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Nerve cell metabolic activity is monitored in multiple brain regions, including the hypothalamus and hindbrain dorsal vagal complex (DVC), but it is unclear if individual metabolosensory loci operate autonomously or interact to coordinate central nervous system (CNS) reactivity to energy imbalance. This research addressed the hypothesis that hypoglycemia-associated DVC lactoprivation stimulates hypothalamic AMPK activity and metabolic neurotransmitter expression. As DVC catecholaminergic neurons express biomarkers for metabolic monitoring, we investigated whether these cells are a source of lactate deficit signaling to the hypothalamus. Caudal fourth ventricle (CV4) infusion of the glucose metabolite l-lactate during insulin-induced hypoglycemia reversed changes in DVC A2 noradrenergic, arcuate neuropeptide Y (NPY) and pro-opiomelanocortin (POMC), and lateral hypothalamic orexin-A (ORX) neuronal AMPK activity, coincident with exacerbation of hypoglycemia. Hindbrain lactate repletion also blunted hypoglycemic upregulation of arcuate NPY mRNA and protein. This treatment did not alter hypoglycemic paraventricular oxytocin (OT) and lateral hypothalamic ORX mRNA profiles, but exacerbated or reversed adjustments in OT and ORX neuropeptide synthesis, respectively. CV4 delivery of the monocarboxylate transporter inhibitor, 4-CIN, increased A2 phosphoAMPK (pAMPK), elevated circulating glucose, and stimulated feeding, responses that were attenuated by 6-hydroxydopamine pretreatment. 4-CIN-infused rats exhibited increased (NPY, ORX neurons) or decreased (POMC neurons) pAMPK concurrent with hyperglycemia. These data show that hindbrain lactoprivic signaling regulates hypothalamic AMPK and key effector neurotransmitter responses to hypoglycemia. Evidence that A2 AMPK activity is lactate-dependent, and that DVC catecholamine cells are critical for lactoprivic control of glucose, feeding, and hypothalamic AMPK, implies A2 derivation of this metabolic regulatory stimulus.
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http://dx.doi.org/10.1152/ajpregu.00151.2013 | DOI Listing |
FASEB J
September 2025
Key Laboratory of Adolescent Health Assessment and Exercise Intervention, Ministry of Education, East China Normal University, Shanghai, China.
The molecular clock exhibits distinct characteristics across various tissues and can be synchronized by particular stimuli. Furthermore, there is an intricate interplay among the molecular clocks within different tissues. In this context, we present an overview of the tissue-specific molecular clock and discuss pivotal nonphotic regulators that govern the host's circadian rhythms and metabolic processes.
View Article and Find Full Text PDFNeurochem Res
September 2025
School of Basic Pharmaceutical and Toxicological Sciences, College of Pharmacy, University of Louisiana at Monroe, Monroe, LA, 71201, USA.
Alpha-2 (α2-) tanycytes line the ventral wall of the third ventricle where they ostensibly engage in metabolic screening. The oxidizable glycolytic end-product L-lactate is a gauge of hindbrain energy stability that is imparted to forebrain glucose-regulatory loci by norepinephrine signaling. Current research used a validated whole-animal model for insulin-induced hypoglycemia (IIH) to address the premise that hindbrain lactate status imposes sex-specific control of eu- and/or hypoglycemic patterns of α2-tanycyte chemosensor gene transcription in vivo.
View Article and Find Full Text PDFFront Physiol
August 2025
College of Plant Protection, Shanxi Agricultural University, Taiyuan, China.
To investigate into the role of leptin in body mass in high-fat-fed animals. Male striped field mice () fed high-fat diets were given leptin (0.5 μg/g.
View Article and Find Full Text PDFGlia
July 2025
Department of Physiology, University of Lausanne, Lausanne, Switzerland.
In the hypothalamus, detection of energy substrates such as glucose is essential to regulate food intake and peripheral energy homeostasis. Metabolic interactions between astrocytes and neurons via lactate exchange have been proposed as a hypothalamic glucose-sensing mechanism, but the molecular basis remains uncertain. Mouse hypothalamic astrocytes in vitro were found to exhibit a stronger glycolytic phenotype in basal conditions than cortical astrocytes.
View Article and Find Full Text PDFJ Neural Transm (Vienna)
June 2025
Department of Pharmacology and Croatian Institute of Brain Research, University of Zagreb School of Medicine, Zagreb, Croatia.
Alzheimer's disease (AD) is a progressive neurodegenerative disorder characterized by cognitive decline, metabolic dysregulation, brain insulin resistance, and oxidative stress. Familial AD (fAD) models, like the Tg2576 mice, offer insights into early-onset AD; however, their relevance to sporadic AD remains limited. This study investigated brain insulin signalling and oxidative stress in Tg2576 mice at presymptomatic (7-month) and mild AD (12-month) stages, focusing on the hippocampus and hypothalamus.
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