Home LiteratureArticle Details
PMID: 10575034 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The establishment of GABAergic and glutamatergic synapses on CA1 pyramidal neurons is sequential and correlates with the development of the apical dendrite.

Tyzio R, Represa A, Jorquera I, Ben-Ari Y, Gozlan H, Aniksztejn L

Abstract

We have performed a morphofunctional analysis of CA1 pyramidal neurons at birth to examine the sequence of formation of GABAergic and glutamatergic postsynaptic currents (PSCs) and to determine their relation to the dendritic arborization of pyramidal neurons. We report that at birth pyramidal neurons are heterogeneous. Three stages of development can be identified: (1) the majority of the neurons (80%) have small somata, an anlage of apical dendrite, and neither spontaneous nor evoked PSCs; (2) 10% of the neurons have a small apical dendrite restricted to the stratum radiatum and PSCs mediated only by GABA(A) receptors; and (3) 10% of the neurons have an apical dendrite that reaches the stratum lacunosum moleculare and PSCs mediated both by GABA(A) and glutamate receptors. These three groups of pyramidal neurons can be differentiated by their capacitance (C(m) = 17.9 +/- 0.8; 30.2 +/- 1.6; 43.2 +/- 3.0 pF, respectively). At birth, the synaptic markers synapsin-1 and synaptophysin labeling are present in dendritic layers but not in the stratum pyramidale, suggesting that GABAergic peridendritic synapses are established before perisomatic ones. The present observations demonstrate that GABAergic and glutamatergic synapses are established sequentially with GABAergic synapses being established first most likely on the apical dendrites of the principal neurons. We propose that different sets of conditions are required for the establishment of functional GABA and glutamate synapses, the latter necessitating more developed neurons that have apical dendrites that reach the lacunosum moleculare region.

MeSH Terms
Animals Animals, Newborn Biomarkers Cellular Senescence Dendrites/physiology Electrophysiology Glutamic Acid/physiology Hippocampus/cytology,physiology In Vitro Techniques Male Pyramidal Cells/physiology Rats Rats, Wistar Synapses/physiology Time Factors gamma-Aminobutyric Acid/physiology
Chemicals
Biomarkers Glutamic Acid gamma-Aminobutyric Acid
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Tyzio R
Institut de Neurobiologie de la Méditérranée, Institut National de la Santé, et de la Recherche Médicale, 13273 Marseille Cedex 09, France.
Represa A
Jorquera I
Ben-Ari Y
Gozlan H
Aniksztejn L
References (41)
41 references, click to expand
  1. Properties of amino acid neurotransmitter receptors of embryonic cortical neurons when activated by exogenous and endogenous agonists.
    J Neurophysiol. 1992 May;67(5):1185-200 PMID: 1350794
  2. Evidence for a role of dendritic filopodia in synaptogenesis and spine formation.
    Neuron. 1996 Jul;17(1):91-102 PMID: 8755481
  3. Silent synapses during development of thalamocortical inputs.
    Neuron. 1997 Feb;18(2):269-80 PMID: 9052797
  4. Ca2+ oscillations mediated by the synergistic excitatory actions of GABA(A) and NMDA receptors in the neonatal hippocampus.
    Neuron. 1997 Feb;18(2):243-55 PMID: 9052795
  5. TrkB and TrkC signaling are required for maturation and synaptogenesis of hippocampal connections.
    J Neurosci. 1998 Sep 15;18(18):7336-50 PMID: 9736654
  6. Silent synapses speak up.
    Neuron. 1997 Sep;19(3):473-6 PMID: 9331339
  7. GABAA, NMDA and AMPA receptors: a developmentally regulated 'ménage à trois'.
    Trends Neurosci. 1997 Nov;20(11):523-9 PMID: 9364667
  8. Sodium channels, GABAA receptors, and glutamate receptors develop sequentially on embryonic rat spinal cord cells.
    J Neurosci. 1993 May;13(5):2068-84 PMID: 8386754
  9. Synchronization of GABAergic interneuronal network in CA3 subfield of neonatal rat hippocampal slices.
    J Physiol. 1997 Feb 1;498 ( Pt 3):763-72 PMID: 9051587
  10. Glutamate receptor activity is required for normal development of tectal cell dendrites in vivo.
    J Neurosci. 1998 Oct 1;18(19):7836-46 PMID: 9742152
  11. Giant synaptic potentials in immature rat CA3 hippocampal neurones.
    J Physiol. 1989 Sep;416:303-25 PMID: 2575165
  12. Heterogeneity in the molecular composition of excitatory postsynaptic sites during development of hippocampal neurons in culture.
    J Neurosci. 1998 Feb 15;18(4):1217-29 PMID: 9454832
  13. Development of excitatory circuitry in the hippocampus.
    J Neurophysiol. 1998 Apr;79(4):2013-24 PMID: 9535965
  14. Prominent expression of two forms of glutamate decarboxylase in the embryonic and early postnatal rat hippocampal formation.
    J Neurosci. 1996 Nov 1;16(21):6919-32 PMID: 8824330
  15. Distribution of GABAergic neurons in late fetal and early postnatal rat hippocampus.
    Brain Res Dev Brain Res. 1989 Dec 1;50(2):177-87 PMID: 2611981
  16. Developmental changes in spontaneous GABAA-mediated synaptic events in rat hippocampal CA3 neurons.
    Eur J Neurosci. 1994 May 1;6(5):805-13 PMID: 8075822
  17. Initially expressed early rat embryonic GABA(A) receptor Cl- ion channels exhibit heterogeneous channel properties.
    Eur J Neurosci. 1998 May;10(5):1771-83 PMID: 9751149
  18. Regulation of morphological postsynaptic silent synapses in developing hippocampal neurons.
    Nat Neurosci. 1999 Jan;2(1):37-43 PMID: 10195178
  19. Long-term potentiation and functional synapse induction in developing hippocampus.
    Nature. 1996 May 2;381(6577):71-5 PMID: 8609991
  20. The organization of the embryonic and early postnatal murine hippocampus. II. Development of entorhinal, commissural, and septal connections studied with the lipophilic tracer DiI.
    J Comp Neurol. 1994 Jun 1;344(1):101-20 PMID: 8063952
  21. Developmental changes in membrane properties and postsynaptic currents of granule cells in rat dentate gyrus.
    J Neurophysiol. 1996 Aug;76(2):1074-88 PMID: 8871221
  22. Selective acquisition of AMPA receptors over postnatal development suggests a molecular basis for silent synapses.
    Nat Neurosci. 1999 Jan;2(1):31-6 PMID: 10195177
  23. Development of the hippocampal region in the rat. I. Neurogenesis examined with 3H-thymidine autoradiography.
    J Comp Neurol. 1980 Mar 1;190(1):87-114 PMID: 7381056
  24. Developmental profile and synaptic origin of early network oscillations in the CA1 region of rat neonatal hippocampus.
    J Physiol. 1998 Feb 15;507 ( Pt 1):219-36 PMID: 9490842
  25. Involvement of distinct pioneer neurons in the formation of layer-specific connections in the hippocampus.
    J Neurosci. 1998 Jun 15;18(12):4616-26 PMID: 9614236
  26. Ontogenesis of the pyramidal cell of the mammalian neocortex and developmental cytoarchitectonics: a unifying theory.
    J Comp Neurol. 1992 Jul 8;321(2):223-40 PMID: 1500541
  27. Neurotrophins induce formation of functional excitatory and inhibitory synapses between cultured hippocampal neurons.
    J Neurosci. 1998 Sep 15;18(18):7256-71 PMID: 9736647
  28. Afferent innervation influences the development of dendritic branches and spines via both activity-dependent and non-activity-dependent mechanisms.
    J Neurosci. 1997 Aug 15;17(16):6314-24 PMID: 9236241
  29. Maturation of a central glutamatergic synapse.
    Science. 1996 Nov 8;274(5289):972-6 PMID: 8875937
  30. Improved patch-clamp techniques for high-resolution current recording from cells and cell-free membrane patches.
    Pflugers Arch. 1981 Aug;391(2):85-100 PMID: 6270629
  31. Prolonged sojourn of developing pyramidal cells in the intermediate zone of the hippocampus and their settling in the stratum pyramidale.
    J Comp Neurol. 1990 Nov 15;301(3):343-64 PMID: 2262595
  32. Expression patterns of GABAA receptor subtypes in developing hippocampal neurons.
    Neuron. 1991 Dec;7(6):927-36 PMID: 1662520
  33. GABA receptors precede glutamate receptors in hypothalamic development; differential regulation by astrocytes.
    J Neurophysiol. 1995 Oct;74(4):1473-84 PMID: 8989386
  34. Postnatal maturation of gamma-aminobutyric acidA and B-mediated inhibition in the CA3 hippocampal region of the rat.
    J Neurobiol. 1995 Mar;26(3):339-49 PMID: 7775967
  35. GABA: an excitatory transmitter in early postnatal life.
    Trends Neurosci. 1991 Dec;14(12):515-9 PMID: 1726341
  36. The K+/Cl- co-transporter KCC2 renders GABA hyperpolarizing during neuronal maturation.
    Nature. 1999 Jan 21;397(6716):251-5 PMID: 9930699
  37. Excitatory GABA responses in embryonic and neonatal cortical slices demonstrated by gramicidin perforated-patch recordings and calcium imaging.
    J Neurosci. 1996 Oct 15;16(20):6414-23 PMID: 8815920
  38. Neurogenesis of glutamic acid decarboxylase immunoreactive cells in the hippocampus of the mouse. I: Regio superior and regio inferior.
    J Comp Neurol. 1989 Mar 22;281(4):586-602 PMID: 2708583
  39. Postsynaptic clustering of major GABAA receptor subtypes requires the gamma 2 subunit and gephyrin.
    Nat Neurosci. 1998 Nov;1(7):563-71 PMID: 10196563
  40. Slices have more synapses than perfusion-fixed hippocampus from both young and mature rats.
    J Neurosci. 1999 Apr 15;19(8):2876-86 PMID: 10191305
  41. GABA and glutamate depolarize cortical progenitor cells and inhibit DNA synthesis.
    Neuron. 1995 Dec;15(6):1287-98 PMID: 8845153
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
0270-6474
Published
1999-12-01
Pages
10372-82
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6782402
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com