心理学报 ›› 2026, Vol. 58 ›› Issue (10): 2022-2034.doi: 10.3724/SP.J.1041.2026.2022 cstr: 32110.14.2026.2022
刘荣, 张双喜, 孙潇, 张桂敏, 宋耀武
收稿日期:2025-12-08
发布日期:2026-08-04
出版日期:2026-10-25
通讯作者:
宋耀武, E-mail: syw@hbu.edu.cn
基金资助:LIU Rong, ZHANG Shuangxi, SUN Xiao, ZHANG Guimin, SONG Yaowu
Received:2025-12-08
Online:2026-08-04
Published:2026-10-25
摘要: 抑制控制能力受损是影响抑郁症发病的关键因素之一, 但这种损伤是情绪特异性的还是普遍性的尚不明确。本研究采用激活似然估计法(ALE), 整合任务态脑成像研究, 分析和比较情绪性与非情绪性抑制控制任务下重性抑郁(Major Depressive Disorder, MDD)患者与健康对照组的脑激活差异。经文献检索与筛选, 共纳入19项研究, 133个有效坐标。结果发现:(1)在情绪性抑制控制任务中, MDD患者右侧额中回出现补偿性激活, 左侧额中回和右侧额下回激活减弱; (2)在非情绪性抑制控制任务中, 未发现跨研究一致的差异脑区。该结果提示, MDD患者的抑制控制能力损伤可能是情绪特异性的, 损伤脑区主要集中于前额叶。研究结果为探索抑制控制在抑郁症发生和维持中的作用提供了方向性启发, 并为开发基于抑制控制的靶向干预提供了参考。
中图分类号:
刘荣, 张双喜, 孙潇, 张桂敏, 宋耀武. (2026). 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. 心理学报, 58(10), 2022-2034.
LIU Rong, ZHANG Shuangxi, SUN Xiao, ZHANG Guimin, SONG Yaowu. (2026). Emotion-specific or general? An ALE meta-analysis of inhibitory control impairments in patients with depression. Acta Psychologica Sinica, 58(10), 2022-2034.
| (*表示元分析所用文献) [1] Aarts K., Vanderhasselt M. A., Otte G., Baeken C., & Pourtois G. (2013). Electrical brain imaging reveals the expression and timing of altered error monitoring functions in major depression.Journal of Abnormal Psychology, 122(4), 939-950. [2] Acar F., Seurinck R., Eickhoff S. B., & Moerkerke B. (2018). Assessing robustness against potential publication bias in Activation Likelihood Estimation (ALE) meta- analyses for fMRI.PloS One, 13(11), e0208177. [3] *Alders G. L., Davis A. D., MacQueen G., Strother S. C., Hassel S., Zamyadi M., ... CAN-BIND Investigator Team. (2019). Reduced accuracy accompanied by reduced neural activity during the performance of an emotional conflict task by unmedicated patients with major depression: A CAN-BIND fMRI study.Journal of Affective Disorders, 257, 765-773. [4] Apšvalka D., Ferreira C. S., Schmitz T. W., Rowe J. B., & Anderson M. C. (2022). Dynamic targeting enables domain-general inhibitory control over action and thought by the prefrontal cortex.Nature Communications, 13(1), 274. [5] Barbour T., Holmes A. J., Farabaugh A. H., DeCross S. N., Coombs G., Boeke E. A., ... Holt D. J. (2020). Elevated amygdala activity in young adults with familial risk for depression: A potential marker of low resilience.Biological Psychiatry: Cognitive Neuroscience and Neuroimaging, 5(2), 194-202. [6] Beauregard, M. (2007). Mind does really matter: Evidence from neuroimaging studies of emotional self-regulation, psychotherapy, and placebo effect.Progress in Neurobiology, 81(4), 218-236. [7] Boen R., Raud L., & Huster R. J. (2022). Inhibitory control and the structural parcelation of the right inferior frontal gyrus.Frontiers in Human Neuroscience, 16, 787079. [8] Botvinick M. M., Braver T. S., Barch D. M., Carter C. S., & Cohen J. D. (2001). Conflict monitoring and cognitive control.Psychological Review, 108(3), 624-652. [9] Buhle J. T., Silvers J. A., Wager T. D., Lopez R., Onyemekwu C., Kober H., ... Ochsner K. N. (2014). Cognitive reappraisal of emotion: A meta-analysis of human neuroimaging studies.Cerebral Cortex, 24(11), 2981-2990. [10] Cane C., Carcone D., Gardhouse K., Lee A. C. H., & Ruocco A. C. (2023). An exploratory study of functional brain activation underlying response inhibition in major depressive disorder and borderline personality disorder.PloS One, 18(1), e0280215. [11] *Carew C. L., Milne A. M., Tatham E. L., MacQueen G. M., & Hall G. B. (2013). Neural systems underlying thought suppression in young women with, and at-risk, for depression.Behavioural Brain Research, 257, 13-24. [12] *Chechko N., Augustin M., Zvyagintsev M., Schneider F., Habel U., & Kellermann T. (2013). Brain circuitries involved in emotional interference task in major depression disorder.Journal of Affective Disorders, 149(1-3), 136-145. [13] Colich N. L., Foland-Ross L. C., Eggleston C., Singh M. K., & Gotlib I. H. (2016). Neural aspects of inhibition following emotional primes in depressed adolescents.Journal of Clinical Child & Adolescent Psychology, 45(1), 21-30. [14] *Crane N. A., Jenkins L. M., Dion C., Meyers K. K., Weldon A. L., Gabriel L. B., ... Langenecker S. A. (2016). Comorbid anxiety increases cognitive control activation in major depressive disorder.Depression and Anxiety, 33(10), 967-977. [15] Cristofori I., Cohen-Zimerman S., & Grafman J. (2019). Executive functions.Handbook of Clinical Neurology, 163, 197-219. [16] *Dai Q., Yin X., Li H., & Feng Z. (2018). Orbito-frontal cortex mechanism of inhibition of return in current and remitted depression.Human Brain Mapping, 39(7), 2941-2954. [17] Davey C. G., Yücel M., Allen N. B., & Harrison B. J. (2012). Task-related deactivation and functional connectivity of the subgenual cingulate cortex in major depressive disorder.Frontiers in Psychiatry, 3, 14. [18] *Dichter G. S., Felder J. N., & Smoski M. J. (2009). Affective context interferes with cognitive control in unipolar depression: An fMRI investigation.Journal of Affective Disorders, 114(1-3), 131-142. [19] Diener C., Kuehner C., Brusniak W., Ubl B., Wessa M., & Flor H. (2012). A meta-analysis of neurofunctional imaging studies of emotion and cognition in major depression.Neuroimage, 61(3), 677-685. [20] Diler R. S., Pan L. A., Segreti A., Ladouceur C. D., Forbes E., Cela S. R., ... Phillips M. L. (2014). Differential anterior cingulate activity during response inhibition in depressed adolescents with bipolar and unipolar major depressive disorder.Journal of the Canadian Academy of Child and Adolescent Psychiatry, 23(1), 10-19. [21] Ehlis A. C., Zarantonello L., Haeussinger F. B., Rohe T., Rosenbaum D., Fallgatter A. J., & Maier M. J. (2024). The DLPFC is centrally involved in resolving Stroop conflicts, suppressing distracting sensory input within the auditory and visual system.Frontiers in Psychology, 15, 1427455. [22] *Elliott R., Rubinsztein J. S., Sahakian B. J., & Dolan R. J. (2002). The neural basis of mood-congruent processing biases in depression. Archives of General Psychiatry, 59(7), 597-604. [23] *Eugène F., Joormann J., Cooney R. E., Atlas L. Y., & Gotlib I. H. (2010). Neural correlates of inhibitory deficits in depression.Psychiatry Research: Neuroimaging, 181(1), 30-35. [24] *Fales C. L., Barch D. M., Rundle M. M., Mintun M. A., Snyder A. Z., Cohen J. D., ... Sheline Y. I. (2008). Altered emotional interference processing in affective and cognitive-control brain circuitry in major depression.Biological Psychiatry, 63(4), 377-384. [25] Fascher M., Nowaczynski S., & Muehlhan M. (2024). Substance use disorders are characterised by increased voxel-wise intrinsic measures in sensorimotor cortices: An ALE meta-analysis.Neuroscience and Biobehavioral Reviews, 162, 105712. [26] Ferri J., Eisendrath S. J., Fryer S. L., Gillung E., Roach B. J., & Mathalon D. H. (2017). Blunted amygdala activity is associated with depression severity in treatment-resistant depression.Cognitive, Affective, & Behavioral Neuroscience, 17(6), 1221-1231. [27] Foland-Ross L. C., Hamilton J. P., Joormann J., Berman M. G., Jonides J., & Gotlib I. H. (2013). The neural basis of difficulties disengaging from negative irrelevant material in major depression.Psychological Science, 24(3), 334-344. [28] Friedrich, M. J. (2017). Depression Is the Leading Cause of Disability Around the World.JAMA, 317(15), 1517. [29] Fu X., Ding Y., Chen J., Liu F., Li H., Zhao J., & Guo W. (2022). Altered brain functional asymmetry in patients with major depressive disorder related to gastrointestinal symptoms.Frontiers in Neuroscience, 15, 797598. [30] Galkin, S. A., & Peshkovskaya, A. (2021). P.0675 Inhibitory control in therapy resistant patients with major depressive disorder.European Neuropsychopharmacology, 53(1), S495. [31] Gentili C., Messerotti Benvenuti S., Lettieri G., Costa C., & Cecchetti L. (2019). ROI and phobias: The effect of ROI approach on an ALE meta‐analysis of specific phobias.Human Brain Mapping, 40(6), 1814-1828. [32] Grahn J. A., Parkinson J. A., & Owen A. M. (2008). The cognitive functions of the caudate nucleus. Progress in Neurobiology, 86(3), 141-155. [33] Halari R., Simic M., Pariante C. M., Papadopoulos A., Cleare A., Brammer M., Fombonne E., & Rubia K. (2009). Reduced activation in lateral prefrontal cortex and anterior cingulate during attention and cognitive control functions in medication-naïve adolescents with depression compared to controls.Journal of Child Psychology and Psychiatry, 50(3), 307-316. [34] He Q. X., Li Z. L., & Yang H. B. (2025). Dual-system perspectives: A meta-analytic comparison of striatal and prefrontal cortex activation patterns in substance addiction versus behavioral addiction.Acta Psychologica Sinica, 57(8), 1333-1348. [何全兴, 李兆岚, 杨海波. (2025). 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.心理学报, 57(8), 1333-1348.] [35] Henriques, J. B., & Davidson, R. J. (1991). Left frontal hypoactivation in depression.Journal of Abnormal Psychology, 100(4), 535-545. [36] Imajo N., Matsuzaki Y., Kobayashi A., Sakaki K., Nouchi R., & Kawashima R. (2024). Self-choice emotion regulation enhances stress reduction: Neural basis of self-choice emotion regulation.Brain Sciences, 14(11), 1077. [37] Javaheripour N., Colic L., Opel N., Li M., Maleki Balajoo S., Chand T., ... Walter M. (2023). Altered brain dynamic in major depressive disorder: State and trait features.Translational Psychiatry, 13(1), 261. [38] Jaworska N., Yang X. R., Knott V., & MacQueen G. (2015). A review of fMRI studies during visual emotive processing in major depressive disorder.The World Journal of Biological Psychiatry: The Official Journal of the World Federation of Societies of Biological Psychiatry, 16(7), 448-471. [39] Joormann, J., & Gotlib, I. H. (2010). Emotion regulation in depression: Relation to cognitive inhibition.Cognition and Emotion, 24(2), 281-298. [40] Kang W., Hernández S. P., Rahman M. S., Voigt K., & Malvaso A. (2022). Inhibitory control development: A network neuroscience perspective.Frontiers in Psychology, 13, 651547. [41] Kikuchi T., Miller J. M., Schneck N., Oquendo M. A., Mann J. J., Parsey R. V., & Keilp J. G. (2012). Neural responses to incongruency in a blocked-trial Stroop fMRI task in major depressive disorder.Journal of Affective Disorders, 143(1-3), 241-247. [42] *Korgaonkar M. S., Grieve S. M., Etkin A., Koslow S. H., & Williams L. M. (2013). Using standardized fMRI protocols to identify patterns of prefrontal circuit dysregulation that are common and specific to cognitive and emotional tasks in major depressive disorder: First wave results from the iSPOT-D study.Neuropsychopharmacology, 38(5), 863-871. [43] *Langenecker S. A., Kennedy S. E., Guidotti L. M., Briceno E. M., Own L. S., Hooven T., ... Zubieta J. K. (2007). Frontal and limbic activation during inhibitory control predicts treatment response in major depressive disorder.Biological Psychiatry, 62(11), 1272-1280. [44] Li Y., Liu X., Li J., Zhang Q., Pan N., Luo K., ... Gong Q. (2025). Common and distinct patterns of brain activity alterations during inhibitory control in depression and psychostimulant users: A comparative meta-analysis of task-based fMRI studies.Psychological Medicine, 55, e218. [45] Lisiecka D. M., Carballedo A., Fagan A. J., Connolly G., Meaney J., & Frodl T. (2012). Altered inhibition of negative emotions in subjects at family risk of major depressive disorder.Journal of Psychiatric Research, 46(2), 181-188. [46] *Liu C., Dai J., Chen Y., Qi Z., Xin F., Zhuang Q., ... Becker B. (2021). Disorder-and emotional context-specific neurofunctional alterations during inhibitory control in generalized anxiety and major depressive disorder.Neuroimage: Clinical, 30, 102661. [47] Loeffler L. A., Radke S., Habel U., Ciric R., Satterthwaite T. D., Schneider F., & Derntl B. (2018). The regulation of positive and negative emotions through instructed causal attributions in lifetime depression-A functional magnetic resonance imaging study.Neuroimage: Clinical, 20, 1233-1245. [48] Lojowska M., Gerbracht J. M., Engelmann J. B., Roelofs K., & Mulckhuyse M. (2025). A transcranial magnetic stimulation study on the role of the right angular gyrus in orienting and reorienting of attention toward threat.Cognitive, Affective, & Behavioral Neuroscience, 25(3), 668-678. [49] Mansueto S. P., Romeo Z., Angrilli A., & Spironelli C. (2025). Emotional pictures in the brain and their interaction with the task: A fine-grained fMRI coordinate-based meta-analysis study.Neuroimage, 305, 120986. [50] Martínez-Amorós E., Cardoner N., Gálvez V., de Arriba-Arnau A., Soria V., Palao D. J., Menchón J. M., & Urretavizcaya M. (2021). Can the addition of maintenance electroconvulsive therapy to pharmacotherapy improve relapse prevention in severe major depressive disorder? A randomized controlled trial.Brain Sciences, 11(10), 1340. [51] Matsubara T., Matsuo K., Nakashima M., Nakano M., Harada K., Watanuki T., ... Watanabe Y. (2014). Prefrontal activation in response to emotional words in patients with bipolar disorder and major depressive disorder.Neuroimage, 85(Part 1), 489-497. [52] *Matthews S., Simmons A., Strigo I., Gianaros P., Yang T., & Paulus M. (2009). Inhibition-related activity in subgenual cingulate is associated with symptom severity in major depression.Psychiatry Research: Neuroimaging, 172(1), 1-6. [53] Nishizawa Y., Kanazawa T., Kawabata Y., Matsubara T., Maruyama S., Kawano M., ... Yoneda H. (2019). fNIRS Assessment during an Emotional Stroop Task among Patients with Depression: Replication and Extension.Psychiatry Investigation, 16(1), 80-86. [54] Ochsner K. N.,& Gross, J. J. (2004). Thinking makes it so: A social cognitive neuroscience approach to emotion regulation In R F Baumeister & K D Vohs (Eds), Handbook of self-regulation: Research, theory, and applications (pp 229-255) Guilford Press A social cognitive neuroscience approach to emotion regulation. In R. F. Baumeister & K. D. Vohs (Eds.), Handbook of self-regulation: Research, theory, and applications (pp. 229-255). Guilford Press. [55] Page M. J., McKenzie J. E., Bossuyt P. M., Boutron I., Hoffmann T. C., Mulrow C. D., ... Moher D. (2021). The PRISMA 2020 statement: An updated guideline for reporting systematic reviews.International Journal of Surgery, 88, 105906. [56] Palser E. R., Morris N. A., Veziris C. R., Holley S. R., Wallman-Jones A., Roy A. R. K., ... Sturm V. E. (2025). Role of left lateral prefrontal cortex in positive emotion regulation: Insights from dyslexia. Cognitive, Affective & Behavioral Neuroscience, 25(6), 1638-1654. [57] Peckham A. D., McHugh R. K., & Otto M. W. (2010). A meta-analysis of the magnitude of biased attention in depression.Depression and Anxiety, 27(12), 1135-1142. [58] Perini G., Cotta Ramusino M., Sinforiani E., Bernini S., Petrachi R., & Costa A. (2019). Cognitive impairment in depression: Recent advances and novel treatments.Neuropsychiatric Disease and Treatment, 15, 1249-1258. [59] Piani M. C., Maggioni E., Delvecchio G., & Brambilla P. (2022). Sustained attention alterations in major depressive disorder: A review of fMRI studies employing Go/No-Go and CPT tasks.Journal of Affective Disorders, 303, 98-113. [60] Quigley L., Wen A., & Dobson K. S. (2020). Cognitive control over emotional information in current and remitted depression.Behaviour Research and Therapy, 132, 103658. [61] Rey-Mermet A., Gade M., & Oberauer K. (2018). Should we stop thinking about inhibition? Searching for individual and age differences in inhibition ability.Journal of Experimental Psychology: Learning, Memory, and Cognition, 44(4), 501-526. [62] *Richard-Devantoy S., Ding Y., Lepage M., Turecki G., & Jollant F. (2016). Cognitive inhibition in depression and suicidal behavior: A neuroimaging study.Psychological Medicine, 46(5), 933-944. [63] *Sacchet M. D., Levy B. J., Hamilton J. P., Maksimovskiy A., Hertel P. T., Joormann J., ... Gotlib I. H. (2017). Cognitive and neural consequences of memory suppression in major depressive disorder.Cognitive, Affective & Behavioral Neuroscience, 17(1), 77-93. [64] Schnellbächer G. J., Rajkumar R., Veselinović T., Ramkiran S., Hagen J., Shah N. J., & Neuner I. (2022). Structural alterations of the insula in depression patients - A 7-Tesla-MRI study.Neuroimage: Clinical, 36, 103249. [65] Sheena M. K., Jimmy J., Burkhouse K. L., & Klumpp H. (2021). Anterior cingulate cortex activity during attentional control corresponds with rumination in depression and social anxiety.Psychiatry Research: Neuroimaging, 317, 111385. [66] Shen N., Chen Z., Sun H., Tian S., Wang Y., Huang Y., ... Lu Q. (2025). Altered dynamic brain activity of recent suicidal ideation and suicidal attempt in depression patients and its relationship with cognitive function. Journal of Affective Disorders, 377, 35-44. [67] Shetty T., Kashyap H., Mehta U. M., & Binu V. S. (2025). Executive function and emotion regulation in depressive and anxiety disorders: A cross-sectional study. Indian Journal of Psychological Medicine. Advance online publication. https://doi.org/10.1177/025371762513405 [68] Shimony O., Einav N., Bonne O., Jordan J. T., Van Vleet T. M., & Nahum M. (2021). The association between implicit and explicit affective inhibitory control, rumination and depressive symptoms.Scientific Reports, 11(1), 11490. [69] *Simeonova D., Paunova R., Stoyanova K., Todeva-Radneva A., Kandilarova S., & Stoyanov D. (2022). Functional MRI correlates of stroop N-back test underpin the diagnosis of major depression.Journal of Integrative Neuroscience, 21(4), 113. [70] Sindermann L., Leehr E. J., Redlich R., Meinert S., Böhnlein J., Grotegerd D., ... Dannlowski U. (2022). Emotion processing in depression with and without comorbid anxiety disorder. Journal of Affective Disorders, 314, 133-142. [71] Smith, S. M., & Nichols, T. E. (2009). Threshold-free cluster enhancement: Addressing problems of smoothing, threshold dependence and localisation in cluster inference.Neuroimage, 44(1), 83-98. [72] Sridhar M., Azeez A., & Lissemore J. I. (2024). TMS-fMRI supports roles for VLPFC and downstream regions in cognitive reappraisal.Journal of Neuroscience, 44(18), e2213232024. [73] Stevens E. S., Funkhouser C. J., Auerbach R. P., Talati A., Gameroff M. G., Posner J. E., ... Shankman S. A. (2023). Inhibition predicts the course of depression and anxiety symptoms among adolescents: The moderating role of familial risk.The Journal of Nervous and Mental Disease, 211(2), 100-107. [74] Tamm S., Harmer C. J., Schiel J., Holub F., Rutter M. K., Spiegelhalder K., & Kyle S. D. (2022). No association between amygdala responses to negative faces and depressive symptoms: Cross-sectional data from 28, 638 individuals in the UK Biobank cohort.American Journal of Psychiatry, 179(7), 509-513. [75] Taylor W. D., Butters M. A., Elson D., Szymkowicz S. M., Jennette K., Baker K., ... Ajilore O. (2025). Reconsidering remission in recurrent late-life depression: Clinical presentation and phenotypic predictors of relapse following successful antidepressant treatment.Psychological Medicine, 54(16), 4896-4907. [76] Thiebaut de Schotten M., Dell'Acqua F., Forkel S. J., Simmons A., Vergani F., Murphy D. G., & Catani M. (2011). A lateralized brain network for visuospatial attention.Nature Neuroscience, 14(10), 1245-1246. [77] Tolomeo, S., & Yu, R. (2022). Brain network dysfunctions in addiction: A meta-analysis of resting-state functional connectivity.Translational Psychiatry, 12(1), 41. [78] Torralbo A., Kelley T. A., Rees G., & Lavie N. (2016). Attention induced neural response trade-off in retinotopic cortex under load. Scientific Reports, 6, 33041. [79] Tozzi L., Goldstein-Piekarski A. N., Korgaonkar M. S., & Williams L. M. (2020). Connectivity of the cognitive control network during response inhibition as a predictive and response biomarker in major depression: Evidence from a randomized clinical trial.Biological Psychiatry, 87(5), 462-472. [80] Turkeltaub P. E., Eden G. F., Jones K. M., & Zeffiro T. A. (2002). Meta-analysis of the functional neuroanatomy of single-word reading: Method and validation.Neuroimage, 16(3), 765-780. [81] Tyler S. C., Dasgupta S., Agosta S., Battelli L., & Grossman E. D. (2015). Functional connectivity of parietal cortex during temporal selective attention.Cortex, 65, 195-207. [82] *Wagner G., Sinsel E., Sobanski T., Köhler S., Marinou V., Mentzel H. J., Sauer H., & Schlösser R. G. (2006). Cortical inefficiency in patients with unipolar depression: An event-related FMRI study with the Stroop task.Biological Psychiatry, 59(10), 958-965. [83] Wan L., Pei P., Zhang Q., & Gao W. (2024). Specificity in the commonalities of inhibition control: Using meta- analysis and regression analysis to identify the key brain regions in psychiatric disorders.European Psychiatry, 67(1), e69. [84] *Wang L., LaBar K. S., Smoski M., Rosenthal M. Z., Dolcos F., Lynch T. R., Krishnan R. R., & McCarthy G. (2008). Prefrontal mechanisms for executive control over emotional distraction are altered in major depression.Psychiatry Research: Neuroimaging, 163(2), 143-155. [85] Wheeler R. E., Davidson R. J., & Tomarken A. J. (1993). Frontal brain asymmetry and emotional reactivity: A biological substrate of affective style.Psychophysiology, 30(1), 82-89. [86] Yan H., Lau W. K. W., Eickhoff S. B., Long J., Song X., Wang C., ... Zhang R. (2022). Charting the neural circuits disruption in inhibitory control and its subcomponents across psychiatric disorders: A neuroimaging meta-analysis.Progress in Neuro-Psychopharmacology & Biological Psychiatry, 119, 110618. [87] *Yang T., Lei X., & Anderson M. (2016). Decreased inhibitory control of negative information in directed forgetting.International Journal of Psychophysiology, 100, 44-51. [88] Zacková L., Jáni M., Brázdil M., Nikolova Y. S., & Marečková K. (2021). Cognitive impairment and depression: Meta-analysis of structural magnetic resonance imaging studies.Neuroimage: Clinical, 32, 102830. [89] Zheng M., Da H., Pan X., Bian Y., Li X., Xiao Q., ... Zhang Y. (2023). Dorsolateral prefrontal activation in depressed young adults with and without suicidal ideation during an emotional autobiographical memory task: A fNIRS study.Journal of Affective Disorders, 326, 216-224. [90] Zhou H. X., Chen X., Shen Y. Q., Li L., Chen N. X., Zhu Z. C., ... Yan C. G. (2020). Rumination and the default mode network: Meta-analysis of brain imaging studies and implications for depression.NeuroImage, 206, 116287. [91] Zhuang Q., Qiao L., Xu L., Yao S., Chen S., Zheng X., ... Becker B. (2023). The right inferior frontal gyrus as pivotal node and effective regulator of the basal ganglia- thalamocortical response inhibition circuit. Psychoradiology, 3, kkad016. [92] Zuo Z., Ran S., Wang Y., Li C., Han Q., Tang Q., ... Li H. (2018). Altered structural covariance among the dorsolateral prefrontal cortex and amygdala in treatment- naive patients with major depressive disorder.Frontiers in Psychiatry, 9, 323. |
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