All Stories

  1. The impact of antidiabetic treatment on human hypothalamic infundibular neurons and microglia
  2. After‐Effects of Time‐Restricted Feeding on Whole‐Body Metabolism and Gene Expression in Four Different Peripheral Tissues
  3. Synergistic Effect of Feeding Time and Diet on Hepatic Steatosis and Gene Expression in Male Wistar Rats
  4. Restoring the autonomic balance to reduce liver steatosis
  5. Neuropeptide changes in the suprachiasmatic nucleus are associated with the development of hypertension
  6. Potential Role for the Gut Microbiota in Modulating Host Circadian Rhythms and Metabolic Health
  7. Circadian clocks and insulin resistance
  8. An Ultradian Feeding Schedule in Rats Affects Metabolic Gene Expression in Liver, Brown Adipose Tissue and Skeletal Muscle with Only Mild Effects on Circadian Clocks
  9. An ultradian feeding schedule in rats affects metabolic gene expression in liver, brown adipose tissue and skeletal muscle with only mild effects on circadian clocks
  10. The role of the daily feeding rhythm in the regulation of the day/night rhythm in triglyceride secretion in rats
  11. Circadian rhythms in mitochondrial respiration
  12. Effects of feeding time on daily rhythms of neuropeptide and clock gene expression in the rat hypothalamus
  13. Sleep Deprivation and Caffeine Treatment Potentiate Photic Resetting of the Master Circadian Clock in a Diurnal Rodent
  14. Suprachiasmatic Nucleus Interaction with the Arcuate Nucleus; Essential for Organizing Physiological Rhythms
  15. Hypothalamic effects of thyroid hormone
  16. Infusion of fluoxetine, a serotonin reuptake inhibitor, in the shell region of the nucleus accumbens increases blood glucose concentrations in rats
  17. Effects of Chronic Estrogen Administration in the Ventromedial Nucleus of the Hypothalamus (VMH) on Fat and Bone Metabolism in Ovariectomized Rats
  18. Dim light at night disturbs the daily sleep-wake cycle in the rat
  19. Ultradian feeding in mice not only affects the peripheral clock in the liver, but also the master clock in the brain
  20. Feeding during the resting phase causes profound changes in physiology and desynchronization between liver and muscle rhythms of rats
  21. Effects of Intracerebroventricular Administration of Neuropeptide Y on Metabolic Gene Expression and Energy Metabolism in Male Rats
  22. Impact of obesity on taste receptor expression in extra-oral tissues: emphasis on hypothalamus and brainstem
  23. Sleep restriction acutely impairs glucose tolerance in rats
  24. Individual Differences in Sleep Timing Relate to Melanopsin-Based Phototransduction in Healthy Adolescents and Young Adults
  25. Suprachiasmatic Nucleus Neuropeptides and Their Control of Endogenous Glucose Production
  26. A model for chronic, intrahypothalamic thyroid hormone administration in rats
  27. The role of feeding rhythm, adrenal hormones and neuronal inputs in synchronizing daily clock gene rhythms in the liver
  28. The Leeds food preference questionnaire after mild sleep restriction — A small feasibility study
  29. Absence of diurnal variation in visceromotor response to colorectal distention in normal Long Evans rats
  30. Effects of daily timing of saturated fat and liquid sugar intake on energy balance
  31. Acute effect of ambient light intensity on glucose and lipid metabolism and appetite in healthy humans and obese patients with type 2 diabetes
  32. Inhibitory Effect of the Melanocortin Receptor Agonist Melanotan-II (MTII) on Feeding Depends on Dietary Fat Content and not Obesity in Rats on Free-Choice Diets
  33. Circadian rhythms in glucose and lipid metabolism in nocturnal and diurnal mammals
  34. Effects of 6-meals-a-day feeding and 6-meals-a-day feeding combined with adrenalectomy on daily gene expression rhythms in rat epididymal white adipose tissue
  35. Effects of central gastrin-releasing peptide on glucose metabolism
  36. Visualization of Active Glucocerebrosidase in Rodent Brain with High Spatial Resolution following In Situ Labeling with Fluorescent Activity Based Probes
  37. The Hypothalamic-Pituitary-Adrenal Axis: Circadian Dysregulation and Obesity
  38. Serotonin, a possible intermediate between disturbed circadian rhythms and metabolic disease
  39. Sleep and Food Choice in a Dutch Student Population
  40. Hepatic denervation and dyslipidemia in obese Zucker (fa/fa) rats
  41. Neuropeptide Y Activity in the Nucleus Accumbens Modulates Feeding Behavior and Neuronal Activity
  42. Rodent models to study the metabolic effects of shiftwork in humans
  43. Central nervous system neuropeptide Y regulates mediators of hepatic phospholipid remodeling and very low-density lipoprotein triglyceride secretion via sympathetic innervation
  44. Autonomic Regulation of Hepatic Glucose Production
  45. Impact of nutrients on circadian rhythmicity
  46. Fasting-Induced Changes in Hepatic Thyroid Hormone Metabolism in Male Rats Are Independent of Autonomic Nervous Input to the Liver
  47. MECHANISMS IN ENDOCRINOLOGY: Beyond the fixed setpoint of the hypothalamus–pituitary–thyroid axis
  48. Differential effects of fasting vs food restriction on liver thyroid hormone metabolism in male rats
  49. Timing of fat and liquid sugar intake alters substrate oxidation and food efficiency in male Wistar rats
  50. Preface
  51. Hypothalamic control of hepatic lipid metabolism via the autonomic nervous system
  52. Effects of adrenalectomy on daily gene expression rhythms in the rat suprachiasmatic and paraventricular hypothalamic nuclei and in white adipose tissue
  53. Circadian control of glucose metabolism
  54. Estradiol Regulates Brown Adipose Tissue Thermogenesis via Hypothalamic AMPK
  55. Neuropeptide Y and Leptin Sensitivity is Dependent on Diet Composition
  56. Breakfast replacement with a low-glycaemic response liquid formula in patients with type 2 diabetes: a randomised clinical trial
  57. NFκB Signaling Is Essential for the Lipopolysaccharide-Induced Increase of Type 2 Deiodinase in Tanycytes
  58. Glucose and Fat Metabolism in Narcolepsy and the Effect of Sodium Oxybate: A Hyperinsulinemic-Euglycemic Clamp Study
  59. Differential Modulation of Arcuate Nucleus and Mesolimbic Gene Expression Levels by Central Leptin in Rats on Short-Term High-Fat High-Sugar Diet
  60. Hormonal Control of Metabolism by the Hypothalamus-Autonomic Nervous System-Liver Axis
  61. Neuroscience of glucose homeostasis
  62. Chronic treatment with olanzapine increases adiposity by changing fuel substrate and causes desensitization of the acute metabolic side effects
  63. Olanzapine-induced changes in glucose metabolism are independent of the melanin-concentrating hormone system
  64. Brain areas and pathways in the regulation of glucose metabolism
  65. Central administration of an orexin receptor 1 antagonist prevents the stimulatory effect of Olanzapine on endogenous glucose production
  66. The autonomic nervous system regulates postprandial hepatic lipid metabolism
  67. Hypothalamus
  68. Daily Regulation of Hormone Profiles
  69. Voeding en de biologische klok
  70. Alterations in blood glucose and plasma glucagon concentrations during deep brain stimulation in the shell region of the nucleus accumbens in rats
  71. The Suprachiasmatic Nucleus Controls Circadian Energy Metabolism and Hepatic Insulin Sensitivity
  72. Melanocortin 4 receptor distribution in the human hypothalamus
  73. High calorie diet triggers hypothalamic angiopathy
  74. Intrahypothalamic Estradiol Regulates Glucose Metabolism via the Sympathetic Nervous System in Female Rats
  75. PS18 - 85. Regulation of circadian rhythms in rat white adipose tissue
  76. Increased Risk of Diabetes due to Obesity: Does Chronodisruption Play a Role?
  77. Acute Peripheral but Not Central Administration of Olanzapine Induces Hyperglycemia Associated with Hepatic and Extra-Hepatic Insulin Resistance
  78. Differential Involvement of the Suprachiasmatic Nucleus in Lipopolysaccharide-Induced Plasma Glucose and Corticosterone Responses
  79. Intrahypothalamic Estradiol Modulates Hypothalamus-Pituitary-Adrenal-Axis Activity in Female Rats
  80. Thyroid hormone transporters and deiodinases in the developing human hypothalamus
  81. AgRP and NPY Expression in the Human Hypothalamic Infundibular Nucleus Correlate with Body Mass Index, Whereas Changes in αMSH Are Related to Type 2 Diabetes
  82. Suppressor of cytokine signaling 3 in the human hypothalamus
  83. Hypothalamic Neuropeptide Y (NPY) Controls Hepatic VLDL-Triglyceride Secretion in Rats via the Sympathetic Nervous System
  84. Altered Circadian Rhythm of Melatonin Concentrations in Hypocretin-Deficient Men
  85. Unaltered Instrumental Learning and Attenuated Body-Weight Gain in Rats During Non-rotating Simulated Shiftwork
  86. Circadian rhythms in the hypothalamo–pituitary–adrenal (HPA) axis
  87. Leptin Administration Restores the Fasting-Induced Increase of Hepatic Type 3 Deiodinase Expression in Mice
  88. Orexins, feeding, and energy balance
  89. Nutrition and the circadian timing system
  90. Circadian rhythms in white adipose tissue
  91. Preface
  92. Glucocorticoid Signaling in the Arcuate Nucleus Modulates Hepatic Insulin Sensitivity
  93. De rol van de biologische klok en het autonome zenuwstelsel bij wakker worden
  94. PS16 - 79. The autonomic nervous system and lipid metabolism during feeding
  95. PS1 - 5. Deep brain stimulation in the nucleus accumbens alters glucose metabolism in rats
  96. Neuropeptide Y sensitivity in an animal model of diet induced obesity
  97. Obesogenic diets with fat and sugar reduce site specific sensitivity to insulin
  98. Mammalian clock output mechanisms
  99. Expression of Thyroid Hormone Transporters in the Human Hypothalamus
  100. Acute Restraint Stress Increases Intrahypothalamic Oestradiol Concentrations in Conjunction with Increased Hypothalamic Oestrogen Receptor β and Aromatase mRNA Expression in Female Rats
  101. Circadian disruption and SCN control of energy metabolism
  102. Autonomic MC Sets the Metabolic Tone
  103. Energy Homeostasis and Body Weight before and after Cessation of Block and Replacement Therapy in Euthyroid Patients with Graves' Disease
  104. Hypothalamic control of energy metabolism via the autonomic nervous system
  105. A free-choice high-fat high-sugar diet induces glucose intolerance and insulin unresponsiveness to a glucose load not explained by obesity
  106. An online solid-phase extraction-liquid chromatography-tandem mass spectrometry method to study the presence of thyronamines in plasma and tissue and their putative conversion from 13C6-thyroxine
  107. The hypothalamic clock and its control of glucose homeostasis
  108. The importance of choice for the obesogenic properties of a high-fat high-sugar diet
  109. Vasopressin and the Output of the Hypothalamic Biological Clock
  110. Novel neural pathways for metabolic effects of thyroid hormone
  111. The role of the autonomic nervous liver innervation in the control of energy metabolism
  112. Pituitary Adenylate Cyclase-Activating Polypeptide Stimulates Glucose Production via the Hepatic Sympathetic Innervation in Rats
  113. Suprachiasmatic Nucleus and Autonomic Nervous System Influences on Awakening From Sleep
  114. Thyroid Hormone Effects on Whole-Body Energy Homeostasis and Tissue-Specific Fatty Acid Uptakein Vivo
  115. Pmch expression during early development is critical for normal energy homeostasis
  116. A Major Role for Perifornical Orexin Neurons in the Control of Glucose Metabolism in Rats
  117. Effects of Nocturnal Light on (Clock) Gene Expression in Peripheral Organs: A Role for the Autonomic Innervation of the Liver
  118. Thyroid hormone modulates glucose production via a sympathetic pathway from the hypothalamic paraventricular nucleus to the liver
  119. Central effects of thyronamines on glucose metabolism in rats
  120. Circadian Metabolic Rhythms Regulated by the Suprachiasmatic Nucleus
  121. Food anticipation in Bmal1-/- and AAV-Bmal1 rescued mice: a reply to Fuller et al
  122. Standards of evidence in chronobiology: critical review of a report that restoration of Bmal1 expression in the dorsomedial hypothalamus is sufficient to restore circadian food anticipatory rhythms in Bmal1-/- mice
  123. The active metabolite of leflunomide, A77 1726, protects rat hepatocytes against bile acid-induced apoptosis
  124. Circadian Control of the Daily Plasma Glucose Rhythm: An Interplay of GABA and Glutamate
  125. Potentiation Effect of Vasopressin on Melatonin Secretion as Determined by Trans-Pineal Microdialysis in the Rat
  126. Plasma insulin concentrations during a hyperinsulinaemic clamp: what do we measure?
  127. Intracerebroventricular Administration of Neuropeptide Y Induces Hepatic Insulin Resistance via Sympathetic Innervation
  128. A circulating ghrelin mimetic attenuates light-induced phase delay of mice and light-induced Fos expression in the suprachiasmatic nucleus of rats
  129. Daily Rhythms in Metabolic Liver Enzymes and Plasma Glucose Require a Balance in the Autonomic Output to the Liver
  130. Effects of thyrotoxicosis and selective hepatic autonomic denervation on hepatic glucose metabolism in rats
  131. Opposite actions of hypothalamic vasopressin on circadian corticosterone rhythm in nocturnal versus diurnal species
  132. Differential Effects of Recombinant Adeno-Associated Virus-Mediated Neuropeptide Y Overexpression in the Hypothalamic Paraventricular Nucleus and Lateral Hypothalamus on Feeding Behavior
  133. Minireview: Circadian Control of Metabolism by the Suprachiasmatic Nuclei
  134. 7.4. The balance of life: hypothalamic communication with the body
  135. “Diabetes of the elderly” and type 2 diabetes in younger patients: Possible role of the biological clock
  136. SCN Outputs and the Hypothalamic Balance of Life
  137. Effects of evening vs morning thyroxine ingestion on serum thyroid hormone profiles in hypothyroid patients
  138. Pineal clock gene oscillation is disturbed in Alzheimer's disease, due to functional disconnection from the "master clock"
  139. Hormones and the Autonomic Nervous System are Involved in Suprachiasmatic Nucleus Modulation of Glucose Homeostasis
  140. Tracing from Fat Tissue, Liver, and Pancreas: A Neuroanatomical Framework for the Role of the Brain in Type 2 Diabetes
  141. Biological Clock Control of Glucose Metabolism
  142. A Network of (Autonomic) Clock Outputs
  143. A Network of (Autonomic) Clock Outputs
  144. The hypothalamic clock and its control of glucose homeostasis
  145. Organization of circadian functions: interaction with the body
  146. Preface
  147. The suprachiasmatic nucleus controls the daily variation of plasma glucose via the autonomic output to the liver: are the clock genes involved?
  148. Daily Variations in Type II Iodothyronine Deiodinase Activity in the Rat Brain as Controlled by the Biological Clock
  149. In vivo evidence for a controlled offset of melatonin synthesis at dawn by the suprachiasmatic nucleus in the rat
  150. Suprachiasmatic GABAergic Inputs to the Paraventricular Nucleus Control Plasma Glucose Concentrations in the Rat via Sympathetic Innervation of the Liver
  151. Hyper and hypothyroidism change the expression and diurnal variation of thyroid hormone receptor isoforms in rat liver without major changes in their zonal distribution
  152. Diurnal Variation in Rat Liver Thyroid Hormone Receptor (TR)-α Messenger Ribonucleic Acid (mRNA) Is Dependent on the Biological Clock in the Suprachiasmatic Nucleus, whereas Diurnal Variation of TRβ1 mRNA Is Modified by Food Intake
  153. Glutamatergic clock output stimulates melatonin synthesis at night
  154. The Biological Clock: The Bodyguard of Temporal Homeostasis
  155. Temporal organization of the 24-h corticosterone rhythm in the diurnal murid rodent Arvicanthis ansorgei Thomas 1910
  156. The Diurnal Modulation of Hormonal Responses in the Rat Varies with Different Stimuli
  157. HIV-associated adipose redistribution syndrome as a selective autonomic neuropathy
  158. Central nervous determination of food storage—a daily switch from conservation to expenditure: implications for the metabolic syndrome
  159. Hypothesis: Shifting the Equilibrium From Activity to Food Leads to Autonomic Unbalance and the Metabolic Syndrome
  160. White Adipose Tissue: Getting Nervous
  161. The suprachiasmatic nucleus balances sympathetic and parasympathetic output to peripheral organs through separate preautonomic neurons
  162. The Daily Rhythm in Plasma Glucagon Concentrations in the Rat Is Modulated by the Biological Clock and by Feeding Behavior
  163. The biological clock tunes the organs of the body: timing by hormones and the autonomic nervous system
  164. The biological clock and its control of glucose homeostasis
  165. SCN transmitters and the timing of hormonal rhythms
  166. Correlation of Per1 and Per2 genes expression pattern in the SCN and melatonin peak reappearance after an 8h advance of the light/dark cycle
  167. Cardiovascular Control by the Suprachiasmatic Nucleus: Neural and Neuroendocrine Mechanisms in Human and Rat
  168. Suprachiasmatic control of melatonin synthesis in rats: inhibitory and stimulatory mechanisms
  169. Selective parasympathetic innervation of subcutaneous and intra-abdominal fat — functional implications
  170. Selective parasympathetic innervation of subcutaneous and intra-abdominal fat — functional implications
  171. Selective parasympathetic innervation of subcutaneous and intra-abdominal fat — functional implications
  172. Output pathways of the mammalian suprachiasmatic nucleus: coding circadian time by transmitter selection and specific targeting
  173. Chapter 5 Central vasopressin systems and steroid hormones
  174. A Suprachiasmatic Nucleus Generated Rhythm In Basal Glucose Concentrations
  175. Role for the Pineal and Melatonin in Glucose Homeostasis: Pinealectomy Increases Night-Time Glucose Concentrations
  176. Hypothalamic integration of central and peripheral clocks
  177. Control of the Estradiol-Induced Prolactin Surge by the Suprachiasmatic Nucleus
  178. A Daily Rhythm in Glucose Tolerance: A Role for the Suprachiasmatic Nucleus
  179. The Suprachiasmatic Nucleus Generates the Diurnal Changes in Plasma Leptin Levels
  180. Control of the Estradiol-Induced Prolactin Surge by the Suprachiasmatic Nucleus
  181. The Suprachiasmatic Nucleus Generates the Diurnal Changes in Plasma Leptin Levels
  182. The stimulatory effect of vasopressin on the luteinizing hormone surge in ovariectomized, estradiol-treated rats is time-dependent
  183. Functional Connections between the Suprachiasmatic Nucleus and the Thyroid Gland as Revealed by Lesioning and Viral Tracing Techniques in the Rat
  184. Melatonin sees the light: blocking GABA-ergic transmission in the paraventricular nucleus induces daytime secretion of melatonin
  185. Polysynaptic neural pathways between the hypothalamus, including the suprachiasmatic nucleus, and the liver
  186. Restricted Daytime Feeding Attenuates Reentrainment of the Circadian Melatonin Rhythm after an 8-h Phase Advance of the Light-Dark Cycle
  187. Circadian Organization of the Autonomic Nervous System
  188. Interindividual differences in the pattern of melatonin secretion of the Wistar rat
  189. Vasopressin induces a luteinizing hormone surge in ovariectomized, estradiol-treated rats with lesions of the suprachiasmatic nucleus
  190. GABA release from suprachiasmatic nucleus terminals is necessary for the light-induced inhibition of nocturnal melatonin release in the rat
  191. Anatomical and functional demonstration of a multisynaptic suprachiasmatic nucleus adrenal (cortex) pathway
  192. The suprachiasmatic nucleus—paraventricular nucleus interactions: A bridge to the neuroendocrine and autonomic nervous system
  193. Restricted Daytime Feeding Modifies Suprachiasmatic Nucleus Vasopressin Release in Rats
  194. Circadian Control of Insulin Secretion Is Independent of the Temporal Distribution of Feeding
  195. Novel environment induced inhibition of corticosterone secretion: physiological evidence for a suprachiasmatic nucleus mediated neuronal hypothalamo-adrenal cortex pathway
  196. Oxytocin innervation of spinal preganglionic neurons projecting to the superior cervical ganglion in the rat
  197. Direct vasoactive intestinal polypeptide-containing projection from the suprachiasmatic nucleus to spinal projecting hypothalamic paraventricular neurons
  198. Decrease of Endogenous Vasopressin Release Necessary for Expression of the Circadian Rise in Plasma Corticosterone: a Reverse Microdialysis Study
  199. Chapter 19 Rhythms of inhibitory and excitatory output from the circadian timing system as revealed by in vivo microdialysis
  200. Preface
  201. GABA Receptors in the Region of the Dorsomedial Hypothalamus of Rats Are Implicated in the Control of Melatonin and Corticosterone Release
  202. In vivo measurement of a diurnal variation in vasopressin release in the rat suprachiasmatic nucleus
  203. An attempt to correlate brain areas containing melatonin-binding sites with rhythmic functions: a study in five hibernator species
  204. Effects of illumination and enucleation on substance-P-immunoreactive structures in subcortical visual centers of golden hamster and Wistar rat
  205. Specific destruction of the serotonergic afferents to the suprachiasmatic nuclei prevents triazolam-induced phase advances of hamster activity rhythms
  206. Induction of arousal in hibernating European hamsters (Cricetus cricetus L.) by vasopressin infusion in the lateral septum
  207. Vasopressin and vasoactive intestinal peptide infused in the paraventricular nucleus of the hypothalamus elevate plasma melatonin levels
  208. Efferent projections of the suprachiasmatic nucleus in the golden hamster (Mesocricetus auratus)
  209. No triazolam-induced expression of Fos protein in raphe nuclei of the male Syrian hamster
  210. Neonatal lesions of the ventral tegmental area affect monoaminergic responses to stress in the medial prefrontal cortex and other dopamine projection areas in adulthood
  211. Sexual differences and seasonal variations in vasoactive intestinal peptide immunoreactivity in the suprachiasmatic nucleus of jerboa (Jaculus orientalis)
  212. Vasopressin-containing neurons of the suprachiasmatic nuclei inhibit corticosterone release
  213. Chapter 27 Peptidergic transmitters of the suprachiasmatic nuclei and the control of circadian rhythmicity
  214. Chapter 12 Age-dependent effects of lesioning the mesocortical dopamine system upon prefrontal cortex morphometry and PFC-related behaviors
  215. Morphometric analysis of prefrontal cortical development following neonatal lesioning of the dopaminergic mesocortical projection
  216. Ontogeny of open field activity in rats after neonatal lesioning of the mesocortical dopaminergic projection
  217. Monoamine and metabolite levels in the prefrontal cortex and the mesolimbic forebrain following neonatal lesions of the ventral tegmental area
  218. Influence of the mesocortical dopaminergic system on activity, food hoarding, social-agonistic behavior, and spatial delayed alternation in male rats.
  219. Influence of the mesocortical dopaminergic system on activity, food hoarding, social^agonistic behavior, and spatial delayed alternation in male rats.
  220. Neonatal thermal lesions of the mesolimbocortical dopaminergic projection decrease food-hoarding behavior
  221. The pre- and postnatal development of the dopaminergic cell groups in the ventral mesencephalon and the dopaminergic innervation of the striatum of the rat
  222. Development of the dopaminergic innervation in the prefrontal cortex of the rat
  223. Effects of neonatal thermal lesioning of the mesocortical dopaminergic projection on the development of the rat prefrontal cortex
  224. Neuroendocrine Regulation and the Autonomic Nervous System
  225. Faculty of 1000 evaluation for Pleiotropic roles of bile acids in metabolism.
  226. Faculty of 1000 evaluation for Rev-erbalpha, a heme sensor that coordinates metabolic and circadian pathways.
  227. Faculty of 1000 evaluation for Deconstruction of a neural circuit for hunger.
  228. Faculty of 1000 evaluation for Differential rescue of light- and food-entrainable circadian rhythms.
  229. Faculty of 1000 evaluation for Beneficial effects of subcutaneous fat transplantation on metabolism.
  230. Faculty of 1000 evaluation for Characterizing a mammalian circannual pacemaker.
  231. Faculty of 1000 evaluation for Social jetlag and obesity.