Changes on the properties of glycine receptors during neuronal development
Glycine receptors (GlyRs) play a major role in the excitability of spinal cord and brain stem neurons. During development, several properties of these receptors undergo significant changes resulting in major modifications of their physiological functions. For example, the receptor structure switches...
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Published in | Brain Research Reviews Vol. 47; no. 1; pp. 33 - 45 |
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Main Authors | , , , , |
Format | Book Review Conference Proceeding Journal Article |
Language | English |
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Elsevier B.V
01.12.2004
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Abstract | Glycine receptors (GlyRs) play a major role in the excitability of spinal cord and brain stem neurons. During development, several properties of these receptors undergo significant changes resulting in major modifications of their physiological functions. For example, the receptor structure switches from a monomeric α or heteromeric α2β in immature neurons to an α1β receptor type in mature neurons. Together with these changes in receptor subunits, the postsynaptic cluster size increases with development. Parallel to these modifications, the apparent receptor affinity to glycine and strychnine, as well as that of Zn
2+ and ethanol increases with time. The mature receptor is characterized by a slow desensitizing current and high sensitivity to modulation by protein kinase C. Also, the high level of glycinergic transmission in immature spinal neurons modulates neuronal excitability causing membrane depolarization and changes in intracellular calcium. Due to these properties, chronic inhibition of glycinergic transmission affects neurite outgrowth and produces changes in the level of synaptic transmission induced by GABA
A and AMPA receptors. Finally, the high level of plasticity found in immature GlyRs is likely associated to changes in cytoskeleton dynamics. |
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AbstractList | Glycine receptors (GlyRs) play a major role in the excitability of spinal cord and brain stem neurons. During development, several properties of these receptors undergo significant changes resulting in major modifications of their physiological functions. For example, the receptor structure switches from a monomeric alpha or heteromeric alpha 2 beta in immature neurons to an alpha 1 beta receptor type in mature neurons. Together with these changes in receptor subunits, the postsynaptic cluster size increases with development. Parallel to these modifications, the apparent receptor affinity to glycine and strychnine, as well as that of Zn(2+) and ethanol increases with time. The mature receptor is characterized by a slow desensitizing current and high sensitivity to modulation by protein kinase C. Also, the high level of glycinergic transmission in immature spinal neurons modulates neuronal excitability causing membrane depolarization and changes in intracellular calcium. Due to these properties, chronic inhibition of glycinergic transmission affects neurite outgrowth and produces changes in the level of synaptic transmission induced by GABA(A) and AMPA receptors. Finally, the high level of plasticity found in immature GlyRs is likely associated to changes in cytoskeleton dynamics. Glycine receptors (GlyRs) play a major role in the excitability of spinal cord and brain stem neurons. During development, several properties of these receptors undergo significant changes resulting in major modifications of their physiological functions. For example, the receptor structure switches from a monomeric α or heteromeric α2β in immature neurons to an α1β receptor type in mature neurons. Together with these changes in receptor subunits, the postsynaptic cluster size increases with development. Parallel to these modifications, the apparent receptor affinity to glycine and strychnine, as well as that of Zn 2+ and ethanol increases with time. The mature receptor is characterized by a slow desensitizing current and high sensitivity to modulation by protein kinase C. Also, the high level of glycinergic transmission in immature spinal neurons modulates neuronal excitability causing membrane depolarization and changes in intracellular calcium. Due to these properties, chronic inhibition of glycinergic transmission affects neurite outgrowth and produces changes in the level of synaptic transmission induced by GABA A and AMPA receptors. Finally, the high level of plasticity found in immature GlyRs is likely associated to changes in cytoskeleton dynamics. |
Author | Aguayo, Luis G. Alvarez, Francisco J. van Zundert, Brigitte Tapia, Juan C. Carrasco, Monica A. |
Author_xml | – sequence: 1 givenname: Luis G. surname: Aguayo fullname: Aguayo, Luis G. email: laguayo@udec.cl organization: Laboratory of Neurophysiology, Department of Physiology, University of Concepcion P.O. Box 160-C, Concepcı́on, Chile – sequence: 2 givenname: Brigitte surname: van Zundert fullname: van Zundert, Brigitte organization: Laboratory of Neurophysiology, Department of Physiology, University of Concepcion P.O. Box 160-C, Concepcı́on, Chile – sequence: 3 givenname: Juan C. surname: Tapia fullname: Tapia, Juan C. organization: Laboratory of Neurophysiology, Department of Physiology, University of Concepcion P.O. Box 160-C, Concepcı́on, Chile – sequence: 4 givenname: Monica A. surname: Carrasco fullname: Carrasco, Monica A. organization: Laboratory of Neurophysiology, Department of Physiology, University of Concepcion P.O. Box 160-C, Concepcı́on, Chile – sequence: 5 givenname: Francisco J. surname: Alvarez fullname: Alvarez, Francisco J. organization: Department of Anatomy, Wright State University, Dayton, OH, USA |
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Keywords | VTA IC 50 AMPA KCC2 mIPSC HCO 3 Development and regeneration I glycine IPSC PTX RT-PCR Development NMDA Strychnine Ligand-gated ion channel GlyR Ethanol KO PMA PKA PKC Spinal neurons HEK DIV EC 50 GABA Spinal cord Neuron Glycine receptor Central nervous system Ionic channel Review Encephalon |
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Snippet | Glycine receptors (GlyRs) play a major role in the excitability of spinal cord and brain stem neurons. During development, several properties of these... |
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SubjectTerms | Animals Biological and medical sciences Brain - growth & development Brain - metabolism Cell Differentiation - physiology Development Development and regeneration Development. Senescence. Regeneration. Transplantation Ethanol Formation and specificity of synapses Fundamental and applied biological sciences. Psychology Glycine Agents - pharmacology Humans Ligand-gated ion channel Neural Inhibition - physiology Neuronal Plasticity - physiology Presynaptic Terminals - metabolism Protein Subunits - metabolism Receptor Aggregation - physiology Receptors, Glycine - drug effects Receptors, Glycine - metabolism Spinal neurons Strychnine Synaptic Transmission - physiology Vertebrates: nervous system and sense organs |
Title | Changes on the properties of glycine receptors during neuronal development |
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