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PMID: 4778140 Published · ppublish English Journal Article

The electrical properties of the ectoderm in the amphibian embryo during induction and early development of the nervous system.

The Journal of physiology ·Vol. 235 ·No. 1 ·1973-11-00 ·Pages 267-86

Warner AE

Abstract

1. The electrical properties of ectodermal cells have been studied in embryos of the axolotl Ambystoma mexicanum between gastrulation and the closure of the neural tube.2. At the time of neural induction by the underlying mesoderm the mean membrane potential recorded in ectoderm cells was -30 mV (+/- 1.5 mV S.E. of mean) and in presumptive neural cells -27 mV (+/- 1.6 mV S.E. of mean).3. At late neural fold stages, when specification of the neuroectoderm is complete, the membrane potential in presumptive nerve cells was -44 mV (+/- 1.7 mV S.E. of mean). This is significantly greater than in cells of the surrounding ectoderm at the same developmental stage (-31 mV +/- 1.5 mV S.E. of mean).4. Current injected into an ectoderm cell spread freely throughout the neural and lateral ectoderm both before and after neural specification was complete.5. Voltage-current relations recorded at mid-neural fold stages in the lateral ectoderm and neural plate rectified in opposite directions. In the neural plate the slope conductance rose as the internal potential was made less negative; in the lateral ectoderm the slope conductance fell with depolarization.6. At the time of closure of the neural tube ectoderm and presumptive neural cells lose their low resistance connexions with each other. At the same time low resistance contacts are established across the mid line between ectoderm cells originally separated by the neural plate.7. After the neural tube has closed low resistance connexions remain between presumptive neural cells, although the degree of current spread from one cell to the next is not very great.8. The voltage-current relation recorded in neural tube cells showed a rise in slope conductance as the cell was depolarized.9. Occasionally signs of regenerative activity were seen, but the mechanism for generating a fully fledged action potential does not differentiate until after complete closure of the neural tube.

MeSH Terms
Ambystoma/embryology Animals Ectoderm/cytology,physiology Electrophysiology In Vitro Techniques Membrane Potentials Nervous System/embryology Neurons/physiology Time Factors
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Warner A E
References (18)
18 references, click to expand
  1. Electrophysiological evidence for low-resistance intercellular junctions in the early chick embryo.
    J Cell Biol. 1968 Jun;37(3):650-9 PMID: 11905198
  2. Electrical characteristics of Triturus egg cells during cleavage.
    J Gen Physiol. 1966 May;49(5):1019-27 PMID: 6006700
  3. Analysis of morphogenetic movements in the neural plate of the newt Taricha torosa.
    Dev Biol. 1968 Dec;18(6):537-52 PMID: 5751536
  4. Ionic communication between early embryonic cells.
    Dev Biol. 1969 Mar;19(3):228-43 PMID: 5788896
  5. A phase-shift model for the spatial and temporal organization of developing systems.
    J Theor Biol. 1969 Oct;25(1):49-107 PMID: 4390735
  6. An electron microscopic study of chordamesoderm-neurectoderm association in gastrulae of a toad, Xenopus laevis.
    J Exp Zool. 1969 Oct;172(2):153-79 PMID: 5372005
  7. Neural induction and differentiation with minimal numbers of cells.
    Dev Biol. 1970 Jun;22(2):185-99 PMID: 5424975
  8. Some bio-electric parameters of early Xenopus embryos.
    J Embryol Exp Morphol. 1970 Nov;24(3):535-53 PMID: 4992748
  9. Low-resistance junctions between cells in embryos and tissue culture.
    Curr Top Dev Biol. 1968;3:95-127 PMID: 4331697
  10. Metabolic coupling, ionic coupling and cell contacts.
    Nature. 1972 Feb 4;235(5336):262-5 PMID: 4551177
  11. Histological features of neural induction in Xenopus laevis.
    J Embryol Exp Morphol. 1971 Dec;26(3):543-70 PMID: 5146319
  12. Membrane ultrastructure at mammalian intercellular junctions.
    Prog Biophys Mol Biol. 1973;26:45-101 PMID: 4122630
  13. The distribution of sodium and potassium in amphibian embryos during early development.
    J Physiol. 1973 Jul;232(2):297-312 PMID: 4737869
  14. Intracellular and intercellular potentials in the early amphibian embryo.
    J Physiol. 1973 Jul;232(2):313-30 PMID: 4737870
  15. Electrical coupling across developmental boundaries in insect epidermis.
    Nature. 1973 Sep 7;245(5419):47-8 PMID: 4583131
  16. The development of the nervous system in chick embryos, studied by electron microscopy.
    J Embryol Exp Morphol. 1959 Mar;7(1):94-115 PMID: 13654625
  17. The voltage dependence of the cardiac membrane conductance.
    Biophys J. 1962 Sep;2:381-93 PMID: 14480152
  18. Current-voltage relations of Purkinje fibres in sodium-deficient solutions.
    J Physiol. 1963 Apr;166:225-40 PMID: 13960731
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1973-11-00
Pages
267-86
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1350742
Subset
IM
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