1.Basal Forebrain Cholinergic Deficits Reduce Glucose Metabolism and Function of Cholinergic and GABAergic Systems in the Cingulate Cortex.
Da Un JEONG ; Jin Hwan OH ; Ji Eun LEE ; Jihyeon LEE ; Zang Hee CHO ; Jin Woo CHANG ; Won Seok CHANG
Yonsei Medical Journal 2016;57(1):165-172
PURPOSE: Reduced brain glucose metabolism and basal forebrain cholinergic neuron degeneration are common features of Alzheimer's disease and have been correlated with memory function. Although regions representing glucose hypometabolism in patients with Alzheimer's disease are targets of cholinergic basal forebrain neurons, the interaction between cholinergic denervation and glucose hypometabolism is still unclear. The aim of the present study was to evaluate glucose metabolism changes caused by cholinergic deficits. MATERIALS AND METHODS: We lesioned basal forebrain cholinergic neurons in rats using 192 immunoglobulin G-saporin. After 3 weeks, lesioned animals underwent water maze testing or were analyzed by 18F-2-fluoro-2-deoxyglucose positron emission tomography. RESULTS: During water maze probe testing, performance of the lesioned group decreased with respect to time spent in the target quadrant and platform zone. Cingulate cortex glucose metabolism in the lesioned group decreased, compared with the normal group. Additionally, acetylcholinesterase activity and glutamate decarboxylase 65/67 expression declined in the cingulate cortex. CONCLUSION: Our results reveal that spatial memory impairment in animals with selective basal forebrain cholinergic neuron damage is associated with a functional decline in the GABAergic and cholinergic system associated with cingulate cortex glucose hypometabolism.
Acetylcholine/metabolism
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Alzheimer Disease
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Animals
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Antibodies, Monoclonal/*pharmacology
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Basal Forebrain/*drug effects/metabolism
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Cholinergic Agents/administration & dosage/*pharmacology
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Cholinergic Neurons/*drug effects/metabolism
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Fluorodeoxyglucose F18
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GABAergic Neurons/*drug effects/metabolism
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Glucose/*metabolism
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Gyrus Cinguli/*drug effects/metabolism
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Humans
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Injections
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Maze Learning
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Motor Activity/physiology
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Positron-Emission Tomography
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Rats
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Ribosome Inactivating Proteins, Type 1/*pharmacology
2.Histamine Excites Rat GABAergic Ventral Pallidum Neurons via Co-activation of H1 and H2 Receptors.
Miao-Jin JI ; Xiao-Yang ZHANG ; Xiao-Chun PENG ; Yang-Xun ZHANG ; Zi CHEN ; Lei YU ; Jian-Jun WANG ; Jing-Ning ZHU
Neuroscience Bulletin 2018;34(6):1029-1036
The ventral pallidum (VP) is a crucial component of the limbic loop of the basal ganglia and participates in the regulation of reward, motivation, and emotion. Although the VP receives afferent inputs from the central histaminergic system, little is known about the effect of histamine on the VP and the underlying receptor mechanism. Here, we showed that histamine, a hypothalamic-derived neuromodulator, directly depolarized and excited the GABAergic VP neurons which comprise a major cell type in the VP and are responsible for encoding cues of incentive salience and reward hedonics. Both postsynaptic histamine H1 and H2 receptors were found to be expressed in the GABAergic VP neurons and co-mediate the excitatory effect of histamine. These results suggested that the central histaminergic system may actively participate in VP-mediated motivational and emotional behaviors via direct modulation of the GABAergic VP neurons. Our findings also have implications for the role of histamine and the central histaminergic system in psychiatric disorders.
Action Potentials
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drug effects
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Animals
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Basal Forebrain
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cytology
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Dimaprit
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pharmacology
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Dose-Response Relationship, Drug
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Electric Stimulation
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Female
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GABAergic Neurons
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drug effects
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Histamine
;
pharmacology
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Histamine Agonists
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pharmacology
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Lysine
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analogs & derivatives
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metabolism
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Male
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Patch-Clamp Techniques
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Pyridines
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pharmacology
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Rats
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Rats, Sprague-Dawley
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Receptors, Histamine H1
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metabolism
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Receptors, Histamine H2
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metabolism
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Sodium Channel Blockers
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pharmacology
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Tetrodotoxin
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pharmacology
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gamma-Aminobutyric Acid
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metabolism