Interoceptive modulation of neuroendocrine, emotional, and hypophagic responses to stress
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[1] M. Morris,et al. The link between stress and feeding behaviour , 2012, Neuropharmacology.
[2] D. Ramsay,et al. Pavlovian influences over food and drug intake , 2000, Behavioural Brain Research.
[3] K. Gysling,et al. Medullary noradrenergic neurons projecting to the bed nucleus of the stria terminalis express mRNA for the NMDA-NR1 receptor , 2000, Brain Research Bulletin.
[4] J. Volaufova,et al. Effect of restraint stress on food intake and body weight is determined by time of day. , 1997, American journal of physiology. Regulatory, integrative and comparative physiology.
[5] J. Travers,et al. Identification of lingual motor control circuits using two strains of pseudorabies virus , 2002, Neuroscience.
[6] D. Smith,et al. A role for glucagon-like peptide-1 in the central regulation of feeding , 1996, Nature.
[7] Y. Ulrich‐Lai,et al. Adrenal splanchnic innervation contributes to the diurnal rhythm of plasma corticosterone in rats by modulating adrenal sensitivity to ACTH. , 2006, American journal of physiology. Regulatory, integrative and comparative physiology.
[8] P. Sawchenko,et al. Anatomical specificity of noradrenergic inputs to the paraventricular and supraoptic nuclei of the rat hypothalamus , 1988, The Journal of comparative neurology.
[9] M. Bienkowski,et al. Noradrenergic inputs to the paraventricular hypothalamus contribute to hypothalamic–pituitary–adrenal axis and central Fos activation in rats after acute systemic endotoxin exposure , 2008, Neuroscience.
[10] G. P. Smith,et al. Cholecystokinin and satiety in rats and rhesus monkeys. , 1977, The American journal of clinical nutrition.
[11] S. Watson,et al. Differential Regulation of Corticotropin-Releasing Hormone and Vasopressin Gene Transcription in the Hypothalamus by Norepinephrine , 1999, The Journal of Neuroscience.
[12] Joseph E LeDoux. Emotion Circuits in the Brain , 2000 .
[13] V. Viau,et al. Starvation: early signals, sensors, and sequelae. , 1999, Endocrinology.
[14] G. P. Smith,et al. Cholecystokinin decreases food intake in rats. , 1973, Journal of comparative and physiological psychology.
[15] H. Grill,et al. The nucleus tractus solitarius: a portal for visceral afferent signal processing, energy status assessment and integration of their combined effects on food intake , 2009, International Journal of Obesity.
[16] M. Nakata,et al. Endogenous prolactin-releasing peptide regulates food intake in rodents. , 2008, The Journal of clinical investigation.
[17] J. Tasker,et al. Noradrenergic regulation of parvocellular neurons in the rat hypothalamic paraventricular nucleus , 2000, Neuroscience.
[18] M. Bienkowski,et al. Common and distinct neural inputs to the medial central nucleus of the amygdala and anterior ventrolateral bed nucleus of stria terminalis in rats , 2012, Brain Structure and Function.
[19] S. Woods,et al. Dynamic body weight and body composition changes in response to subordination stress , 2007, Physiology & Behavior.
[20] Hirokazu Matsumoto,et al. A prolactin-releasing peptide in the brain , 1998, Nature.
[21] Hideyuki Okano,et al. Visceral Afferents Directly Activate Catecholamine Neurons in the Solitary Tract Nucleus , 2007, The Journal of Neuroscience.
[22] Joseph E LeDoux,et al. Lesions in the bed nucleus of the stria terminalis disrupt corticosterone and freezing responses elicited by a contextual but not by a specific cue-conditioned fear stimulus , 2004, Neuroscience.
[23] J. Herman,et al. Glucocorticoid receptors in the nucleus of the solitary tract (NTS) decrease endocrine and behavioral stress responses , 2014, Psychoneuroendocrinology.
[24] K. Browning,et al. Vagal afferent fibres determine the oxytocin‐induced modulation of gastric tone , 2013, The Journal of physiology.
[25] M. Dallman,et al. Neuroanatomical basis for facilitation of hypothalamic-pituitary-adrenal responses to a novel stressor after chronic stress , 1998, Neuroscience.
[26] Michael Davis,et al. Double Dissociation between the Involvement of the Bed Nucleus of the Stria Terminalis and the Central Nucleus of the Amygdala in Startle Increases Produced by Conditioned versus Unconditioned Fear , 1997, The Journal of Neuroscience.
[27] S. Woods,et al. The Role of CNS Glucagon-Like Peptide-1 (7-36) Amide Receptors in Mediating the Visceral Illness Effects of Lithium Chloride , 2000, The Journal of Neuroscience.
[28] C. Fekete,et al. Glucagon like peptide-1 (7-36) amide (GLP-1) nerve terminals densely innervate corticotropin-releasing hormone neurons in the hypothalamic paraventricular nucleus , 2003, Brain Research.
[29] J. Herman,et al. Role of Glucocorticoids in Tuning Hindbrain Stress Integration , 2010, The Journal of Neuroscience.
[30] Y. Ulrich‐Lai,et al. Adrenal Splanchnic Innervation Modulates Adrenal Cortical Responses to Dehydration Stress in Rats , 2002, Neuroendocrinology.
[31] M. M. Taylor,et al. The prolactin releasing peptides: RF-amide peptides , 2001, Cellular and Molecular Life Sciences CMLS.
[32] T. Onaka,et al. Facilitative role of prolactin-releasing peptide neurons in oxytocin cell activation after conditioned-fear stimuli , 2003, Neuroscience.
[33] D. Gann,et al. Splanchnic nerve stimulation modulates steroid secretion in hypophysectomized dogs. , 1989, Neuroendocrinology.
[34] H. Grill,et al. Chronically decerebrate rats demonstrate satiation but not bait shyness. , 1978, Science.
[35] Randall R. Sakai,et al. Effects of Chronic Social Stress on Obesity , 2012, Current Obesity Reports.
[36] E. Stricker,et al. Medullary c-Fos activation in rats after ingestion of a satiating meal. , 1998, The American journal of physiology.
[37] K. Foley,et al. The prolactin-releasing peptide receptor (GPR10) regulates body weight homeostasis in mice , 2007, Journal of Molecular Neuroscience.
[38] L. Rinaman. Ascending projections from the caudal visceral nucleus of the solitary tract to brain regions involved in food intake and energy expenditure , 2010, Brain Research.
[39] P. J. Larsen,et al. Central administration of glucagon-like peptide-1 activates hypothalamic neuroendocrine neurons in the rat. , 1997, Endocrinology.
[40] C. Lawrence,et al. Alternative role for prolactin-releasing peptide in the regulation of food intake , 2000, Nature Neuroscience.
[41] J. Maniscalco,et al. Overnight food deprivation markedly attenuates hindbrain noradrenergic, glucagon-like peptide-1, and hypothalamic neural responses to exogenous cholecystokinin in male rats , 2013, Physiology & Behavior.
[42] James P. Herman,et al. Ascending mechanisms of stress integration: Implications for brainstem regulation of neuroendocrine and behavioral stress responses , 2017, Neuroscience & Biobehavioral Reviews.
[43] M. Dallman,et al. Feast and Famine: Critical Role of Glucocorticoids with Insulin in Daily Energy Flow , 1993, Frontiers in Neuroendocrinology.
[44] J. Herman,et al. Glucocorticoid regulation of preproglucagon transcription and RNA stability during stress , 2009, Proceedings of the National Academy of Sciences.
[45] L. Rinaman,et al. Differential activation of chemically identified neurons in the caudal nucleus of the solitary tract in non-entrained rats after intake of satiating vs. non-satiating meals , 2014, Physiology & Behavior.
[46] M. Schwartz,et al. Leptin Deficiency Induced by Fasting Impairs the Satiety Response to Cholecystokinin* , 2000 .
[47] P. J. Larsen,et al. Central administration of GLP-1-(7-36) amide inhibits food and water intake in rats. , 1996, The American journal of physiology.
[48] K. Inoue,et al. Participation of the Prolactin‐Releasing Peptide‐Containing Neurones in Caudal Medulla in Conveying Haemorrhagic Stress‐Induced Signals to the Paraventricular Nucleus of the Hypothalamus , 2010, Journal of neuroendocrinology.
[49] L. Rinaman,et al. Yohimbine anxiogenesis in the elevated plus maze requires hindbrain noradrenergic neurons that target the anterior ventrolateral bed nucleus of the stria terminalis , 2013, The European journal of neuroscience.
[50] G. Chrousos. Stress and disorders of the stress system , 2009, Nature Reviews Endocrinology.
[51] D. Krahn,et al. CRF antagonist partially reverses CRF- and stress-induced effects on feeding , 1986, Brain Research Bulletin.
[52] L. Rinaman. Hindbrain Noradrenergic Lesions Attenuate Anorexia and Alter Central cFos Expression in Rats after Gastric Viscerosensory Stimulation , 2003, The Journal of Neuroscience.
[53] L. Rinaman,et al. Central neural responses to restraint stress are altered in rats with an early life history of repeated brief maternal separation , 2011, Neuroscience.
[54] N. Rothwell. Central effects of CRF on metabolism and energy balance , 1990, Neuroscience & Biobehavioral Reviews.
[55] R. Stornetta,et al. Glutamatergic phenotype of glucagon-like peptide 1 neurons in the caudal nucleus of the solitary tract in rats , 2015, Brain Structure and Function.
[56] J. Herman,et al. Limbic Regulation of Hypothalamo‐Pituitary‐Adrenocortical Function during Acute and Chronic Stress , 2008, Annals of the New York Academy of Sciences.
[57] J. Maniscalco,et al. Satiation and Stress-Induced Hypophagia: Examining the Role of Hindbrain Neurons Expressing Prolactin-Releasing Peptide or Glucagon-Like Peptide 1 , 2013, Front. Neurosci..
[58] J. Herman,et al. Dissociation of ACTH and glucocorticoids , 2008, Trends in Endocrinology & Metabolism.
[59] P. Sawchenko,et al. Neurotransmitter Regulation of Cellular Activation and Neuropeptide Gene Expression in the Paraventricular Nucleus of the Hypothalamus , 2002, The Journal of Neuroscience.
[60] P. Shughrue,et al. Distribution of pre‐pro‐glucagon and glucagon‐like peptide‐1 receptor messenger RNAs in the rat central nervous system , 1999, The Journal of comparative neurology.
[61] C. Jones,et al. Autonomic control of adrenal function. , 1993, Journal of anatomy.
[62] L. Rinaman,et al. Noradrenergic Inputs to the Bed Nucleus of the Stria Terminalis and Paraventricular Nucleus of the Hypothalamus Underlie Hypothalamic–Pituitary–Adrenal Axis But Not Hypophagic or Conditioned Avoidance Responses to Systemic Yohimbine , 2006, The Journal of Neuroscience.
[63] P. Sawchenko,et al. Specificity and generality of the involvement of catecholaminergic afferents in hypothalamic responses to immune insults , 2007, The Journal of comparative neurology.
[64] H. Grill,et al. Hindbrain neurons as an essential hub in the neuroanatomically distributed control of energy balance. , 2012, Cell metabolism.
[65] P. J. Larsen,et al. Distribution of glucagon-like peptide-1 and other preproglucagon-derived peptides in the rat hypothalamus and brainstem , 1997, Neuroscience.
[66] F. Yates,et al. Variations in hepatic inactivation of corticosterone with changes in food intake: an explanation of impaired corticosteroid metabolism following noxious stimuli. , 1960, Endocrinology.
[67] R. Young,et al. Cholecystokinin Decreases Food Intake in Rats1 , 1997 .
[68] S. Bloom,et al. Prolactin-Releasing Peptide Releases Corticotropin-Releasing Hormone and Increases Plasma Adrenocorticotropin via the Paraventricular Nucleus of the Hypothalamus , 2002, Neuroendocrinology.
[69] H. Grill,et al. Caudal brainstem processing is sufficient for behavioral, sympathetic, and parasympathetic responses driven by peripheral and hindbrain glucagon-like-peptide-1 receptor stimulation. , 2008, Endocrinology.
[70] S. Hinuma,et al. Prolactin‐Releasing Peptide is Expressed in Afferents to the Endocrine Hypothalamus, but not in Neurosecretory Neurones , 2000, Journal of neuroendocrinology.
[71] D. Jezova,et al. Activity of the hypothalamic pituitary adrenal axis and sympathoadrenal system during food and water deprivation in the rat , 1994, Brain Research.
[72] R. Shapiro,et al. The central neural connections of the area postrema of the rat , 1985, The Journal of comparative neurology.
[73] S. Travers,et al. Muscimol infusions in the brain stem reticular formation reversibly block ingestion in the awake rat. , 2001, American journal of physiology. Regulatory, integrative and comparative physiology.
[74] S. File,et al. Age-associated sex differences in response to food deprivation in two animal tests of anxiety , 2003, Neuroscience & Biobehavioral Reviews.
[75] D. Cardinali,et al. 24‐Hour Changes in ACTH, Corticosterone, Growth Hormone, and Leptin Levels in Young Male Rats Subjected to Calorie Restriction , 2005, Chronobiology international.
[76] M. Bouton,et al. Effects of bed nucleus of the stria terminalis lesions on conditioned anxiety: aversive conditioning with long-duration conditional stimuli and reinstatement of extinguished fear. , 2006, Behavioral neuroscience.
[77] J. Herman,et al. Distribution of glucagon-like peptide-1 immunoreactivity in the hypothalamic paraventricular and supraoptic nuclei , 2008, Journal of Chemical Neuroanatomy.
[78] E. Stricker,et al. Cholecystokinin Activates C‐Fos Expression in Hypothalamic Oxytocin and Corticotropin‐Releasing Hormone Neurons , 1991, Journal of neuroendocrinology.
[79] C. Shively,et al. Chronic stress, metabolism, and metabolic syndrome , 2011, Stress.
[80] K. Ellacott,et al. Printed in U.S.A. Copyright © 2002 by The Endocrine Society PRL-Releasing Peptide Reduces Food Intake and May Mediate Satiety Signaling , 2022 .
[81] D. Drucker,et al. Glucagon-Like Peptide-1-Responsive Catecholamine Neurons in the Area Postrema Link Peripheral Glucagon-Like Peptide-1 with Central Autonomic Control Sites , 2003, The Journal of Neuroscience.
[82] T. Lennie,et al. Body energy status and the metabolic response to acute inflammation. , 1995, The American journal of physiology.
[83] José M. Pêgo,et al. Excitotoxic lesions in the central nucleus of the amygdala attenuate stress-induced anxiety behavior , 2013, Front. Behav. Neurosci..
[84] S. Hinuma,et al. Developmental expression of prolactin releasing peptide in the rat brain: localization of messenger ribonucleic acid and immunoreactive neurons. , 2001, Brain research. Developmental brain research.
[85] G. P. Smith,et al. Cholecystokinin decreases sucrose intake in chronic decerebrate rats. , 1988, The American journal of physiology.
[86] S. Campeau,et al. The pattern of brain c-fos mRNA induced by a component of fox odor, 2,5-dihydro-2,4,5-Trimethylthiazoline (TMT), in rats, suggests both systemic and processive stress characteristics , 2004, Brain Research.
[87] M. Herkenham,et al. Altered expression of hypothalamic neuropeptide mRNAs in food-restricted and food-deprived rats. , 1990, Neuroendocrinology.
[88] P. Sawchenko,et al. Hypothalamic effector neurons and extended circuitries activated in “neurogenic” stress: A comparison of footshock effects exerted acutely, chronically, and in animals with controlled glucocorticoid levels , 1998, The Journal of comparative neurology.
[89] C. Dayas,et al. Neuroendocrine responses to an emotional stressor: evidence for involvement of the medial but not the central amygdala , 1999, The European journal of neuroscience.
[90] Hong-wei Dong,et al. Basic organization of projections from the oval and fusiform nuclei of the bed nuclei of the stria terminalis in adult rat brain , 2001, The Journal of comparative neurology.
[91] A. N. van den Pol,et al. Glucagon-Like Peptide 1 Excites Hypocretin/Orexin Neurons by Direct and Indirect Mechanisms: Implications for Viscera-Mediated Arousal , 2004, The Journal of Neuroscience.
[92] H. Akil,et al. Norepinephrine-induced CRH and AVP gene transcription within the hypothalamus: differential regulation by corticosterone. , 2001, Brain research. Molecular brain research.
[93] R. Palmiter,et al. Peptides that regulate food intake: norepinephrine is not required for reduction of feeding induced by cholecystokinin. , 2003, American journal of physiology. Regulatory, integrative and comparative physiology.
[94] Kenneth R. Jones,et al. Hyperphagia and Increased Fat Accumulation in Two Models of Chronic CNS Glucagon-Like Peptide-1 Loss of Function , 2011, The Journal of Neuroscience.
[95] M. Davis,et al. Corticotropin-releasing factor: long-lasting facilitation of the acoustic startle reflex , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[96] G. Petrovich,et al. Stress exposure, food intake and emotional state , 2015, Stress.
[97] H. Grill,et al. Endogenous hindbrain glucagon-like peptide-1 receptor activation contributes to the control of food intake by mediating gastric satiation signaling. , 2009, Endocrinology.
[98] A. Arimura,et al. Anorexia induced by interleukin 1: involvement of corticotropin-releasing factor. , 1989, The American journal of physiology.
[99] D. Terman,et al. Local circuit input to the medullary reticular formation from the rostral nucleus of the solitary tract. , 2008, American journal of physiology. Regulatory, integrative and comparative physiology.
[100] Robert M. Sapolsky,et al. Why Zebras Don't Get Ulcers , 1994 .
[101] R. Sapolsky,et al. How do glucocorticoids influence stress responses? Integrating permissive, suppressive, stimulatory, and preparative actions. , 2000, Endocrine reviews.
[102] L. Renaud,et al. Noradrenergic afferents facilitate the activity of tuberoinfundibular neurons of the hypothalamic paraventricular nucleus. , 1985, Neuroendocrinology.
[103] H. Berthoud,et al. Brainstem mechanisms integrating gut-derived satiety signals and descending forebrain information in the control of meal size , 2006, Physiology & Behavior.
[104] V. Schusdziarra,et al. Peptides that regulate food intake: glucagon-like peptide 1-(7-36) amide acts at lateral and medial hypothalamic sites to suppress feeding in rats. , 2003, American journal of physiology. Regulatory, integrative and comparative physiology.
[105] L. Rinaman. A functional role for central glucagon-like peptide-1 receptors in lithium chloride-induced anorexia. , 1999, American journal of physiology. Regulatory, integrative and comparative physiology.
[106] M. Eichner,et al. C-fos protein expression in the nucleus of the solitary tract correlates with cholecystokinin dose injected and food intake in rats , 1999, Brain Research.
[107] Z. Liposits,et al. A combined light and electron microscopic immunocytochemical method for the simultaneous localization of multiple tissue antigens , 1986, Histochemistry.
[108] L. Rinaman. Hindbrain noradrenergic A2 neurons: diverse roles in autonomic, endocrine, cognitive, and behavioral functions. , 2011, American journal of physiology. Regulatory, integrative and comparative physiology.
[109] J. Herman,et al. Neurocircuitry of stress: central control of the hypothalamo–pituitary–adrenocortical axis , 1997, Trends in Neurosciences.
[110] L. Rinaman. Visceral sensory inputs to the endocrine hypothalamus , 2007, Frontiers in Neuroendocrinology.
[111] G. P. Smith,et al. Abdominal vagotomy blocks the satiety effect of cholecystokinin in the rat. , 1981, Science.
[112] J. Herman,et al. Neural regulation of endocrine and autonomic stress responses , 2009, Nature Reviews Neuroscience.
[113] G. P. Smith,et al. Afferent axons in abdominal vagus mediate satiety effect of cholecystokinin in rats. , 1985, The American journal of physiology.
[114] Gerard P. Smith. Satiation: From Gut to Brain , 1998 .
[115] R. J. Crosby,et al. Central and peripheral vagal transport of cholecystokinin binding sites occurs in afferent fibers , 1990, Brain Research.
[116] R. Seeley,et al. CNS Glucagon-Like Peptide-1 Receptors Mediate Endocrine and Anxiety Responses to Interoceptive and Psychogenic Stressors , 2003, The Journal of Neuroscience.
[117] J. Maniscalco,et al. Negative Energy Balance Blocks Neural and Behavioral Responses to Acute Stress by “Silencing” Central Glucagon-Like Peptide 1 Signaling in Rats , 2015, The Journal of Neuroscience.
[118] R. Seeley,et al. Disruption of Glucagon-Like Peptide 1 Signaling in Sim1 Neurons Reduces Physiological and Behavioral Reactivity to Acute and Chronic Stress , 2017, The Journal of Neuroscience.
[119] Michael Davis,et al. Role of the bed nucleus of the stria terminalis versus the amygdala in fear, stress, and anxiety. , 2003, European journal of pharmacology.
[120] G. Koob,et al. Reduction of anxiety after restricted feeding in the rat: implication for eating disorders , 2004, Biological Psychiatry.
[121] R. Seeley,et al. The Diverse Roles of Specific GLP-1 Receptors in the Control of Food Intake and the Response to Visceral Illness , 2002, The Journal of Neuroscience.
[122] H. Grill,et al. Attenuation of lipopolysaccharide anorexia by antagonism of caudal brain stem but not forebrain GLP-1-R. , 2004, American journal of physiology. Regulatory, integrative and comparative physiology.
[123] Linda Rinaman,et al. Experimental dissociation of neural circuits underlying conditioned avoidance and hypophagic responses to lithium chloride. , 2007, American journal of physiology. Regulatory, integrative and comparative physiology.
[124] H. Grill,et al. Neurological dissociation of gastrointestinal and metabolic contributions to meal size control. , 1994, Behavioral neuroscience.
[125] C. Dayas,et al. Stressor categorization: acute physical and psychological stressors elicit distinctive recruitment patterns in the amygdala and in medullary noradrenergic cell groups , 2001, The European journal of neuroscience.
[126] D. Ryan,et al. Appetitive Operant Behavior and Free-Feeding in Rats Exposed to Acute Stress , 1997, Physiology & Behavior.
[127] P. Sawchenko,et al. The relationship of efferent projections from the area postrema to vagal motor and brain stem catecholamine-containing cell groups: An axonal transport and immunohistochemical study in the rat , 1994, Neuroscience.
[128] M. Dallman,et al. The diurnal rhythm in adrenocorticotropin responses to restraint in adrenalectomized rats is determined by caloric intake. , 1994, Endocrinology.
[129] P. Plotsky. Facilitation of immunoreactive corticotropin-releasing factor secretion into the hypophysial-portal circulation after activation of catecholaminergic pathways or central norepinephrine injection. , 1987, Endocrinology.
[130] Manuel F. Gonzalez,et al. The induction and suppression of c-fos expression in the rat brain by cholecystokinin and its antagonist L364,718 , 1993, Neuroscience Letters.
[131] E. Widmaier,et al. Catecholaminergic modulation of corticotropin-releasing factor and adrenocorticotropin secretion. , 1989, Endocrine reviews.
[132] S. Woods,et al. Social stress and recovery: implications for body weight and body composition. , 2007, American journal of physiology. Regulatory, integrative and comparative physiology.
[133] Y. Taché,et al. Stress and the gastrointestinal tract III. Stress-related alterations of gut motor function: role of brain corticotropin-releasing factor receptors. , 2001, American journal of physiology. Gastrointestinal and liver physiology.
[134] H. Akil,et al. Pattern and time course of immediate early gene expression in rat brain following acute stress , 1995, Neuroscience.
[135] S. Travers,et al. Neurotransmitter phenotypes of intermediate zone reticular formation projections to the motor trigeminal and hypoglossal nuclei in the rat , 2005, The Journal of comparative neurology.
[136] V. Pickel,et al. Localization of tyrosine hydroxylase in neuronal targets and efferents of the area postrema in the nucleus tractus solitarii of the rat , 1993, The Journal of comparative neurology.
[137] F. Reimann,et al. Preproglucagon neurons project widely to autonomic control areas in the mouse brain , 2011, Neuroscience.
[138] G. P. Smith,et al. The controls of eating: a shift from nutritional homeostasis to behavioral neuroscience. , 2000, Nutrition.
[139] C. Dayas,et al. Descending pathways from the paraventricular nucleus contribute to the recruitment of brainstem nuclei following a systemic immune challenge , 2003, Neuroscience.
[140] H. Grill,et al. The Neuroanatomical Axis for Control of Energy Balance , 2002, Frontiers in Neuroendocrinology.
[141] D. Baskin,et al. Hypothalamic-brainstem circuits controlling eating. , 2010, Forum of nutrition.
[142] G. Chrousos,et al. Stressors, Stress, and Neuroendocrine Integration of the Adaptive Response: The 1997 Hans Selye Memorial Lecture , 1998, Annals of the New York Academy of Sciences.
[143] P. Sawchenko,et al. Circuits and mechanisms governing hypothalamic responses to stress: a tale of two paradigms. , 2000, Progress in brain research.
[144] S. Watson,et al. Regulatory Mechanisms of Corticotropin‐Releasing Hormone and Vasopressin Gene Expression in the Hypothalamus , 2004, Journal of neuroendocrinology.
[145] Younglim Lee,et al. Role of the Hippocampus, the Bed Nucleus of the Stria Terminalis, and the Amygdala in the Excitatory Effect of Corticotropin-Releasing Hormone on the Acoustic Startle Reflex , 1997, The Journal of Neuroscience.
[146] C. Dayas,et al. Opposing roles for medial and central amygdala in the initiation of noradrenergic cell responses to a psychological stressor , 2002, The European journal of neuroscience.
[147] G. Katsuura,et al. Activation of CCK-A receptors induces elevation of plasma corticosterone in rats , 1992, Peptides.
[148] P. Sawchenko,et al. Brainstem prolactin-releasing peptide neurons are sensitive to stress and lactation , 2003, Neuroscience.
[149] K. Fujiwara,et al. Prolactin-releasing peptide as a novel stress mediator in the central nervous system. , 2001, Endocrinology.
[150] B. A. Baldwin,et al. Central and peripheral doses of cholecystokinin that inhibit feeding in pigs also stimulate vasopressin and cortisol release , 1991, Experimental physiology.
[151] J. Dunn,et al. Plasma corticosterone responses to electrical stimulation of the amygdaloid complex: cytoarchitectural specificity. , 1986, Neuroendocrinology.
[152] P. J. Larsen,et al. Distribution of GLP‐1 Binding Sites in the Rat Brain: Evidence that Exendin‐4 is a Ligand of Brain GLP‐1 Binding Sites , 1995, The European journal of neuroscience.
[153] Simon C. Cork,et al. Distribution and characterisation of Glucagon-like peptide-1 receptor expressing cells in the mouse brain , 2015, Molecular metabolism.
[154] C. Dayas,et al. Hypothalamic paraventricular nucleus neurons regulate medullary catecholamine cell responses to restraint stress , 2004, The Journal of comparative neurology.
[155] H. Raybould,et al. CNS effects of circulating CCK8: involvement of brainstem neurones responding to gastric distension , 1985, Brain Research.
[156] A. Paolini,et al. Effects of adult-onset calorie restriction on anxiety-like behavior in rats , 2007, Physiology & Behavior.
[157] Wei Zhang,et al. The melanocortinergic pathway is rapidly recruited by emotional stress and contributes to stress-induced anorexia and anxiety-like behavior. , 2007, Endocrinology.
[158] K. Spyer,et al. Vagal modulation of responses elicited by stimulation of the aortic depressor nerve in neurons of the rostral ventrolateral medulla oblongata in the rat , 1999, Neuroscience.
[159] P. McHugh,et al. Pharmacological dissociation of responses to CCK and gastric loads in rat mechanosensitive vagal afferents. , 1994, The American journal of physiology.
[160] D. Morilak,et al. Chronic Intermittent Cold Stress Sensitises the Hypothalamic‐Pituitary‐Adrenal Response to a Novel Acute Stress by Enhancing Noradrenergic Influence in the Rat Paraventricular Nucleus , 2005, Journal of neuroendocrinology.
[161] M. Dallman,et al. Regulation of activity in the hypothalamo-pituitary-adrenal axis is integral to a larger hypothalamic system that determines caloric flow. , 1994, Endocrinology.
[162] P. Sawchenko,et al. Distinct mechanisms underlie activation of hypothalamic neurosecretory neurons and their medullary catecholaminergic afferents in categorically different stress paradigms. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[163] C. Gomez-Sanchez,et al. The effect of chronic food and water restriction on open-field behaviour and serum corticosterone levels in rats , 2000, Laboratory animals.
[164] H. Grill,et al. Endogenous Glucagon-like Peptide-1 Receptor Signaling in the Nucleus Tractus Solitarius is Required for Food Intake Control , 2017, Neuropsychopharmacology.
[165] Y. Ueta,et al. Prolactin-releasing peptide is a potent mediator of stress responses in the brain through the hypothalamic paraventricular nucleus , 2006, Neuroscience.
[166] H. Akil,et al. Expression of α1b Adrenoceptor mRNA in Corticotropin-Releasing Hormone-Containing Cells of the Rat Hypothalamus and Its Regulation by Corticosterone , 1999, The Journal of Neuroscience.
[167] M. Fendt,et al. Temporary Inactivation of the Bed Nucleus of the Stria Terminalis But Not of the Amygdala Blocks Freezing Induced by Trimethylthiazoline, a Component of Fox Feces , 2003, The Journal of Neuroscience.
[168] N. Dess,et al. Lithium chloride and inescapable, unsignaled tail shock differentially affect meal patterns of rats , 1994, Physiology & Behavior.
[169] A. Shekhar,et al. Chronic inhibition of GABA synthesis in the bed nucleus of the stria terminalis elicits anxiety-like behavior , 2008, Journal of psychopharmacology.
[170] L. Rinaman. Postnatal development of hypothalamic inputs to the dorsal vagal complex in rats , 2003, Physiology & Behavior.
[171] J. Levine,et al. Repeated, but not acute, stress suppresses inflammatory plasma extravasation. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[172] H. Mönnikes,et al. Peripheral administration of cholecystokinin activates c-fos expression in the locus coeruleus/subcoeruleus nucleus, dorsal vagal complex and paraventricular nucleus via capsaicin-sensitive vagal afferents and CCK-A receptors in the rat , 1997, Brain Research.
[173] G. Hervey,et al. The effects of fasting on plasma corticosterone kinetics in rats , 1991, British Journal of Nutrition.
[174] P. J. Larsen,et al. Preproglucagon derived peptides GLP-1, GLP-2 and oxyntomodulin in the CNS: Role of peripherally secreted and centrally produced peptides , 2010, Progress in Neurobiology.
[175] B. Roland,et al. Printed in U.S.A. Copyright © 1999 by The Endocrine Society Anatomical Distribution of Prolactin-Releasing Peptide and Its Receptor Suggests Additional Functions in the Central Nervous System and Periphery , 2022 .
[176] L. Rinaman. Interoceptive stress activates glucagon-like peptide-1 neurons that project to the hypothalamus. , 1999, American journal of physiology. Regulatory, integrative and comparative physiology.
[177] D. Morilak,et al. Modulatory effects of norepinephrine in the lateral bed nucleus of the stria terminalis on behavioral and neuroendocrine responses to acute stress , 2002, Neuroscience.
[178] N. Darcel,et al. Inhibition of food intake induced by acute stress in rats is due to satiation effects , 2011, Physiology & Behavior.