Moderate exercise and chronic stress produce counteractive effects on different areas of the brain by acting through various neurotransmitter receptor subtypes: A hypothesis
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[1] M. Fleshner,et al. heel Running Alters Serotonin ( 5-HT ) Transporter ,-HT 1 A , 5-HT 1 B , and Alpha 1 b-Adrenergic Receptor RNA in the Rat Raphe Nuclei , 2005 .
[2] A. Fernández-Guasti,et al. Participation of the 5-HT1A Receptor in the Antidepressant-Like Effect of Estrogens in the Forced Swimming Test , 2006, Neuropsychopharmacology.
[3] R. Hoffman,et al. Anatomic basis of sequence‐dependent predictability exhibited by nigral dopamine neuron firing patterns , 2001, Synapse.
[4] Jaeseung Jeong. Nonlinear dynamics of EEG in Alzheimer's disease , 2002 .
[5] G. Mastorakos,et al. Exercise as a Stress Model and the Interplay Between the Hypothalamus-pituitary-adrenal and the Hypothalamus-pituitary-thyroid Axes , 2005, Hormone and metabolic research = Hormon- und Stoffwechselforschung = Hormones et metabolisme.
[6] Russo-Neustadt Aa,et al. Brain-derived neurotrophic factor and antidepressant activity. , 2005, Current pharmaceutical design.
[7] Barry E. Levin,et al. Neurobiology of Exercise , 2006 .
[8] Roland R Roy,et al. Voluntary exercise induces a BDNF-mediated mechanism that promotes neuroplasticity. , 2002, Journal of neurophysiology.
[9] R. Duman,et al. A Neurotrophic Model for Stress-Related Mood Disorders , 2006, Biological Psychiatry.
[10] J. Wang-Rodriguez,et al. Constitutive pro- and anti-inflammatory cytokine and growth factor response to exercise in leukocytes. , 2006, Journal of applied physiology.
[11] S. Sarbadhikari,et al. Chaos in the brain: a short review alluding to epilepsy, depression, exercise and lateralization. , 2001, Medical engineering & physics.
[12] F. Halberg,et al. Beneficial effects of exercise and its molecular mechanisms on depression in rats , 2006, Behavioural Brain Research.
[13] F. Barrantes,et al. Asymmetric distribution and down-regulation of the muscarinic acetylcholine receptor in rat cerebral cortex , 1993, Neurochemical Research.
[14] P. Ekkekakis,et al. Regional brain activation as a biological marker of affective responsivity to acute exercise: influence of fitness. , 1998, Psychophysiology.
[15] B. Legutko,et al. Combined treatment with imipramine and metyrapone induces hippocampal and cortical brain-derived neurotrophic factor gene expression in rats. , 2005, Pharmacological reports : PR.
[16] Edward T. Bullmore,et al. Does frontal lobe activation during retrieval reflect complexity of retrieved information? , 2000, Neuroreport.
[17] Vincent R. Brown,et al. Oscillations in Neural Systems , 1999 .
[18] Noboru Kitamura,et al. Abnormal neurochemical asymmetry in the temporal lobe of schizophrenia , 2001, Progress in Neuro-Psychopharmacology and Biological Psychiatry.
[19] S. Koslow,et al. Discovery and Integrative Neuroscience , 2005, Clinical EEG and neuroscience.
[20] L. Glass. Synchronization and rhythmic processes in physiology , 2001, Nature.
[21] E. Gordon,et al. Abnormal asymmetry of N200 and P300 event-related potentials in subclinical depression. , 2006, Journal of affective disorders.
[22] A. Bjørnebekk,et al. Running has Differential Effects on NPY, Opiates, and Cell Proliferation in an Animal Model of Depression and Controls , 2006, Neuropsychopharmacology.
[23] R. Huganir,et al. Bipolar I disorder and schizophrenia: a 440-single-nucleotide polymorphism screen of 64 candidate genes among Ashkenazi Jewish case-parent trios. , 2005, American journal of human genetics.
[24] A. Bortolozzi,et al. Asymmetrical development of the monoamine systems in 2,4-dichlorophenoxyacetic acid treated rats. , 2003, Neurotoxicology.
[25] S. Sarbadhikari. A neural network confirms that physical exercise reverses EEG changes in depressed rats. , 1995, Medical engineering & physics.
[26] J. Röschke,et al. Alterations of Continuous MEG Measures during Mental Activities , 2000, Neuropsychobiology.
[27] Pierre Flor-Henry,et al. Laterality and psychopathology , 1983 .
[28] Lung Yu,et al. Compulsive exercise acutely upregulates rat hippocampal brain-derived neurotrophic factor , 2006, Journal of Neural Transmission.
[29] P. Neveu,et al. Cytokine Stress Responses Depend on Lateralization in Mice , 2003, Stress.
[30] Sankar K. Pal,et al. 3. AUTOMATED TECHNIQUES FOR IDENTIFYING DEPRESSION FROM EEG , 2002 .
[31] R. Atchley,et al. Hemispheric asymmetry in the processing of emotional content in word meanings: The effect of current and past depression , 2003, Brain and Language.
[32] E. Esposito,et al. Decreased chaos of midbrain dopaminergic neurons after serotonin denervation , 1999, Neuroscience.
[33] Michael A. Kiraly,et al. The Effect of Exercise on Hippocampal Integrity: Review of Recent Research , 2005, International journal of psychiatry in medicine.
[34] M. Kyriazis,et al. Practical applications of chaos theory to the modulation of human ageing: nature prefers chaos to regularity , 2004, Biogerontology.
[35] Amy J. Ross,et al. Functional Magnetic Resonance Imaging Studies in Bipolar Disorder , 2006, CNS Spectrums.
[36] M. Hampson,et al. Cytogenetic and genetic evidence supports a role for the kainate-type glutamate receptor gene, GRIK4, in schizophrenia and bipolar disorder , 2006, Molecular Psychiatry.
[37] F. Zhou,et al. Neurotransmitters and substances of abuse: effects on adult neurogenesis. , 2004, Current neurovascular research.
[38] M. Iimori,et al. Caffeic acid attenuates the decrease in cortical BDNF mRNA expression induced by exposure to forced swimming stress in mice. , 2006, European journal of pharmacology.
[39] W. Freeman,et al. Brain Dynamics: Brain Chaos and Intentionality , 2000 .
[40] B. Hatfield,et al. Temporal Dynamics and Dimensional Specificity of the Affective Response to Exercise of Varying Intensity: Differing Pathways to a Common Outcome , 2001 .
[41] E. Gordon. Integrative Neuroscience: Bringing Together Biological, Psychological and Clinical Models of the Human Brain , 2000 .
[42] A. Ray,et al. Chronic exercise alters EEG power spectra in an animal model of depression. , 1996, Indian journal of physiology and pharmacology.
[43] F Kehren,et al. Left-right asymmetry of striatal dopamine D2 receptors. , 1998, Nuclear medicine communications.
[44] M. Levin,et al. Serotonin Signaling Is a Very Early Step in Patterning of the Left-Right Axis in Chick and Frog Embryos , 2005, Current Biology.
[45] H. Demaree,et al. The Neuropsychology of Depression: A Literature Review and Preliminary Model , 2003, Neuropsychology Review.
[46] A. Grace,et al. Dopamine D1 and D4 Receptor Subtypes Differentially Modulate Recurrent Excitatory Synapses in Prefrontal Cortical Pyramidal Neurons , 2006, Neuropsychopharmacology.
[47] C. Negrão,et al. Effects of diet and exercise training on neurovascular control during mental stress in obese women. , 2006, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[48] R. D. L. Garza,et al. A distinct neurochemical profile in WKY rats at baseline and in response to acute stress: implications for animal models of anxiety and depression , 2004, Brain Research.
[49] T. Seeman,et al. Protective and Damaging Effects of Mediators of Stress: Elaborating and Testing the Concepts of Allostasis and Allostatic Load , 1999, Annals of the New York Academy of Sciences.
[50] P. Ekkekakis,et al. Throwing the mountains into the lakes: on the perils of nomothetic conceptions of the exercise-affect relationship. , 2000 .
[51] Theresa A. Jones,et al. Motor Enrichment and the Induction of Plasticity Before or After Brain Injury , 2003, Neurochemical Research.
[52] H. Chung,et al. Exercise and hormesis: oxidative stress-related adaptation for successful aging , 2004, Biogerontology.
[53] R. Duman. Neurotrophic factors and regulation of mood: Role of exercise, diet and metabolism , 2005, Neurobiology of Aging.
[54] Harold I. Kaplan,et al. Comprehensive textbook of psychiatry/III , 1980 .
[55] Ü. Tan. Psychomotor Theory: Mind-Brain-Body Triad in Health and Disease , 2007 .
[56] M. Chen,et al. Brain-derived neurotrophic factor and antidepressant activity. , 2005, Current pharmaceutical design.
[57] E. Garoflos,et al. Cellular mechanisms underlying an effect of “early handling” on pCREB and BDNF in the neonatal rat hippocampus , 2005, Brain Research.
[58] C. Blanco,et al. Chaos theories and therapeutic commonalities among depression, Parkinson's disease, and cardiac arrhythmias. , 1999, Comprehensive psychiatry.
[59] Z. Xu,et al. Asymmetrical changes of dopamine receptors in the striatum after unilateral dopamine depletion , 2005, Brain Research.
[60] N. Draper,et al. Effect of creatine supplementation and sleep deprivation, with mild exercise, on cognitive and psychomotor performance, mood state, and plasma concentrations of catecholamines and cortisol , 2006, Psychopharmacology.
[61] J. Martinerie,et al. Nonlinear EEG Changes Associated with Clinical Improvement in Depressed Patients , 2000 .
[62] Marcelo A. Savi,et al. Chaos and order in biomedical rhythms , 2005 .
[63] M. Procopio. The multiple outcomes bias in antidepressants research. , 2005, Medical hypotheses.
[64] M. Fleshner,et al. Wheel running alters serotonin (5-HT) transporter, 5-HT1A, 5-HT1B, and alpha1b-adrenergic receptor mRNA in the rat raphe nuclei , 2005, Biological Psychiatry.
[65] Cornelius T. Leondes,et al. Automated Techniques for Identifying Depression from EEG , 2003 .
[66] Carl W. Cotman,et al. Exercise Enhances and Protects Brain Function , 2002, Exercise and sport sciences reviews.
[67] M. Mandal,et al. Cerebral laterality in affect and affective illness: a review. , 1996, The Journal of psychology.