Characterizing the subtype of anhedonia in major depressive disorder: A symptom-specific multimodal MRI study
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Meng Li | P. Ma | Lingsheng Li | Xiaodan Liu | Zepu Ren
[1] Debbie M. Yee,et al. Dorsal Anterior Cingulate Cortex Encodes the Subjective Motivational Value of Cognitive Task Performance , 2020, bioRxiv.
[2] C. Pariante,et al. Characterizing anhedonia: A systematic review of neuroimaging across the subtypes of reward processing deficits in depression , 2020, Cognitive, affective & behavioral neuroscience.
[3] S. Lui,et al. Meta-analysis of cortical thickness abnormalities in medication-free patients with major depressive disorder , 2019, Neuropsychopharmacology.
[4] N. Vasic,et al. Aberrant cortical neurodevelopment in major depressive disorder. , 2019, Journal of affective disorders.
[5] S. Strother,et al. Cortical thickness in major depressive disorder: A systematic review and meta-analysis , 2019, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[6] U. Dannlowski,et al. Social anhedonia in major depressive disorder: a symptom-specific neuroimaging approach , 2018, Neuropsychopharmacology.
[7] Evan Fletcher,et al. A comparison of automated segmentation and manual tracing in estimating hippocampal volume in ischemic stroke and healthy control participants , 2018, NeuroImage: Clinical.
[8] S. Kasper,et al. Circuit Mechanisms of Reward, Anhedonia, and Depression , 2018, The international journal of neuropsychopharmacology.
[9] O. Tüscher,et al. Recovery of cortical volume and thickness after remission from acute anorexia nervosa , 2018, The International journal of eating disorders.
[10] Ruiwang Huang,et al. Common and distinct abnormal frontal-limbic system structural and functional patterns in patients with major depression and bipolar disorder , 2018, NeuroImage: Clinical.
[11] Yao Li,et al. Altered Fractional Amplitude of Low Frequency Fluctuations in Unmedicated Female Patients with Obsessive-Compulsive Disorder , 2018, 2018 40th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[12] E. Leibenluft,et al. Reward Processing in Depression: A Conceptual and Meta-Analytic Review Across fMRI and EEG Studies. , 2018, The American journal of psychiatry.
[13] Rupert Lanzenberger,et al. Cortical Thickness Estimations of FreeSurfer and the CAT12 Toolbox in Patients with Alzheimer's Disease and Healthy Controls , 2018, Journal of neuroimaging : official journal of the American Society of Neuroimaging.
[14] Lihong Wang,et al. Increased Salience Network Activity in Patients With Insomnia Complaints in Major Depressive Disorder , 2018, Front. Psychiatry.
[15] Wei Wang,et al. Gray Matter Volume Abnormalities in the Reward System in First-Episode Patients with Major Depressive Disorder , 2018, AMLTA.
[16] G. Xie,et al. Anhedonia correlates with abnormal functional connectivity of the superior temporal gyrus and the caudate nucleus in patients with first-episode drug-naive major depressive disorder. , 2017, Journal of affective disorders.
[17] R. Chan,et al. White matter microstructural abnormalities and their association with anticipatory anhedonia in depression , 2017, Psychiatry Research: Neuroimaging.
[18] Ming Zhou,et al. Intrinsic cerebral activity at resting state in adults with major depressive disorder: A meta-analysis , 2017, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[19] E. Rolls,et al. Medial reward and lateral non-reward orbitofrontal cortex circuits change in opposite directions in depression. , 2016, Brain : a journal of neurology.
[20] C. McCabe,et al. Decreased anticipated pleasure correlates with increased salience network resting state functional connectivity in adolescents with depressive symptomatology , 2016, Journal of psychiatric research.
[21] Norihiro Sadato,et al. Structural and functional associations of the rostral anterior cingulate cortex with subjective happiness , 2016, NeuroImage.
[22] V. Menon,et al. Anhedonia and general distress show dissociable ventromedial prefrontal cortex connectivity in major depressive disorder , 2016, Translational psychiatry.
[23] J. Bodurka,et al. Individual Variations in Nucleus Accumbens Responses Associated with Major Depressive Disorder Symptoms , 2016, Scientific Reports.
[24] Xiang Wang,et al. Mapping anhedonia-specific dysfunction in a transdiagnostic approach: an ALE meta-analysis , 2015, Brain Imaging and Behavior.
[25] Yonggui Yuan,et al. A comparative study of anhedonia components between major depression and schizophrenia in Chinese populations , 2015, Annals of General Psychiatry.
[26] O. Abe,et al. RELATIONSHIP BETWEEN THE CORTICAL THICKNESS AND SERUM CORTISOL LEVELS IN DRUG‐NAÏVE, FIRST‐EPISODE PATIENTS WITH MAJOR DEPRESSIVE DISORDER: A SURFACE‐BASED MORPHOMETRIC STUDY , 2015, Depression and anxiety.
[27] D. Greve,et al. Perceived life stress exposure modulates reward-related medial prefrontal cortex responses to acute stress in depression. , 2015, Journal of affective disorders.
[28] C. Büchel,et al. The brain’s response to reward anticipation and depression in adolescence: dimensionality, specificity and longitudinal predictions in a community-based sample , 2015 .
[29] Meiling Li,et al. Frequency-dependent alterations in the amplitude of low-frequency fluctuations in social anxiety disorder. , 2015, Journal of affective disorders.
[30] J. Roiser,et al. Neural correlates of change in major depressive disorder anhedonia following open-label ketamine , 2015, Journal of psychopharmacology.
[31] D. Fitzgerald,et al. Neural response to reward anticipation in those with depression with and without panic disorder. , 2014, Journal of affective disorders.
[32] Joseph M. Orr,et al. Orbitofrontal Cortex Volume and Brain Reward Response in Obesity , 2014, International Journal of Obesity.
[33] Jie Xiang,et al. Altered amplitude of low-frequency fluctuations in early and late mild cognitive impairment and Alzheimer's disease. , 2014, Current Alzheimer research.
[34] H. Blumberg,et al. Alterations in amplitude of low frequency fluctuation in treatment‐naïve major depressive disorder measured with resting‐state fMRI , 2014, Human brain mapping.
[35] Weina Zhang,et al. The neural correlates of reward-related processing in major depressive disorder: a meta-analysis of functional magnetic resonance imaging studies. , 2013, Journal of affective disorders.
[36] Li Yao,et al. Abnormal baseline brain activity in suicidal and non-suicidal patients with major depressive disorder , 2013, Neuroscience Letters.
[37] Chien-Han Lai. Gray matter volume in major depressive disorder: A meta-analysis of voxel-based morphometry studies , 2013, Psychiatry Research: Neuroimaging.
[38] Christian Gaser,et al. Cortical thickness and central surface estimation , 2013, NeuroImage.
[39] Wen-hua Liu,et al. Clinical utility of the Snaith-Hamilton-Pleasure scale in the Chinese settings , 2012, BMC Psychiatry.
[40] A. Kring,et al. The Temporal Experience of Pleasure Scale (TEPS): Exploration and Confirmation of Factor Structure in a Healthy Chinese Sample , 2012, PloS one.
[41] M. Ernst,et al. Neurobiology of decision making in depressed adolescents: a functional magnetic resonance imaging study. , 2011, Journal of the American Academy of Child and Adolescent Psychiatry.
[42] P. Thompson,et al. Algorithms to Improve the Reparameterization of Spherical Mappings of Brain Surface Meshes , 2011, Journal of neuroimaging : official journal of the American Society of Neuroimaging.
[43] Alan J. Thomas,et al. Morphometric analysis of neuronal and glial cell pathology in the caudate nucleus in late-life depression. , 2011, The American journal of geriatric psychiatry : official journal of the American Association for Geriatric Psychiatry.
[44] D. Zald,et al. Reconsidering anhedonia in depression: Lessons from translational neuroscience , 2011, Neuroscience & Biobehavioral Reviews.
[45] Christian Gaser,et al. Topological correction of brain surface meshes using spherical harmonics , 2010, MICCAI.
[46] Xi-Nian Zuo,et al. Amplitude of low-frequency oscillations in schizophrenia: A resting state fMRI study , 2010, Schizophrenia Research.
[47] Jia Huang,et al. Anticipatory and consummatory components of the experience of pleasure in schizophrenia: Cross-cultural validation and extension , 2010, Psychiatry Research.
[48] Gerty J. L. M. Lensvelt-Mulders,et al. Brain volume abnormalities in major depressive disorder: A meta‐analysis of magnetic resonance imaging studies , 2009, Human brain mapping.
[49] M. Ernst,et al. fMRI of alterations in reward selection, anticipation, and feedback in major depressive disorder. , 2009, Journal of affective disorders.
[50] L. Pelizza,et al. Anhedonia in schizophrenia and major depression: state or trait? , 2009, Annals of general psychiatry.
[51] Jean Théberge,et al. Brain activation to favorite music in healthy controls and depressed patients , 2009, Neuroreport.
[52] Jun Liu,et al. Reduced ventral anterior cingulate and amygdala volumes in medication-naïve females with major depressive disorder: A voxel-based morphometric magnetic resonance imaging study , 2007, Psychiatry Research: Neuroimaging.
[53] Michael F. Green,et al. Anhedonia in schizophrenia: Distinctions between anticipatory and consummatory pleasure , 2007, Schizophrenia Research.
[54] Y. Zang,et al. Altered baseline brain activity in children with ADHD revealed by resting-state functional MRI , 2007, Brain and Development.
[55] Soon Beom Hong,et al. Fractal dimension in human cortical surface: Multiple regression analysis with cortical thickness, sulcal depth, and folding area , 2006, Human brain mapping.
[56] C. Carter,et al. Reward-related decision-making in pediatric major depressive disorder: an fMRI study. , 2006, Journal of child psychology and psychiatry, and allied disciplines.
[57] Anders M. Dale,et al. An automated labeling system for subdividing the human cerebral cortex on MRI scans into gyral based regions of interest , 2006, NeuroImage.
[58] Paul M. Thompson,et al. A curvature-based approach to estimate local gyrification on the cortical surface , 2006, NeuroImage.
[59] Steven C. R. Williams,et al. The Neural Correlates of Anhedonia in Major Depressive Disorder , 2005, Biological Psychiatry.
[60] K. Berridge,et al. Parsing reward , 2003, Trends in Neurosciences.
[61] A. Dale,et al. Dorsal anterior cingulate cortex: A role in reward-based decision making , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[62] G. Rajkowska,et al. Postmortem studies in mood disorders indicate altered numbers of neurons and glial cells , 2000, Biological Psychiatry.
[63] K. Berridge,et al. What is the role of dopamine in reward: hedonic impact, reward learning, or incentive salience? , 1998, Brain Research Reviews.
[64] G. Schrader. Does anhedonia correlate with depression severity in chronic depression? , 1997, Comprehensive psychiatry.
[65] D. Klein. Endogenomorphic depression. A conceptual and terminological revision. , 1974, Archives of general psychiatry.
[66] Zhijun Zhang,et al. Disrupted reward circuits is associated with cognitive deficits and depression severity in major depressive disorder. , 2017, Journal of psychiatric research.
[67] R. Cooper. Diagnostic and Statistical Manual of Mental Disorders (DSM) , 2017 .
[68] Xiaowei Jiang,et al. Amplitude of low-frequency fluctuations in bipolar disorder: a resting state fMRI study. , 2014, Journal of affective disorders.
[69] Robert T. Knight,et al. The role of lateral orbitofrontal cortex in the inhibitory control of emotion , 2006 .