicians.The Journal of Neuroscience, 23(27), 9240-9245. Grèzes, J., & Decety, J. (2001). Functional anatomy of execution, mental simulation, observation, and verb generation of actions: A meta-analysis.Human Brain Mapping, 12(1), 1-19. Gui, D., Xu, S., Zhu, S., Fang, Z., Spaeth, A. M., Xin, Y., … Rao, H. (2015). Resting spontaneous activity in the default mode network predicts performance decline during prolonged attention workload.NeuroImage, 120, 323-330. Guilford, J. P. (1967).The nature of human intelligence. New York: McGraw-Hill. Guilford, J. P., & Christensen, P. R. (1973). The One-Way Relation Between Creative Potential and IQ.The Journal of Creative Behavior, 7(4), 247-252. Hétu, S., Grégoire, M., Saimpont, A., Coll, M.-P., Eugène, F., Michon, P.-E., & Jackson, P. L. (2013). The neural network of motor imagery: An ALE meta-analysis.Neuroscience & Biobehavioral Reviews, 37(5), 930-949. Hong, W., Zhao, Z., Shen, Z., Sun, B., Li, S., Mekbib, D. B., … Xu, D. (2019). Uncoupled relationship in the brain between regional homogeneity and attention function in first-episode, drug-naïve schizophrenia.Psychiatry Research: Neuroimaging, 294, 110990. https://doi.org/10.1016/j.pscychresns.2019.110990 Igelström, K. M., & Graziano, M. S. A. (2017). The inferior parietal lobule and temporoparietal junction: A network perspective.Neuropsychologia, 105, 70-83. Jung-Beeman, M., Bowden, E. M., Haberman, J., Frymiare, J. L., Arambelliu, S., Greenblatt, R., … Kounios, J. (2004). Neural Activity When People Solve Verbal Problems with Insight.PLoS Biology, 2(4), E97. https://doi.org/10.1371/journal.pbio.0020097 Jung, R. E., Gasparovic, C., Chavez, R. S., Flores, R. A., Smith, S. M., Caprihan, A., & Yeo, R. A. (2009). Biochemical support for the “threshold” theory of creativity: A magnetic resonance spectroscopy study.The Journal of Neuroscience, 29(16), 5319-5325. Jung, R. E., Mead, B. S., Carrasco, J., & Flores, R. A. (2013). The structure of creative cognition in the human brain.Frontiers in Human Neuroscience, 7(2), 330. https://doi.org/10.3389/fnhum.2013.00330 Kounios, J., Fleck, J. I., Green, D. L., Payne, L., Stevenson, J. L., Bowden, E. M., & Jung-Beeman, M. (2008). The origins of insight in resting-state brain activity.Neuropsychologia, 46(1), 281-291. Ledberg, A., Åkerman, S., & Roland, P. E. (1998). Estimation of the Probabilities of 3D Clusters in Functional Brain Images.NeuroImage, 8(2), 113-128. Li, C., Yang, G., Li, M., & Li, B. (2018). Fluid intelligence relates to the resting state amplitude of low-frequency fluctuation and functional connectivity: A multivariate pattern analysis.NeuroReport, 29(1), 8-12. Li, D. (1989).The handbook of Combined Raven's Test in Chinese version (in Chinese). Shanghai, China: East China Normal University. Li, W., Li, G., Ji, B., Zhang, Q., & Qiu, J. (2019). Neuroanatomical Correlates of Creativity: Evidence From Voxel-Based Morphometry.Frontiers in Psychology, 10, 155. https://doi.org/10.3389/fpsyg.2019.00155 Li, W., Yang, J., Zhang, Q., Li, G., & Qiu, J. (2016). The Association between Resting Functional Connectivity and Visual Creativity.Scientific Reports, 6, 25395. https://doi.org/10.1038/srep25395 Lin, J., Cui, X., Dai, X., Chen, Y., & Mo, L. (2018). Neural correlates of creative insight: Amplitude of low-frequency fluctuation of resting-state brain activity predicts creative insight.PLoS ONE, 13(8), e0203071. https://doi.org/10.1371/journal.pone.0203071 Lin, J., Cui, X., Dai, X., & Mo, L. (2018). Regional Homogeneity Predicts Creative Insight: A Resting-State fMRI Study.Frontiers in Human Neuroscience, 12, 210. https://doi.org/10.3389/fnhum.2018.00210 Lundstrom, B. N., Ingvar, M., & Petersson, K. M. (2005). The role of precuneus and left inferior frontal cortex during source memory episodic retrieval.NeuroImage, 27(4), 824-834. Luo, J., Li, W., Qiu, J., Wei, D., Liu, Y., & Zhang, Q. (2013). Neural Basis of Scientific Innovation Induced by Heuristic Prototype.PLoS ONE, 8(1), e49231. https://doi.org/10.1371/journal.pone.0049231 Martindale, C. (1999). Biological bases of creativity. In R. J. Sternberg (Ed.),Handbook of creativity. (pp. 137-152). New York, NY, US: Cambridge University Press. Mednick, S. A. (1962). The associative basis of the creative process.Psychological Review, 69(3), 220-232. Miller, G. F., & Tal, I. R. (2007). Schizotypy versus openness and intelligence as predictors of creativity.Schizophrenia Research, 93(1-3), 317-324. Mitchell, J. P. (2008). Activity in right temporo-parietal junction is not selective for theory-of-mind.Cerebral Cortex, 18(2), 262-271. Nusbaum, E. C., & Silvia, P. J. (2011). Are intelligence and creativity really so different? Fluid intelligence, executive processes, and strategy use in divergent thinking. Intelligence, 39(1), 36-45. Ogawa, T., Aihara, T., Shimokawa, T., & Yamashita, O. (2018). Large-scale brain network associated with creative insight: Combined voxel-based morphometry and resting-state functional connectivity analyses.Scientific Reports, 8(1), 6477. https://doi.org/10.1038/s41598-018-24981-0 Pinho, A. L., Ullén, F., Castelo-Branco, M., Fransson, P., & de Manzano, Ö. (2015). Addressing a Paradox: Dual Strategies for Creative Performance in Introspective and Extrospective Networks.Cerebral Cortex, 26(7), 3052-3063. Qiu, J., Li, H., Jou, J., Liu, J., Luo, Y., Feng, T., … Zhang, Q. (2010). Neural correlates of the “Aha” experiences: Evidence from an fMRI study of insight problem solving.Cortex, 46(3), 397-403. Raichle, M. E., MacLeod, A. M., Snyder, A. Z., Powers, W. J., Gusnard, D. A., & Shulman, G. L. (2001). A default mode of brain function.Proceedings of the National Academy of Sciences, 98(2), 676-682. Shen, W., Yuan, Y., Liu, C., Luo, J., Shen, W., Yuan, Y., … Luo, J. (2017). The roles of the temporal lobe in creative insight: An integrated review.Thinking & Reasoning, 23(4), 321-375. Song, X. W., Dong, Z. Y., Long, X. Y., Li, S. F., Zuo, X. N., Zhu, C. Z., … Zang, Y. F. (2011). REST: A toolkit for resting-state functional magnetic resonance imaging data processing.PLoS ONE, 6(9), e25031. https://doi.org/10.1371/journal.pone.0025031 Subramaniam, K., Kounios, J., Parrish, T. B., & Jung-Beeman, M. (2009). A Brain Mechanism for Facilitation of Insight by Positive Affect.Journal of Cognitive Neuroscience, 21(3), 415-432. Takeuchi, H., Taki, Y., Hashizume, H., Sassa, Y., Nagase, T., Nouchi, R., & Kawashima, R. (2011a). Cerebral Blood Flow during Rest Associates with General Intelligence and Creativity.PLoS ONE, 6(9), e25532. https://doi.org/10.1371/journal.pone.0025532 Takeuchi, H., Taki, Y., Hashizume, H., Sassa, Y., Nagase, T., Nouchi, R., & Kawashima, R. (2011b). Failing to deactivate: The association between brain activity during a working memory task and creativity.NeuroImage, 55(2), 681-687. Takeuchi, H., Taki, Y., Hashizume, H., Sassa, Y., Nagase, T., Nouchi, R., & Kawashima, R. (2012). The association between resting functional connectivity and creativity.Cerebral Cortex, 22(12), 2921-2929. Takeuchi, H., Taki, Y., Nouchi, R., Yokoyama, R., Kotozaki, Y., Nakagawa, S., … Kawashima, R. (2017). Regional homogeneity, resting-state functional connectivity and amplitude of low frequency fluctuation associated with creativity measured by divergent thinking in a sex-specific manner.NeuroImage, 152, 258-269. Tang, Y. Y., Rothbart, M. K., & Posner, M. I. (2012). Neural correlates of establishing, maintaining, and switching brain states.Trends in Cognitive Sciences, 16(6), 330-337. Villarreal, M. F., Cerquetti, D., Caruso, S., Schwarcz López Aranguren, V., Gerschcovich, E. R., Frega, A. L., & Leiguarda, R. C. (2013). Neural correlates of musical creativity: Differences between high and low creative subjects.PLoS ONE, 8(9), e75427. https://doi.org/10.1371/journal.pone.0075427 Wang, L., Song, M., Jiang, T., Zhang, Y., & Yu, C. (2011). Regional homogeneity of the resting-state brain activity correlates with individual intelligence.Neuroscience Letters, 488(3), 275-278. Wei, L., Duan, X., Yang, Y., Liao, W., Gao, Q., Ding, J. R., … Chen, H. (2011). The synchronization of spontaneous BOLD activity predicts extraversion and neuroticism.Brain Research, 1419, 68-75. Wertz, C. J., Chohan, M. O., Flores, R. A., & Jung, R. E. (2020). Neuroanatomy of creative achievement.NeuroImage, 209, 116487. https://doi.org/10.1016/j.neuroimage.2019.116487 Yan, C. G., & Zang, Y. F. (2010). DPARSF: A MATLAB toolbox for “pipeline” data analysis of resting-state fMRI.Frontiers in Systems Neuroscience, 4, 13. https://doi.org/10.3389/fnsys.2010.00013 Yang, H., Long, X. Y., Yang, Y., Yan, H., Zhu, C. Z., Zhou, X. P., … Gong, Q. Y. (2007). Amplitude of low frequency fluctuation within visual areas revealed by resting-state functional MRI.NeuroImage, 36(1), 144-152. Zang, Y., Jiang, T., Lu, Y., He, Y., & Tian, L. (2004). Regional homogeneity approach to fMRI data analysis.NeuroImage, 22(1), 394-400. Zang, Y. F., He, Y., Zhu, C. Z., Cao, Q. J., Sui, M. Q., Liang, M., … Wang, Y. F. (2007). Altered baseline brain activity in children with ADHD revealed by resting-state functional MRI.Brain and Development, 29(2), 83-91. Zhang, H., Liu, J., & Zhang, Q. (2013). Neural Correlates of the Perception for Novel Objects.PLoS ONE, 8(4), e62979. https://doi.org/10.1371/journal.pone.0062979 Zou, Q., Ross, T. J., Gu, H., Geng, X., Zuo, X. N., Hong, L. E., … Yang, Y. (2013). Intrinsic resting-state activity predicts working memory brain activation and behavioral performance.Human Brain Mapping, 34(12), 3204-3215. Zou, Q. H., Zhu, C. Z., Yang, Y., Zuo, X. N., Long, X. Y., Cao, Q. J., … Zang, Y. F. (2008). An improved approach to detection of amplitude of low-frequency fluctuation (ALFF) for resting-state fMRI: Fractional ALFF.Journal of Neuroscience Methods, 172(1), 137-141. 杜秀敏, 张娇娜, 张庆林. (2015). 中文远距离联想任务是否是真顿悟之探讨. 西南大学学报(自然科学版), 37(4), 83-87. 黄福荣, 周治金, 赵庆柏. (2013). 汉语成语谜语问题解决中思路竞争的眼动研究. 心理学报, 45(1), 35-46. 李文福, 童丹丹, 邱江, 张庆林. (2016). 科学发明问题解决的脑机制再探. 心理学报, 48(4), 331-342. 罗劲. (2004). 顿悟的大脑机制. 心理学报, 36(2), 219-234. 王烨, 余荣军, 周晓林. (2005). 创造性研究的有效工具——远距离联想测验. 心理科学进展, 13(6), 734-738. 张庆林, 田燕, 邱江. (2012). 顿悟中原型激活的大脑自动响应机制:灵感机制初探. 西南大学学报(自然科学版), 34(9), 1-10. |
[1] | 童丹丹, 史靖靖, 禄鹏, 彭晨宇, 李文福, 张庆林, 邱江. 感觉寻求与模糊容忍度对科学发明问题提出的影响[J]. 心理发展与教育, 2024, 40(6): 774-781. |
[2] | 史滋福, 周志豪, 许磊, 陈火红, 管锦亮, 刘承珍. 父母消极教养方式与大学生恶意创造性行为的关系:有调节的中介模型[J]. 心理发展与教育, 2024, 40(6): 808-815. |
[3] | 韩建涛, 钱俊妮, 张婕妤, 庞维国. 创造力与大学生生命意义感:积极情绪和创造性自我效能感的作用[J]. 心理发展与教育, 2024, 40(2): 187-195. |
[4] | 张慧如, 张伟达, 傅王倩, 邓敏, 彭苏浩, 李玉. 孤独感对创造性倾向的影响:无聊倾向和焦虑情绪的中介作用[J]. 心理发展与教育, 2024, 40(1): 132-141. |
[5] | 李玉华, 王桐, 刘悦, 俞劼, 林崇德. 教师创造性教学行为与小学生创造性思维的关系:有调节的中介模型[J]. 心理发展与教育, 2022, 38(4): 513-519. |
[6] | 刘文, 王依宁, 张嘉琪, 车翰博. 9~11岁儿童创造性人格与欺骗行为的关系:亲子沟通质量的调节作用[J]. 心理发展与教育, 2021, 37(4): 508-516. |
[7] | 胡卫平, 赵晓媚, 贾培媛, 陈英和. 学思维网络活动对小学生创造性的影响:认知风格的调节作用[J]. 心理发展与教育, 2017, 33(3): 257-264. |
[8] | 舒曾, 贺琼, 李晓敏, 张晶, 张月寒, 方晓义. 母亲养育压力对幼儿创造性人格的影响:教养方式的中介作用[J]. 心理发展与教育, 2016, 32(3): 276-284. |
[9] | 师保国, 王黎静, 徐丽, 刘霞. 师生关系对小学生创造性的作用:一个有调节的中介模型[J]. 心理发展与教育, 2016, 32(2): 175-182. |
[10] | 刘春晖, 林崇德. 个体变量、材料变量对大学生创造性问题提出能力的影响[J]. 心理发展与教育, 2015, 31(5): 513-521. |
[11] | 李文福, 龚正霞, 邱江, 张庆林. 午睡剥夺对科学发明问题解决中的原型启发效应的影响[J]. 心理发展与教育, 2015, 31(2): 165-170. |
[12] | 孙鹏, 邹泓, 杜瑶琳. 青少年创造性思维的特点及其对日常创造性行为的影响:人格的中介作用[J]. 心理发展与教育, 2014, 30(4): 355-362. |
[13] | 谷传华, 张笑容, 陈洁, 郝恩河, 王亚丽. 状态与特质之分:来自社会创造性的证据[J]. 心理发展与教育, 2013, 29(5): 483-490. |
[14] | 杨小洋, 李歆瑶, 周晖. 中学生个人认识论对创造性思维的影响:自我提问的调节作用分析[J]. 心理发展与教育, 2012, 28(6): 603-610. |
[15] | 陈群林, 罗俊龙, 蒋军, 位东涛, 张庆林. 无意识加工对创造性问题解决的促进效应[J]. 心理发展与教育, 2012, 28(6): 569-575. |
|