Home LiteratureArticle Details
PMID: 10696143 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Changes in ion channel expression accompany cell cycle progression of spinal cord astrocytes.

Glia ·Vol. 30 ·No. 1 ·2000-03-00 ·Pages 39-48

MacFarlane SN, Sontheimer H

Abstract

Arrest of spinal cord astrocytes at defined stages of the cell cycle clock causes significant changes in the expression of voltage-activated Na(+) and K(+) currents. Arrest of actively proliferating astrocytes in G1/G0 by all-trans-retinoic acid induces premature expression of inwardly rectifying K(+) currents (IK(IR)) typically expressed only in differentiated astrocytes. By contrast, arrest in S phase by ara-C or Aphidicolin leads to a greater than twofold increase in "delayed" outwardly rectifying currents (IK(D)) and a concomitant decrease in IK(IR). Pharmacological blockade of IK(D) by TEA and 4AP caused proliferating astrocytes to arrest in G0/G1, suggesting that activity of these channels is required for G1/S checkpoint progression. Conversely, in quiescent astrocytes, inhibition of IK(IR) by 30 microM BaCl(2) led to an increase in astrocyte proliferation and to an increase in the number of cells in S phase from 5% to 26%. These data suggest that a downregulation of K(IR) promotes cell cycle progression through the G1/S checkpoint. Blockade of IK(IR) in actively proliferating cells, however, leads to an accumulation in G2/M, suggesting that reappearance of this current may be critical for progression beyond DNA synthesis. Interestingly, Na(+) currents (INa(+)) are increased greater than fourfold in S phase-arrested cells, yet their pharmacological blockade by TTX has no effect on cell cycle progression. However, the resting membrane potential of S phase-arrested cells increases profoundly, and manipulation of membrane potential by the application of low concentrations of ouabain, or reduction of extracellular potassium, induces the accumulation of quiescent astrocytes in S phase of the cell cycle, suggesting that either depolarization or intracellular sodium, or both, play an important role in promoting astrocyte proliferation.

MeSH Terms
Animals Astrocytes/cytology,metabolism Cell Cycle/physiology Cell Division/physiology Electrophysiology Intracellular Fluid/metabolism,physiology Ion Channels/metabolism Membrane Potentials/physiology Potassium Channel Blockers Potassium Channels/physiology Rats Rats, Sprague-Dawley S Phase/physiology Sodium/metabolism Sodium Channels/metabolism,physiology Spinal Cord/cytology,metabolism
Chemicals
Ion Channels Potassium Channel Blockers Potassium Channels Sodium Channels Sodium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
MacFarlane S N
Department of Neurobiology, University of Alabama, Birmingham, Alabama, USA. macfarlan@nrc.uab.edu
Sontheimer H
Article Info
Journal
Glia
Abbr.
Glia
ISSN
0894-1491
Published
2000-03-00
Pages
39-48
Language
English
Region
United States
NLM ID
8806785
Subset
IM
Grants
NIAMS NIH HHS · P60ARZ0614 · United States
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