Top-down and bottom-up control of stress-coping

被引:80
作者
de Kloet, Edo R. [1 ]
de Kloet, Sybren F. [2 ]
de Kloet, Carien S. [3 ]
de Kloet, Annette D. [4 ]
机构
[1] Leiden Univ, Med Ctr, Dept Med, Div Endocrinol, Leiden, Netherlands
[2] Vrije Univ Amsterdam, Ctr Neurogen & Cognit Res, Dept Integrat Neurophysiol, Amsterdam, Netherlands
[3] Fdn Ctr 45, Arq Psychotrauma Expert Grp, Leiden, Netherlands
[4] Univ Florida, Dept Physiol & Funct Genom, Gainesville, FL USA
关键词
adipose tissue; brain; cognitive flexibility; glucocorticoid receptors; limbic-prefrontocortical circuitry; mineralocorticoid receptors; PTSD; MEDIAL PREFRONTAL CORTEX; MINERALOCORTICOID RECEPTOR BLOCKADE; EXON 1(F) METHYLATION; FORCED SWIM TEST; GLUCOCORTICOID-RECEPTOR; BEHAVIORAL-RESPONSES; INDIVIDUAL-DIFFERENCES; INDUCED ENHANCEMENT; DORSAL HIPPOCAMPUS; CUMULATIVE STRESS;
D O I
10.1111/jne.12675
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
In this 30th anniversary issue review, we focus on the glucocorticoid modulation of limbic-prefrontocortical circuitry during stress-coping. This action of the stress hormone is mediated by mineralocorticoid receptors (MRs) and glucocorticoid receptors (GRs) that are co-expressed abundantly in these higher brain regions. Via both receptor types, the glucocorticoids demonstrate, in various contexts, rapid nongenomic and slower genomic actions that coordinate consecutive stages of information processing. MR-mediated action optimises stress-coping, whereas, in a complementary fashion, the memory storage of the selected coping strategy is promoted via GR. We highlight the involvement of adipose tissue in the allocation of energy resources to central regulation of stress reactions, point to still poorly understood neuronal ensembles in the prefrontal cortex that underlie cognitive flexibility critical for effective coping, and evaluate the role of cortisol as a pleiotropic regulator in vulnerability to, and treatment of, trauma-related psychiatric disorders.
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页数:16
相关论文
共 226 条
[1]   Low-dose cortisol for symptoms of posttraumatic stress disorder [J].
Aerni, A ;
Traber, R ;
Hock, C ;
Roozendaal, B ;
Schelling, G ;
Papassotiropoulos, A ;
Nitsch, RM ;
Schnyder, U ;
de Quervain, DJF .
AMERICAN JOURNAL OF PSYCHIATRY, 2004, 161 (08) :1488-1490
[2]   TYPE-I CORTICOSTEROID RECEPTOR-LIKE IMMUNOREACTIVITY IN THE RAT CNS - DISTRIBUTION AND REGULATION BY CORTICOSTEROIDS [J].
AHIMA, R ;
KROZOWSKI, Z ;
HARLAN, R .
JOURNAL OF COMPARATIVE NEUROLOGY, 1991, 313 (03) :522-538
[3]   CHARTING OF TYPE-II GLUCOCORTICOID RECEPTOR-LIKE IMMUNOREACTIVITY IN THE RAT CENTRAL-NERVOUS-SYSTEM [J].
AHIMA, RS ;
HARLAN, RE .
NEUROSCIENCE, 1990, 39 (03) :579-604
[4]  
Akirav Irit, 2007, Neural Plasticity, V2007, DOI 10.1155/2007/30873
[5]   DETERMINATION OF OPTIMAL THERMAL CONDITIONS FOR GROWTH OF CLAM (VENERUPIS-PULLASTRA) SEED [J].
ALBENTOSA, M ;
BEIRAS, R ;
CAMACHO, AP .
AQUACULTURE, 1994, 126 (3-4) :315-328
[6]   Global Representations of Goal-Directed Behavior in Distinct Cell Types of Mouse Neocortex [J].
Allen, William E. ;
Kauvar, Isaac V. ;
Chen, Michael Z. ;
Richman, Ethan B. ;
Yang, Samuel J. ;
Chan, Ken ;
Gradinaru, Viviana ;
Deverman, Benjamin E. ;
Luo, Liqun ;
Deisseroth, Karl .
NEURON, 2017, 94 (04) :891-+
[7]   Pharmacological interventions for preventing post-traumatic stress disorder (PTSD) [J].
Amos, Taryn ;
Stein, Dan J. ;
Ipser, Jonathan C. .
COCHRANE DATABASE OF SYSTEMATIC REVIEWS, 2014, (07)
[8]  
[Anonymous], HDB STRESS CONCEPTS
[9]  
[Anonymous], METHODS BEHAV ANAL N
[10]   Behavioral insights from mouse models of forebrain- and amygdala-specific glucocorticoid receptor genetic disruption [J].
Arnett, Melinda G. ;
Kolber, Benedict J. ;
Boyle, Maureen P. ;
Muglia, Louis J. .
MOLECULAR AND CELLULAR ENDOCRINOLOGY, 2011, 336 (1-2) :2-5