心理学报 ›› 2026, Vol. 58 ›› Issue (11): 2308-2321.doi: 10.3724/SP.J.1041.2026.2308 cstr: 32110.14.2026.2308
齐芸, 蔡文琦, 李智林, 杨剑峰, 王小娟
收稿日期:2025-10-14
发布日期:2026-09-10
出版日期:2026-11-25
通讯作者:
杨剑峰, E-mail: yangjf@snnu.edu.cn; 王小娟, E-mail: wangxj@snnu.edu.cn
基金资助:QI Yun, CAI Wenqi, LI Zhilin, YANG Jianfeng, WANG Xiaojuan
Received:2025-10-14
Online:2026-09-10
Published:2026-11-25
摘要: 双语者加工母语(L1)和二语(L2)是否共享相同的脑机制是研究者广泛关注的问题, 现有研究积累了大量的证据同时也存在分岐。造成结果不一致的主要原因在于双语者母语和二语间的语言距离以及实验任务差异。本研究利用元分析的优势, 考察了不同任务(语音、语义)下两类双语者(语言距离远的汉-英双语者、语言距离近的拼音文字双语者)加工L1和L2词汇时的大脑激活。结果发现, 在语音任务中, 语言距离远的汉-英双语者L2更多激活了负责形-音转换的左侧顶下小叶/缘上回; 而语言距离近的拼音文字双语者L1和L2共享了相同的脑机制。在语义任务中, 汉-英双语者L1更多激活了左侧额中回和左侧楔前叶来完成形-义转换; 拼音文字双语者L1更多激活了左侧颞上回中部来进行音-义转换, L2更多激活了左侧额中回/额下回、脑岛和顶下小叶等语言控制脑区。进一步在语言切换任务中对比两类双语者的脑区激活也发现语言距离近的拼音文字双语者需要更多执行控制脑区参与激活。结果表明, 双语者加工L1和L2的脑区激活差异是在语言距离和任务需求共同驱动下潜在认知加工的差异。
中图分类号:
齐芸, 蔡文琦, 李智林, 杨剑峰, 王小娟. (2026). 语言距离和任务需求共同调节双语者词汇加工的脑机制. 心理学报, 58(11), 2308-2321.
QI Yun, CAI Wenqi, LI Zhilin, YANG Jianfeng, WANG Xiaojuan. (2026). The joint modulation of language distance and task demands on the neural mechanisms underlying bilingual lexical processing. Acta Psychologica Sinica, 58(11), 2308-2321.
| (*为纳入元分析文献) [1] *Abou-Ghazaleh A., Khateb A., & Nevat M. (2020). Language control in diglossic and bilingual contexts: An event-related fmri study using picture naming tasks.Brain Topography, 33(1), 60-74. [2] *Abutalebi J., Annoni J. M., Zimine I., Pegna A. J., Seghier M. L., Lee-Jahnke H., .. Khateb A. (2008). Language control and lexical competition in bilinguals: An event-related fMRI study.Cerebral Cortex, 18(7), 1496-1505. [3] Abutalebi J., Della Rosa P. A., Ding G. S., Weekes B., Costa A., & Green D. W. (2013). Language proficiency modulates the engagement of cognitive control areas in multilinguals.Cortex, 49(3), 905-911. [4] *Abutalebi J., Della Rosa P. A., Green D. W., Hernandez M., Scifo P., Keim R., .. Costa A. (2012). Bilingualism tunes the anterior cingulate cortex for conflict monitoring.Cerebral Cortex, 22(9), 2076-2086. [5] Badre, D., & Wagner, A. D. (2004). Selection, integration, and conflict monitoring: Assessing the nature and generality of prefrontal cognitive control mechanisms.Neuron, 41(3), 473-487. [6] *Bartolotti J., Bradley K., Hernandez A. E., & Marian V. (2017). Neural signatures of second language learning and control.Neuropsychologia, 98, 130-138. [7] *Boukrina O., Hanson S. J., & Hanson C. (2014). Modeling activation and effective connectivity of vwfa in same script bilinguals.Human Brain Mapping, 35(6), 2543-2560. [8] Braun M., Hutzler F., Ziegler J. C., Dambacher M., & Jacobs A. M. (2009). Pseudohomophone effects provide evidence of early lexico-phonological processing in visual word recognition.Human Brain Mapping, 30(7), 1977-1989. [9] Brennan C., Cao F., Pedroarena-Leal N., McNorgan C., & Booth J. R. (2013). Reading acquisition reorganizes the phonological awareness network only in alphabetic writing systems.Human Brain Mapping, 34(12), 3354-3368. [10] Brignoni-Pérez E., Jamal N., & Eden G. F. (2022). Functional neuroanatomy of English word reading in early bilingual and monolingual adults.Human Brain Mapping, 43(14), 4310-4325. [11] Brignoni-Perez E., Jamal N. I., & Eden G. F. (2020). An fMRI study of English and Spanish word reading in bilingual adults.Brain and Language, 202, 104725. [12] *Buchweitz A., Shinkareva S. V., Mason R. A., Mitchell T. M., & Just M. A. (2012). Identifying bilingual semantic neural representations across languages.Brain and Language, 120(3), 282-289. [13] *Cao F., Khalid K., Lee R., Brennan C., Yang Y. H., Li K. C., .. Booth J. R. (2011). Development of brain networks involved in spoken word processing of Mandarin Chinese.Neuroimage, 57(3), 750-759. [14] *Cao F., Tao R., Liu L., Perfetti C. A., & Booth J. R. (2013). High proficiency in a second language is characterized by greater involvement of the first language network: Evidence from Chinese learners of English.Journal of Cognitive Neuroscience, 25(10), 1649-1663. [15] Cargnelutti E., Tomasino B., & Fabbro F. (2019). Language brain representation in bilinguals with different age of appropriation and proficiency of the second language: A meta-analysis of functional imaging studies.Frontiers in Human Neuroscience, 13, 445658. [16] Cargnelutti E., Tomasino B., & Fabbro F. (2022). Effects of linguistic distance on second language brain activations in bilinguals: An exploratory coordinate-based meta-analysis.Frontiers in Human Neuroscience, 15, 744489. [17] *Chan A. H. D., Luke K. K., Li P., Yip V., Li G., Weekes B., & Tan L. H. (2008). Neural correlates of nouns and verbs in early bilinguals.Annals of the New York Academy of Sciences, 1145(1), 30-40. [18] *Chee M. W. L., Hon N., Lee H. L., & Soon C. S. (2001). Relative language proficiency modulates BOLD signal change when bilinguals perform semantic judgments.Neuroimage, 13(6), 1155-1163. [19] *Chee M. W. L., Weekes B., Lee K. M., Soon C. S., Schreiber A., Hoon J. J., & Chee M. (2000). Overlap and dissociation of semantic processing of Chinese characters, English words, and pictures: Evidence from fMRI.Neuroimage, 12(4), 392-403. [20] *Chen X. Z., Zhou L. J., Yang Q., Xu S. J., Wang X. Y., Zhao C., .. Li K. C. (2012). Functional MRI analysis of semantics processing in skilled Mongolian-Chinese bilingual people.Chinese Journal of Medical Imaging Technology, 28(8), 1475-1478. [*陈学志, 周连军, 杨倩, 宿淑君, 王晓怡, 赵澄, 卢洁, 李坤成. (2012). 熟练蒙汉双语者语义加工脑机制的fMRI分析.中国医学影像技术, 28(8), 1475-1478.] [21] *Coderre E. L., Smith J. F., Van Heuven, W. J. B., & Horwitz B. (2016). The functional overlap of executive control and language processing in bilinguals.Bilingualism-Language and Cognition, 19(3), 471-488. [22] Coderre, E. L., & van Heuven, W. J. B. (2014). The effect of script similarity on executive control in bilinguals.Frontiers in Psychology, 5, 1070. [23] Comstock, L., & Oliver, B. (2021). A meta-analysis of task-based differences in bilingual L1 and L2 language networks. bioRxiv, https://doi.org/10.1101/2021.12.28.474335 [24] Costa A., Albareda B., & Santesteban M. (2008). Assessing the presence of lexical competition across languages: Evidence from the Stroop task.Bilingualism-Language and Cognition, 11(1), 121-131. [25] Crinion J., Turner R., Grogan A., Hanakawa T., Noppeney U., Devlin J. T., .. Price C. J. (2006). Language control in the bilingual brain.Science, 312(5779), 1537-1540. [26] Dang M., Cai W. Q., Chen F. K., Wang X. J., & Yang J. F. (2024). Dynamic collaboration of reading neural pathways driven by the processing demands.Advances in Psychological Science, 32(1), 118-130. [党敏, 蔡文琦, 陈发坤, 王小娟, 杨剑峰. (2024). 加工需求驱动下词汇阅读神经通路的动态协作机制.心理科学进展, 32(1), 118-130.] [27] *Das T., Padakannaya P., Pugh K. R., & Singh N. C. (2011). Neuroimaging reveals dual routes to reading in simultaneous proficient readers of two orthographies.Neuroimage, 54(2), 1476-1487. [28] *De Baene W., Duyck W., Brass M., & Carreiras M. (2015). Brain circuit for cognitive control is shared by task and language switching.Journal of Cognitive Neuroscience, 27(9), 1752-1765. [29] *de Bruin A., Roelofs A., Dijkstra T., & Fitzpatrick I. (2014). Domain-general inhibition areas of the brain are involved in language switching: fMRI evidence from trilingual speakers.Neuroimage, 90, 348-359. [30] *De Grauwe S., Willems R. M., Rueschemeyer S. A., Lemhöfer K., & Schriefers H. (2014). Embodied language in first-and second-language speakers: Neural correlates of processing motor verbs.Neuropsychologia, 56, 334-349. [31] *Ding G. S., Perry C., Peng D. L., Ma L., Li D. J., Xu S. Y., .. Yang J. (2003). Neural mechanisms underlying semantic and orthographic processing in Chinese-English bilinguals.Neuroreport, 14(12), 1557-1562. [32] Dong J., Li A. Q., Chen C. S., Qu J., Jiang N., Sun Y., .. Mei L. L. (2021). Language distance in orthographic transparency affects cross-language pattern similarity between native and non-native languages.Human Brain Mapping, 42(4), 893-907. [33] *Dong Q., Xue G., Jin Z., & Zeng Y. W. (2004). Brain response is shaped by language experience: Evidence from an fmri study on beginning second language learners.Acta Psychologica Sinica, 36(4), 448-454. [*董奇, 薛贵, 金真, 曾亚伟. (2004). 语言经验对大脑激活的影响: 来自第二语言初学者的证据.心理学报, 36(4), 448-454.] [34] Dräger B., Jansen A., Bruchmann S., Förster A. F., Pleger B., P'Zwitserlood, & Knecht S. (2004). How does the brain accommodate to increased task difficulty in word finding?: A functional MRI study.Neuroimage, 23(3), 1152-1160. [35] Eickhoff S. B., Bzdok D., Laird A. R., Kurth F., & Fox P. T. (2012). Activation likelihood estimation meta-analysis revisited.Neuroimage, 59(3), 2349-2361. [36] Eickhoff S. B., Laird A. R., Grefkes C., Wang L. E., Zilles K., & Fox P. T. (2009). Coordinate-based activation likelihood estimation meta-analysis of neuroimaging data: A random-effects approach based on empirical estimates of spatial uncertainty.Human Brain Mapping, 30(9), 2907-2926. [37] Feng G. Y., Chen H. C., Zhu Z. D., He Y., & Wang S. P. (2015). Dynamic brain architectures in local brain activity and functional network efficiency associate with efficient reading in bilinguals.Neuroimage, 119, 103-118. [38] Feng X. X., Altarelli I., Monzalvo K., Ding G. S., Ramus F., Shu H., .. Dehaene-Lambertz G. (2020). A universal reading network and its modulation by writing system and reading ability in French and Chinese children.eLife, 9, e54591. [39] *Ferreira R. A., Vinson D., Dijkstra T., & Vigliocco G. (2021). Word learning in two languages: Neural overlap and representational differences.Neuropsychologia, 150, 107703. [40] Finkbeiner M., Gollan T. H., & Caramazza A. (2006). Lexical access in bilingual speakers: What’s the (hard) problem? Bilingualism-Language and Cognition, 9(2), 153-166. [41] Fox P. T., Parsons L. M., & Lancaster J. L. (1998). Beyond the single study: Function/location metanalysis in cognitive neuroimaging.Current Opinion in Neurobiology, 8(2), 178-187. [42] *Frenck-Mestre C., Anton J. L., Roth M., Vaid J., & Viallet F. (2005). Articulation in early and late bilinguals' two languages: Evidence from functional magnetic resonance imaging.Neuroreport, 16(7), 761-765. [43] *Fu Y. B., Lu D., Kang C. Y., Wu J. J., Ma F. Y., Ding G. S., & Guo T. M. (2017). Neural correlates for naming disadvantage of the dominant language in bilingual word production.Brain and Language, 175, 123-129. [44] *Gao Y., Wei N., Wang Z. K., Jian J., Ding G. S., Meng X. Z., & Liu L. (2015). Interaction between native and second language processing: Evidence from a functional magnetic resonance imaging study of chinese-english bilingual children.Acta Psychologica Sinica, 47(12), 1419-1432. [*高悦, 魏娜, 王正科, 简洁, 丁国盛, 孟祥芝, 刘丽. (2015). 汉-英儿童双语者母语和二语加工的相互作用:来自神经机制方面的证据.心理学报, 47(12), 1419-1432.] [45] *Garbin G., Costa A., Sanjuan A., Forn C., Rodriguez-Pujadas A., Ventura N., .. Avila C. (2011). Neural bases of language switching in high and early proficient bilinguals.Brain and Language, 119(3), 129-135. [46] *Golestani N., Alario F. X., Meriaux S., Le Bihan D., Dehaene S., & Pallier C. (2006). Syntax production in bilinguals.Neuropsychologia, 44(7), 1029-1040. [47] Grant A. M., Fang S. Y., & Li P. (2015). Second language lexical development and cognitive control: A longitudinal fMRI study.Brain and Language, 144, 35-47. [48] *Guo T. M., Liu H. Y., Misra M., & Kroll J. F. (2011). Local and global inhibition in bilingual word production: fMRI evidence from Chinese-English bilinguals.Neuroimage, 56(4), 2300-2309. [49] Gurunandan K., Carreiras M., & Paz-Alonso P. M. (2019). Functional plasticity associated with language learning in adults.Neuroimage, 201, 116040. [50] Han, Z. Z., & Bi, Y. C. (2009). Reading comprehension without phonological mediation: Further evidence from a Chinese aphasic individual.Science in China Series C-Life Sciences, 52(5), 492-499. [51] *Hernandez, A. E. (2009). Language switching in the bilingual brain: What’s next? Brain and Language, 109(2-3), 133-140. [52] *Hernandez A. E., Dapretto M., Mazziotta J., & Bookheimer S. (2001). Language switching and language representation in Spanish-English bilinguals: An fMRI study.Neuroimage, 14(2), 510-520. [53] *Hernandez A. E., Woods E. A., & Bradley, K. A. L. (2015). Neural correlates of single word reading in bilingual children and adults.Brain and Language, 143, 11-19. [54] Hickok, G. (2022). The dual stream model of speech and language processing. In A. E. Hillis & J. Fridriksson (Eds.), Handbook of clinical neurology (Vol. 185, pp. 57-69). Elsevier. [55] Hou Z. Q., Li H. H., Gao L., Ou J., & Xu M. (2024). Differential neural representations of syntactic and semantic information across languages in Chinese-English bilinguals.Neuroimage, 303, 120928. [56] Hsieh M. C., Jeong H., Kawata K. H. D., Sasaki Y., Lee H. C., Yokoyama S., .. Kawashima R. (2017). Neural correlates of bilingual language control during interlingual homograph processing in a logogram writing system.Brain and Language, 174, 72-85. [57] *Jiang M., Jia W. X., & Yang L. X. (2010). Cerebral activation patterns of fMRI in Uygur-Chinese bilinguals.Journal of Clinical Radiology, 29(12), 1688-1692. [*姜梅, 贾文霄, 杨利霞, 亚热·艾拜都拉, 朱丽娜, 王红, 石鑫. (2010). 维吾尔族熟练维-汉双语者语言活动区的功能磁共振成像.临床放射学杂志, 29(12), 1688-1692.] [58] *Jung J., Nam K., Cho H., & Kim S. (2018). Mapping the neural dynamics of Korean-English bilinguals with medium proficiency during auditory word processing.Frontiers in Psychology, 9, 983. [59] *Kang C. Y., Fu Y. B., Wu J. J., Ma F. Y., Lu C. M., & Guo T. M. (2017). Short-term language switching training tunes the neural correlates of cognitive control in bilingual language production.Human Brain Mapping, 38(12), 5859-5870. [60] *Kim S. Y., Liu L., & Cao F. (2017). How does first language (L1) influence second language (L2) reading in the brain? Evidence from Korean-English and Chinese-English bilinguals.Brain and Language, 171, 1-13. [61] Kim S. Y., Qi T., Feng X. X., Ding G. S., Liu L., & Cao F. (2016). How does language distance between L1 and L2 affect the L2 brain network? An fMRI study of Korean-Chinese-English trilinguals.Neuroimage, 129, 25-39. [62] *Klein D., Milner B., Zatorre R. J., Meyer E., & Evans A. C. (1995). The neural substrates underlying word generation: A bilingual functional-imaging study.Proceedings of the National Academy of Sciences, 92(7), 2899-2903. [63] *Klein D., Milner B., Zatorre R. J., Zhao V., & Nikelski J. (1999). Cerebral organization in bilinguals: A PET study of Chinese-English verb generation.Neuroreport, 10(13), 2841-2845. [64] *Klein D., Watkins K. E., Zatorre R. J., & Milner B. (2006). Word and nonword repetition in bilingual subjects: A PET study.Human Brain Mapping, 27(2), 153-161. [65] *Köpke B., Howells R. K. R., Cortelazzo F., Péran P., de Boissezon X., & Lubrano V. (2021). Functional and structural differences in brain networks involved in language processing and control in highly proficient early and late bilinguals.Journal of Neurolinguistics, 59, 100988. [66] *Koyama M. S., Stein J. F., Stoodley C. J., & Hansen P. C. (2013). Cerebral mechanisms for different second language writing systems.Neuropsychologia, 51(11), 2261-2270. [67] *Kumar U., Das T., Bapi R. S., Padakannaya P., Joshi R. M., & Singh N. C. (2010). Reading different orthographies: An fMRI study of phrase reading in Hindi-English bilinguals.Reading and Writing, 23(2), 239-255. [68] Law S. P., Wong W., & Kong A. (2006). Direct access from meaning to orthography in Chinese: A case study of superior written to oral naming.Aphasiology, 20(6), 565-578. [69] Li H. H., Zhang J., & Ding G. S. (2021). Reading across writing systems: A meta-analysis of the neural correlates for first and second language reading.Bilingualism-Language and Cognition, 24(3), 537-548. [70] Li H. L., Cao Y., Chen C. S., Liu X. Y., Zhang S., & Mei L. L. (2023). The depth of semantic processing modulates cross-language pattern similarity in Chinese-English bilinguals.Human Brain Mapping, 44(5), 2085-2098. [71] Li X. S., Huang L. J. Q., Yao P. P., & Hyönä J. (2022). Universal and specific reading mechanisms across different writing systems.Nature Reviews Psychology, 1(3), 133-144. [72] Lin Z. L., Li X. J., Qi G. Q., Yang J. J., Sun H. Z., Guo Q. Y., .. Xu M. (2024). Phonological properties of logographic words modulate brain activation in bilinguals: A comparative study of Chinese characters and Japanese Kanji. Cerebral Cortex, 34(4), bhae 150. [73] Linck J. A., Hoshino N., & Kroll J. F. (2008). Cross-language lexical processes and inhibitory control.The Mental Lexicon, 3(3), 349-374. [74] Liu H. H., Kong C., de Bruin A., Wu J. J., & He Y. Y. (2020). Interactive influence of self and other language behaviors: Evidence from switching between bilingual production and comprehension.Human Brain Mapping, 41(13), 3720-3736. [75] Liu, H. S., & Cao, F. (2016). L1 and L2 processing in the bilingual brain: A meta-analysis of neuroimaging studies.Brain and Language, 159, 60-73. [76] *Liu L. Y., Margoni F., He Y. Y., & Liu H. H. (2021). Neural substrates of the interplay between cognitive load and emotional involvement in bilingual decision making.Neuropsychologia, 151, 107721. [77] Luk G., Green D. W., Abutalebi J., & Grady C. (2011). Cognitive control for language switching in bilinguals: A quantitative meta-analysis of functional neuroimaging studies.Language and Cognitive Processes, 27(10), 1479-1488. [78] *Luke K. K., Liu H. L., Wai Y. Y., Wan Y. L., & Tan L. H. (2002). Functional anatomy of syntactic and semantic processing in language comprehension.Human Brain Mapping, 16(3), 133-145. [79] *Ma H. F., Hu J. H., Xi J., Shen W., Ge J. Q., Geng F., .. Yao D. Z. (2014). Bilingual cognitive control in language switching: An fMRI study of English-Chinese late bilinguals.Plos One, 9(9), e106468. [80] Matsuo K., Chen S. H. A., Hue C. W., Wu C. Y., Bagarinao E., Tseng W. Y. I., & Nakai T. (2010). Neural substrates of phonological selection for Japanese character Kanji based on fMRI investigations.Neuroimage, 50(3), 1280-1291. [81] Mei L. L., Xue G., Lu Z. L., He Q. H., Wei M., Zhang M. X., .. Chen C. S. (2015). Native language experience shapes neural basis of addressed and assembled phonologies.Neuroimage, 114, 38-48. [82] Mei L. L., Xue G., Lu Z. L., He Q. H., Zhang M. X., Wei M., .. Dong Q. (2014). Artificial language training reveals the neural substrates underlying addressed and assembled phonologies.Plos One, 9(3), e93548. [83] *Meng X. Z., You H. L., Song M. X., Desroches A. S., Wang Z. K., Wei N., .. Ding G. S. (2016). Neural deficits in auditory phonological processing in Chinese children with English reading impairment.Bilingualism-Language and Cognition, 19(2), 331-346. [84] *Meschyan, G., & Hernandez, A. E. (2006). Impact of language proficiency and orthographic transparency on bilingual word reading: An fMRI investigation.Neuroimage, 29(4), 1135-1140. [85] Mouthon M., Khateb A., Lazeyras F., Pegna A. J., Lee-Jahnke H., Lehr C., & Annoni J. M. (2020). Second-language proficiency modulates the brain language control network in bilingual translators: An event-related fMRI study.Bilingualism-Language and Cognition, 23(2), 251-264. [86] Nakamura K., Kuo W. J., Pegado F., Cohen L., Tzeng O. J. L., & Dehaene S. (2012). Universal brain systems for recognizing word shapes and handwriting gestures during reading.Proceedings of the National Academy of Sciences, 109(50), 20762-20767. [87] *Ni C. B., Lu G. M., Zhang Z. Q., Wang Z. Q., Xu X. D., & Zhang Z. Y. (2010). Brain areas activated and cognitive approaches adopted in L2 phonological process.Acta Psychologica Sinica, 42(12), 1156-1165. [*倪传斌, 卢光明, 张志强, 王中秋, 徐晓东, 张智义. (2010). 二语语音的识别方式与激活脑区.心理学报, 42(12), 1156-1165.] [88] Nichols, E. S., & Joanisse, M. F. (2016). Functional activity and white matter microstructure reveal the independent effects of age of acquisition and proficiency on second-language learning.Neuroimage, 143, 15-25. [89] Oliver M., Carreiras M., & Paz-Alonso P. M. (2017). Functional dynamics of dorsal and ventral reading networks in bilinguals.Cerebral Cortex, 27(12), 5431-5443. [90] Pattamadilok C., Chanoine V., Pallier C., Anton J. L., Nazarian B., Belin P., & Ziegler J. C. (2017). Automaticity of phonological and semantic processing during visual word recognition.Neuroimage, 149, 244-255. [91] Perani, D., & Abutalebi, J. (2005). The neural basis of first and second language processing.Current Opinion in Neurobiology, 15(2), 202-206. [92] *Pierce L. J., Chen J. K., Delcenserie A., Genesee F., & Klein D. (2015). Past experience shapes ongoing neural patterns for language.Nature Communications, 6(1), 10073. [93] *Pierce L. J., Klein D., Chen J. K., Delcenserie A., & Genesee F. (2014). Mapping the unconscious maintenance of a lost first language.Proceedings of the National Academy of Sciences, 111(48), 17314-17319. [94] *Price C. J., Green D. W., & von Studnitz R. (1999). A functional imaging study of translation and language switching.Brain, 122(12), 2221-2235. [95] Radman N., Jost L., Dorood S., Mancini C., & Annoni J. M. (2021). Language distance modulates cognitive control in bilinguals.Scientific Reports, 11(1), 24131. [96] *Rao C., Mathur A., & Singh N. C. (2013). ‘Cost in Transliteration’: The neurocognitive processing of romanized writing.Brain and Language, 124(3), 205-212. [97] *Reverberi C., Kuhlen A., Abutalebi J., Greulich R. S., Costa A., Seyed-Allaei S., & Haynes J. D. (2015). Language control in bilinguals: Intention to speak vs. execution of speech.Brain and Language, 144, 1-9. [98] *Rodriguez-Fornells A., Rotte M., Heinze H. J., Nösselt T., & Münte T. F. (2002). Brain potential and functional MRI evidence for how to handle two languages with one brain.Nature, 415(6875), 1026-1029. [99] Rueckl J. G., Paz-Alonso P. M., Molfese P. J., Kuo W. J., Bick A., Frost S. J., .. Frost R. (2015). Universal brain signature of proficient reading: Evidence from four contrasting languages.Proceedings of the National Academy of Sciences, 112(50), 15510-15515. [100] *Sebastian R., Kiran S., & Sandberg C. (2012). Semantic processing in Spanish-English bilinguals with aphasia.Journal of Neurolinguistics, 25(4), 240-262. [101] Sebastian R., Laird A. R., & Kiran S. (2011). Meta-analysis of the neural representation of first language and second language.Applied Psycholinguistics, 32(4), 799-819. [102] Shen, Y., & Del Tufo, S. N. (2022). The influence of orthographic depth on multilinguals’ neural networks.Neuropsychologia, 164, 108095. [103] *Stasenko A., Hays C., Wierenga C. E., & Gollan T. H. (2020). Cognitive control regions are recruited in bilinguals' silent reading of mixed-language paragraphs.Brain and Language, 204, 104754. [104] *Stein M., Federspiel A., Koenig T., Wirth M., Lehmann C., Wiest R., .. Dierks T. (2009). Reduced frontal activation with increasing 2nd language proficiency.Neuropsychologia, 47(13), 2712-2720. [105] Sulpizio S., Del Maschio N., Fedeli D., & Abutalebi J. (2020). Bilingual language processing: A meta-analysis of functional neuroimaging studies.Neuroscience and Biobehavioral Reviews, 108, 834-853. [106] Sun Y. F., Peng D. L., Ding G. S., Qi T., Desroches A. S., & Liu L. (2015). The dynamic nature of assimilation and accommodation procedures in the brains of Chinese-English and English-Chinese bilinguals.Human Brain Mapping, 36(10), 4144-4157. [107] Tan L. H., Laird A. R., Li K., & Fox P. T. (2005). Neuroanatomical correlates of phonological processing of Chinese characters and alphabetic words: A meta-analysis.Human Brain Mapping, 25(1), 83-91. [108] Tan L. H., Liu H. L., Perfetti C. A., Spinks J. A., Fox P. T., & Gao J. H. (2001). The neural system underlying Chinese logograph reading.Neuroimage, 13(5), 836-846. [109] Tan, L. H., & Perfetti, C. A. (1999). Phonological and associative inhibition in the early stages of English word identification: Evidence from backward masking.Journal of Experimental Psychology: Human Perception and Performance, 25(1), 59-69. [110] *Tan L. H., Rajapakse J., Hong W. T., Lee W. L., & Sitoh Y. Y. (2004, December). Different hemodynamic responses in Chinese, Romanised Chinese and English reading tasks. In IEEE International Workshop on Biomedical Circuits & Systems. Singapore. [111] *Tan L. H., Spinks J. A., Feng C. M., Siok W. T., Perfetti C. A., Xiong J. H., .. Gao J. H. (2003). Neural systems of second language reading are shaped by native language.Human Brain Mapping, 18(3), 158-166. [112] Tan L. H., Spinks J. A., Gao J. H., Liu H. L., Perfetti C. A., Xiong J. H., .. Fox P. T. (2000). Brain activation in the processing of Chinese characters and words: A functional MRI study.Human Brain Mapping, 10(1), 16-27. [113] Tao L., Wang G. T., Zhu M. M., & Cai Q. (2021). Bilingualism and domain-general cognitive functions from a neural perspective: A systematic review.Neuroscience and Biobehavioral Reviews, 125, 264-295. [114] *Tham W. W. P., Liow S. J. R., Rajapakse J. C., Leong T. C., Ng S. E. S., Lim W. E. H., & Ho L. G. (2005). Phonological processing in Chinese-English bilingual biscriptals: An fMRI study.Neuroimage, 28(3), 579-587. [115] *Tian M. Y., Chen B. G., Yang H. Y., & Bi H. Y. (2019). Chinese phonological consistency effect in native and second language learners of Chinese: An fMRI study.Journal of Neurolinguistics, 49, 202-213. [116] Ullman, M. T. (2001). A neurocognitive perspective on language: The declarative/procedural model.Nature Reviews Neuroscience, 2(10), 717-726. [117] van Heuven, W. J. B., Schriefers H., Dijkstra T., & Hagoort P. (2008). Language conflict in the bilingual brain.Cerebral Cortex, 18(11), 2706-2716. [118] Vigneau M., Beaucousin V., Hervé P. Y., Duffau H., Crivello F., Houdé O., Mazoyer B., & Tzourio-Mazoyer N. (2006). Meta-analyzing left hemisphere language areas: Phonology, semantics, and sentence processing.Neuroimage, 30(4), 1414-1432. [119] *Vingerhoets G., Van Borsel J., Tesink C., van den Noort M., Deblaere K., Seurinck R., .. Achten E. (2003). Multilingualism: An fMRI study.Neuroimage, 20(4), 2181-2196. [120] Wager T. D., Sylvester C. Y. C., Lacey S. C., Nee D. E., Franklin M., & Jonides J. (2005). Common and unique components of response inhibition revealed by fMRI.Neuroimage, 27(2), 323-340. [121] *Wang, Q. (2004). Word frequency modulates BOLD signal change when bilinguals perform semantic judgments [Unpublished master’s thesis]. Tianjin Medical University. [*王琦. (2004). 中英文双语者语义加工的词频相关性磁共振脑功能成像研究 (硕士学位论文). 天津医科大学.] [122] *Wang X. D., Wang M. T., & Lee D. J. (2010). Neuroimaging study of numbers, Chinese words, and English words reading in brain.Journal of the Taiwan Institute of Chemical Engineers, 41(1), 73-80. [123] Wang X. J., Yang J. F., Yang J., Mencl W. E., Shu H., & Zevin J. D. (2015). Language differences in the brain network for reading in naturalistic story reading and lexical decision.Plos One, 10(5), e0124388. [124] *Wang Y., Lin L., Kuhl P., & Hirsch J. (2007). Mathematical and linguistic processing differs between native and second languages: An fMRI study.Brain Imaging and Behavior,1(3), 68-82. [125] *Wang Y. P., Kuhl P. K., Chen C. H., & Dong Q. (2009). Sustained and transient language control in the bilingual brain.Neuroimage,47(1), 414-422. [126] *Wang Y. P., Xue G., Chen C. S., Xue F., & Dong Q. (2007). Neural bases of asymmetric language switching in second-language learners: An ER-fMRI study.Neuroimage,35(2), 862-870. [127] *Weissberger G. H., Gollan T. H., Bondi M. W., Clark L. R., & Wierenga C. E. (2015). Language and task switching in the bilingual brain: Bilinguals are staying, not switching, experts.Neuropsychologia,66, 193-203. [128] Wu C. Y., Ho M. H. R., & Chen, S. H. A. (2012). A meta-analysis of fMRI studies on Chinese orthographic, phonological, and semantic processing.Neuroimage,63(1), 381-391. [129] Wu J. J., Yang J., Chen M., Li S. H., Zhang Z. Q., Kang C. Y., .. Guo T. M. (2019). Brain network reconfiguration for language and domain-general cognitive control in bilinguals.Neuroimage,199, 454-465. [130] Xia M. R., Wang J. H., & He Y. (2013). Brainnet viewer: A network visualization tool for human brain connectomics.Plos One,8(7), e68910. [131] Xu M., Baldauf D., Chang C. Q., Desimone R., & Tan L. H. (2017). Distinct distributed patterns of neural activity are associated with two languages in the bilingual brain.Science Advances,3(7), e1603309. [132] *Xue G., Dong Q., Jin Z., Zhang L., & Wang Y. (2004). An fMRI study with semantic access in low profciency second language learners.Neuroreport,15(5), 791-796. [133] Xue H. L., Zhao L. B., Wang Y. P., Dong Q., Chen C. S., & Xue G. (2017). Anodal transcranial direct current stimulation over the left temporoparietal cortex facilitates assembled phonology.Trends in Neuroscience and Education,8-9, 10-17. [134] Yang J. F., Shu H., McCandliss B. D., & Zevin J. D. (2013). Orthographic influences on division of labor in learning to read Chinese and English: Insights from computational modeling.Bilingualism-Language and Cognition,16(2), 354-366. [135] Yang J. F., Wang X. J., Shu H., & Zevin J. D. (2012). Task by stimulus interactions in brain responses during Chinese character processing.Neuroimage,60(2), 979-990. [136] *You H. L., Gaab N., Wei N., Cheng-Lai A., Wang Z. K., Jian J., .. Ding G. S. (2011). Neural deficits in second language reading: fMRI evidence from Chinese children with English reading impairment.Neuroimage,57(3), 760-770. [137] *Youn, Y. C., & Shim, J. (2011). The differences of cerebral response to the Korean and English word stimuli.The Jungang Journal of English Language and Literature,53(2), 199-216. [138] *Yu A. Y., Chen M. S. Y., Cherodath S., Hung D. L., Tzeng O. J. L., & Wu D. H. (2019). Neuroimaging evidence for sensitivity to orthography-to-phonology conversion in native readers and foreign learners of Chinese.Journal of Neurolinguistics,50, 53-70. [139] Zhan M. Y., Pallier C., Agrawal A., Dehaene S., & Cohen L. (2023). Does the visual word form area split in bilingual readers? A millimeter-scale 7-T fMRI study.Science Advances,9(14), eadf6140. [140] *Zhang Y., Huang P. Y., Song Z., Fang L., Shen T., Li Y., .. Xie P. (2014). In-context language control with production tasks in bilinguals: An fMRI study.Brain Research,1585, 131-140. [141] *Zhang Y., Wang K. C., Yue C., Gao S., Huang P. Y., Wang T., .. Wu Y. J. (2019). Prefrontal sensitivity to changes in language form and semantic content during speech production.Brain and Language,194, 23-34. [142] *Zhang Y., Wang T., Huang P. Y., Li D., Qiu J., Shen T., & Xie P. (2015). Free language selection in the bilingual brain: An event-related fMRI study.Scientific Reports,5(1), 11704. [143] *Zhao J., Li Q. L., Wang J. J., Yang Y., Deng Y., & Bi H. Y. (2012). Neural basis of phonological processing in second language reading: An fMRI study of Chinese regularity effect.Neuroimage,60(1), 419-425. [144] Zhao J. J., Wang X. Y., Frost S. J., Sun W., Fang S. Y., Mencl W. E., .. Rueckl J. G. (2014). Neural division of labor in reading is constrained by culture: A training study of reading Chinese characters.Cortex,53, 90-106. |
| [1] | 李忻奕, 贺嘉玺, 肖涵, 刘筱笛, 周广玉. 以柔克刚:自我关怀与韧性关系的三水平元分析[J]. 心理学报, 2026, 58(9): 1683-1697. |
| [2] | 陈一笛, 马金金, 甘怡群. 应激与心理健康曲线关系的三水平元分析[J]. 心理学报, 2026, 58(9): 1698-1719. |
| [3] | 刘荣, 张双喜, 孙潇, 张桂敏, 宋耀武. 情绪特异性还是普遍性?——抑郁患者抑制控制损伤的ALE元分析[J]. 心理学报, 2026, 58(10): 2022-2034. |
| [4] | 柳武妹, 王璐, 黄蕾. 营销情境中的红蓝色彩对消费者的态度和行为会产生差异化影响吗?来自元分析和实验的证据[J]. 心理学报, 2026, 58(10): 2121-2138. |
| [5] | 何全兴, 李兆岚, 杨海波. 物质成瘾患者和行为成瘾患者在纹状体和前额叶激活的异同:基于双系统模型的元分析[J]. 心理学报, 2025, 57(8): 1333-1348. |
| [6] | 林荣茂, 余巧华, 胡添祥, 张九妹, 叶玉珊, 连榕. 敬畏感与亲社会行为关系的三水平和结构方程模型元分析[J]. 心理学报, 2025, 57(4): 631-651. |
| [7] | 陆嘉琦, 李雨斯, 何贵兵. 双相障碍患者的风险决策偏好:来自三水平元分析的证据[J]. 心理学报, 2025, 57(1): 100-124. |
| [8] | 苑明亮, 伍俊辉, 金淑娴, 林靓, 寇彧, Paul A. M. Van Lange. 中国社会陌生人之间合作行为的变迁:基于社会困境研究的元分析(1999~2019)[J]. 心理学报, 2024, 56(9): 1159-1175. |
| [9] | 王祥坤, 辛自强, 侯友. 我国大中学生道德推脱水平的变迁及宏观成因[J]. 心理学报, 2024, 56(7): 859-875. |
| [10] | 侯娟, 贾可可, 方晓义. 近20年中国夫妻婚姻满意度发展趋势与社会变迁[J]. 心理学报, 2024, 56(7): 895-910. |
| [11] | 尹华站, 肖春花, 夏安妮, 袁中静, 崔晓冰, 李丹. 基本情绪对时距知觉的影响: 来自三水平元分析和网络元分析的证据[J]. 心理学报, 2024, 56(12): 1676-1690. |
| [12] | 孟现鑫, 俞德霖, 陈怡静, 张玲, 傅小兰. 儿童期创伤与共情的关系:一项三水平元分析[J]. 心理学报, 2023, 55(8): 1285-1300. |
| [13] | 李超平, 孟雪, 胥彦, 蓝媛美. 家庭支持型主管行为对员工的影响与作用机制:基于元分析的证据[J]. 心理学报, 2023, 55(2): 257-271. |
| [14] | 靳娟娟, 邵蕾, 黄潇潇, 张亚利, 俞国良. 社会排斥与攻击的关系:一项元分析[J]. 心理学报, 2023, 55(12): 1979-1996. |
| [15] | 孙亚茹, 刘泽军, 段亚杰, 陈宁, 刘伟. 协作如何减少记忆错误:一项元分析研究[J]. 心理学报, 2023, 55(11): 1780-1792. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||