Medical Journals

Genetic and Physiological Evidence That Oligodendrocyte Gap Junctions Contribute to Spatial Buffering of Potassium Released During Neuronal Activity.

Authors:
  • Menichella Daniela M
  • Majdan Marta
  • Awatramani Rajeshwar
  • Goodenough Daniel A
  • Sirkowski Erich
  • Scherer Steven S
  • Paul David L

From: Department of Neurobiology, Harvard Medical School, Boston, Massachusetts 02115, USA.

The Journal of neuroscience : the official journal of the Society for Neuroscience

  • Publish Date: Oct 2006
  • ISSN: 1529-2401
  • Volume: 26
  • Issue: 43
  • Pages: 10984-91
  • Medium: Internet
  • Language: English
  • Citation (JAMA): Menichella Daniela M, Majdan Marta, Awatramani Rajeshwar, et al. Genetic and Physiological Evidence That Oligodendrocyte Gap Junctions Contribute to Spatial Buffering of Potassium Released During Neuronal Activity.. J. Neurosci. Oct 2006;26:10984-91

Abstract

Mice lacking the K+ channel Kir4.1 or both connexin32 (Cx32) and Cx47 exhibit myelin-associated vacuoles, raising the possibility that oligodendrocytes, and the connexins they express, contribute to recycling the K+ evolved during neuronal activity. To study this possibility, we first examined the effect of neuronal activity on the appearance of vacuoles in mice lacking both Cx32 and Cx47. The size and number of myelin vacuoles was dramatically increased when axonal activity was increased, by either a natural stimulus (eye opening) or pharmacological treatment. Conversely, myelin vacuoles were dramatically reduced when axonal activity was suppressed. Second, we used genetic complementation to test for a relationship between the function of Kir4.1 and oligodendrocyte connexins. In a Cx32-null background, haploinsufficiency of either Cx47 or Kir4.1 did not affect myelin, but double heterozygotes developed vacuoles, consistent with the idea that oligodendrocyte connexins and Kir4.1 function in a common pathway. Together, these results implicate oligodendrocytes and their connexins as having critical roles in the buffering of K+ released during neuronal activity.

Mesh Headings (Keywords): Animals, Female, Gap Junctions, Male, Mice, Mice, Knockout, Neurons, Oligodendroglia, Optic Nerve, Potassium, Potassium Channels, Inwardly Rectifying


Check for Full Text / PubMed Unique Identifier (PMID): 17065440


This abstract is part of PubMed, a service of the U.S. National Library of Medicine. PubMed includes more than 17 million citations from MEDLINE and other life science journals for biomedical articles. See Copyright and Disclaimers.

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The data herein was last updated on July 8th, 2008 and may not reflect the most current and accurate data available from NLM.


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