Literature DB >> 8487215

Membrane properties and synaptic potentials of three types of neurone in rat lateral amygdala.

S Sugita1, E Tanaka, R A North.   

Abstract

1. Intracellular recordings were made from the lateral nucleus of the amygdala in tissue slices cut from rat brain and maintained in vitro. 2. Three types of neurones were distinguished according to the after-potential that followed an action potential. Type 1 cells (44%, n = 225) had depolarizing after-potentials, resulting from a calcium-dependent chloride conductance. Type 2 cells (48%) had long-lasting (> 250 ms) hyperpolarizing after-potentials and type 3 cells (8%) had shorter hyperpolarizing after-potentials. The average resting potentials of the three cell types were -78, -69 and -62 mV respectively. Intracellular labelling with biocytin showed that type 1 cells were pyramidal neurones; type 2 and type 3 cells were non-pyramidal. 3. Experiments with receptor antagonists identified synaptic potentials mediated by excitatory amino acids and by GABA (acting at GABAA receptors) in all three cell types. A longer duration inhibitory synaptic potential resulting from activation of GABAB receptors was present in type 1 (pyramidal) and type 2 cells. 4. Cholecystokinin (100 nM to 1 microM) depolarized type 2 and type 3 cells but had no effect on type 1 (pyramidal) cells. Baclofen (1-3 microM) hyperpolarized type 1 and type 2, but not type 3 cells. [Met5]enkephalin (1-10 microM) hyperpolarized only type 2 cells. 5. It is concluded that the lateral nucleus of the amygdala contains pyramidal neurones and two types of non-pyramidal neurone; these can be differentiated by membrane properties, synaptic inputs and sensitivities to transmitters.

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Year:  1993        PMID: 8487215      PMCID: PMC1175237          DOI: 10.1113/jphysiol.1993.sp019495

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  23 in total

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4.  Enkephalin blocks inhibitory pathways in the vertebrate CNS.

Authors:  R A Nicoll; B E Alger; C E Jahr
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5.  Injections of kainic acid into the amygdaloid complex of the rat: an electrographic, clinical and histological study in relation to the pathology of epilepsy.

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Journal:  Neuroscience       Date:  1980       Impact factor: 3.590

6.  Quantitative 3H-thymidine radiographic analyses of neurogenesis in the rat amygdala.

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7.  Unit activity of amygdala and hippocampal neurons: effects of morphine and benzodiazepines.

Authors:  D T Chou; S C Wang
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Authors:  S Sugita; S W Johnson; R A North
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9.  Morphology of peptide-containing neurons in the rat basolateral amygdaloid nucleus.

Authors:  A J McDonald
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  17 in total

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9.  Calcium-activated chloride channels (CaCCs) regulate action potential and synaptic response in hippocampal neurons.

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10.  Modulation of high voltage-activated calcium channels by somatostatin in acutely isolated rat amygdaloid neurons.

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