Prefrontal cortex (PFC), a key region for many """"""""executive"""""""" processes, such as working memory, attention and emotional control, is implicated in stress-related disorders including depression, anxiety and posttraumatic stress disorder. The function of PFC is strongly influenced by corticosterone, the major stress hormone released from adrenal cortex in response to stressful events, but the underlying mechanisms are elusive. Our long-term goal is to delineate the mechanisms by which stress affects PFC synaptic functions. We propose that NMDARs and AMPARs are potential targets of stress hormones in PFC that are critically involved in the regulation of cognitive and emotional processes. To test this, we will address the following three specific aims: (1) To study the changes in glutamatergic transmission induced by stress in PFC neurons. Our preliminary results show that in vivo acute stress or in vitro short-term corticosterone treatment causes a delayed and long- lasting potentiation of NMDAR- and AMPAR-mediated synaptic transmission and ionic currents in PFC pyramidal neurons. We will investigate the impact of different acute stressors on PFC synaptic functions and the stress hormone receptors involved. The impact of in vivo chronic stress or in vitro long-term corticosterone treatment on PFC glutamatergic responses will also be examined and compared. (2) To study the molecular mechanisms for acute stress-induced changes in PFC synaptic functions. We will investigate the role of several key signaling molecules, including the serum- and glucocorticoid-inducible kinase (SGK) and Rab family small GTPases that function as specific regulators of vesicle trafficking at different stages of endocytosis/exocytosis. (3) To study the stress-induced changes in glutamate receptor trafficking and expression in PFC neurons. We will investigate whether the acute stress-induced increase in glutamatergic synaptic transmission is associated with the increased delivery of NMDARs and AMPARs to the neuronal surface in stressed animals. The impact of chronic stress on glutamate receptor expression and trafficking will also be examined. To understand the broader significance and clinical relevance of the stress-induced synaptic changes in PFC, we will perform behavioral studies to examine the impact of stress on working memory, a key cognitive function relying on glutamatergic transmission in PFC. Using combined electrophysiological, biochemical, morphological, molecular and behavioral approaches, the proposal will address important issues on the functions of stress hormones, particularly corticosteroids, in PFC neurons. Knowledge gained from this study would shed light on how the glucocorticoid receptor and the glutamate system are mechanistically linked, how their interactions may be critical for maintaining normal cognition and emotion, and how the aberrant corticosteroid-glutamate interactions may contribute to the pathophysiology of mental illnesses.

Public Health Relevance

This study will reveal how corticosterone, the major stress hormone, causes long-lasting changes in glutamatergic transmission in pyramidal neurons of prefrontal cortex (PFC), which leads to the facilitation of working memory, a key PFC-mediated cognitive process. Knowledge gained from this study would shed light on how the glucocorticoid receptor and the glutamate system are mechanistically linked for controlling cognition and emotion. Understanding these molecular and cellular mechanisms will provide valuable targets for designing novel therapies that modify the stress response.

Agency
National Institute of Health (NIH)
Institute
National Institute of Mental Health (NIMH)
Type
Research Project (R01)
Project #
5R01MH085774-04
Application #
8487449
Study Section
Neuroendocrinology, Neuroimmunology, and Behavior Study Section (NNB)
Program Officer
Desmond, Nancy L
Project Start
2010-09-01
Project End
2014-06-30
Budget Start
2013-07-01
Budget End
2014-06-30
Support Year
4
Fiscal Year
2013
Total Cost
$301,277
Indirect Cost
$111,197
Name
State University of New York at Buffalo
Department
Physiology
Type
Schools of Medicine
DUNS #
038633251
City
Buffalo
State
NY
Country
United States
Zip Code
14260
Cheng, Jia; Xiong, Zhe; Duffney, Lara J et al. (2014) Methylphenidate exerts dose-dependent effects on glutamate receptors and behaviors. Biol Psychiatry 76:953-62
Plattner, Florian; Hernández, Adan; Kistler, Tara M et al. (2014) Memory enhancement by targeting Cdk5 regulation of NR2B. Neuron 81:1070-1083
Wei, J; Yuen, E Y; Liu, W et al. (2014) Estrogen protects against the detrimental effects of repeated stress on glutamatergic transmission and cognition. Mol Psychiatry 19:588-98
Deng, Yulei; Xiong, Zhe; Chen, Paul et al. (2014) ?-amyloid impairs the regulation of N-methyl-D-aspartate receptors by glycogen synthase kinase 3. Neurobiol Aging 35:449-59
Wei, Jing; Graziane, Nicholas M; Wang, Haitao et al. (2014) Regulation of N-methyl-D-aspartate receptors by disrupted-in-schizophrenia-1. Biol Psychiatry 75:414-424
Yuen, Eunice Y; Zhong, Ping; Li, Xiangning et al. (2013) Restoration of glutamatergic transmission by dopamine D4 receptors in stressed animals. J Biol Chem 288:26112-20
Vithlani, Mansi; Hines, Rochelle M; Zhong, Ping et al. (2013) The ability of BDNF to modify neurogenesis and depressive-like behaviors is dependent upon phosphorylation of tyrosine residues 365/367 in the GABA(A)-receptor ?2 subunit. J Neurosci 33:15567-77
Duffney, Lara J; Wei, Jing; Cheng, Jia et al. (2013) Shank3 deficiency induces NMDA receptor hypofunction via an actin-dependent mechanism. J Neurosci 33:15767-78
Gu, Zhenglin; Liu, Wenhua; Wei, Jing et al. (2012) Regulation of N-methyl-D-aspartic acid (NMDA) receptors by metabotropic glutamate receptor 7. J Biol Chem 287:10265-75
Popoli, Maurizio; Yan, Zhen; McEwen, Bruce S et al. (2012) The stressed synapse: the impact of stress and glucocorticoids on glutamate transmission. Nat Rev Neurosci 13:22-37

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