Attractor cortical neurodynamics, schizophrenia, and depression

被引:31
作者
Rolls, Edmund T. [1 ,2 ]
机构
[1] Oxford Ctr Computat Neurosci, Oxford, England
[2] Univ Warwick, Dept Comp Sci, Coventry, W Midlands, England
关键词
DENDRITIC SPINE PATHOLOGY; ORBITOFRONTAL CORTEX; PREFRONTAL CORTEX; WORKING-MEMORY; NMDA RECEPTOR; FUNCTIONAL ARCHITECTURE; RETROSPLENIAL CORTEX; DOPAMINE MODULATION; COGNITIVE DEFICITS; INHIBITORY NEURONS;
D O I
10.1038/s41398-021-01333-7
中图分类号
R749 [精神病学];
学科分类号
100205 ;
摘要
The local recurrent collateral connections between cortical neurons provide a basis for attractor neural networks for memory, attention, decision-making, and thereby for many aspects of human behavior. In schizophrenia, a reduction of the firing rates of cortical neurons, caused for example by reduced NMDA receptor function or reduced spines on neurons, can lead to instability of the high firing rate attractor states that normally implement short-term memory and attention in the prefrontal cortex, contributing to the cognitive symptoms. Reduced NMDA receptor function in the orbitofrontal cortex by reducing firing rates may produce negative symptoms, by reducing reward, motivation, and emotion. Reduced functional connectivity between some brain regions increases the temporal variability of the functional connectivity, contributing to the reduced stability and more loosely associative thoughts. Further, the forward projections have decreased functional connectivity relative to the back projections in schizophrenia, and this may reduce the effects of external bottom-up inputs from the world relative to internal top-down thought processes. Reduced cortical inhibition, caused by a reduction of GABA neurotransmission, can lead to instability of the spontaneous firing states of cortical networks, leading to a noise-induced jump to a high firing rate attractor state even in the absence of external inputs, contributing to the positive symptoms of schizophrenia. In depression, the lateral orbitofrontal cortex non-reward attractor network system is over-connected and has increased sensitivity to non-reward, providing a new approach to understanding depression. This is complemented by under-sensitivity and under-connectedness of the medial orbitofrontal cortex reward system in depression.
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页数:17
相关论文
共 124 条
[1]   Dopamine's Actions in Primate Prefrontal Cortex: Challenges for Treating Cognitive Disorders [J].
Arnsten, Amy F. T. ;
Wang, Min ;
Paspalas, Constantinos D. .
PHARMACOLOGICAL REVIEWS, 2015, 67 (03) :681-696
[2]   Assessing the mechanism of response in the retrosplenial cortex of good and poor navigators [J].
Auger, Stephen D. ;
Maguire, Eleanor A. .
CORTEX, 2013, 49 (10) :2904-2913
[3]   The NMDA receptor 'glycine modulatory site' in schizophrenia: D-serine, glycine, and beyond [J].
Balu, Darrick T. ;
Coyle, Joseph T. .
CURRENT OPINION IN PHARMACOLOGY, 2015, 20 :109-115
[4]   Cognitive deficits caused by prefrontal cortical and hippocampal neural disinhibition [J].
Bast, Tobias ;
Pezze, Marie ;
McGarrity, Stephanie .
BRITISH JOURNAL OF PHARMACOLOGY, 2017, 174 (19) :3211-3225
[5]   The evolution of the cognitive model of depression and its neurobiological correlates [J].
Beck, Aaron T. .
AMERICAN JOURNAL OF PSYCHIATRY, 2008, 165 (08) :969-977
[6]   Amygdalocortical Circuitry in Schizophrenia: From Circuits to Molecules [J].
Benes, Francine M. .
NEUROPSYCHOPHARMACOLOGY, 2010, 35 (01) :239-257
[7]   Neurocognitive effects of clozapine, olanzapine, risperidone, and haloperidol in patients with chronic schizophrenia or schizoaffective disorder [J].
Bilder, RM ;
Goldman, RS ;
Volavka, J ;
Czobor, P ;
Hoptman, M ;
Sheitman, B ;
Lindenmayer, JP ;
Citrome, L ;
McEvoy, J ;
Kunz, M ;
Chakos, M ;
Cooper, TB ;
Horowitz, TL ;
Lieberman, JA .
AMERICAN JOURNAL OF PSYCHIATRY, 2002, 159 (06) :1018-1028
[8]   Effects of neuromodulation in a cortical network model of object working memory dominated by recurrent inhibition [J].
Brunel, N ;
Wang, XJ .
JOURNAL OF COMPUTATIONAL NEUROSCIENCE, 2001, 11 (01) :63-85
[9]  
Bubb Emma J, 2017, Brain Neurosci Adv, V1, DOI 10.1177/2398212817723443
[10]   The precuneus: a review of its functional anatomy and behavioural correlates [J].
Cavanna, AE ;
Trimble, MR .
BRAIN, 2006, 129 :564-583