Literature DB >> 9614242

Electrophysiological development of central neurons in the Drosophila embryo.

R A Baines1, M Bate.   

Abstract

In this study, we describe the development of electrical properties of Drosophila embryonic central neurons in vivo. Using whole-cell voltage clamp, we describe the onset of expression of specific voltage- and ligand-gated ionic currents and the first appearance of endogenous and synaptic activity. The first currents occur during midembryogenesis [late stage 16, 13-14 hr after egg laying (AEL)] and consist of a delayed outward potassium current (IK) and an acetylcholine-gated inward cation current (IACh). As development proceeds, other voltage-activated currents arise sequentially. An inward calcium current (ICa) is first observed at 15 hr AEL, an inward sodium current (INa) at 16 hr AEL, and a rapidly inactivating outward potassium current (IA) at 17 hr AEL. The inward calcium current is composed of at least two individual and separable components that exhibit small temporal differences in their development. Endogenous activity is first apparent at 15 hr AEL and consists of small events (peak amplitude, 5 pA) that probably result from the random opening of relatively few numbers of ion channels. At 16 hr AEL, discrete (10-15 msec duration) currents that exhibit larger amplitude (25 pA maximum) and rapid activation but slower inactivation first appear. We identify these latter currents as EPSCs, an indication that functional synaptic transmission is occurring. In the neurons from which we record, action potentials first occur at 17 hr AEL. This study is the first to record from Drosophila embryonic central neurons in vivo and makes possible future work to define the factors that shape the electrical properties of neurons during development.

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Year:  1998        PMID: 9614242      PMCID: PMC6792699     

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  38 in total

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Authors:  S Tsunoda; L Salkoff
Journal:  J Neurosci       Date:  1995-03       Impact factor: 6.167

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9.  Resolution and pharmacological analysis of the voltage-dependent calcium channels of Drosophila larval muscles.

Authors:  M L Gielow; G G Gu; S Singh
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  78 in total

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5.  The transcription factors islet and Lim3 combinatorially regulate ion channel gene expression.

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7.  Dendritic growth gated by a steroid hormone receptor underlies increases in activity in the developing Drosophila locomotor system.

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8.  Synaptic strengthening mediated by bone morphogenetic protein-dependent retrograde signaling in the Drosophila CNS.

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9.  Positional cues in the Drosophila nerve cord: semaphorins pattern the dorso-ventral axis.

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10.  Electrophysiological recording in the Drosophila embryo.

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