Home LiteratureArticle Details
PMID: 9700490 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Calcium waves between astrocytes from Cx43 knockout mice.

Glia ·Vol. 24 ·No. 1 ·1998-09-00 ·Pages 65-73

Scemes E, Dermietzel R, Spray DC

Abstract

Gap junctions are regarded as the primary pathway underlying propagation of Ca2+ waves between astrocytes, although signaling through extracellular space may also contribute. Results obtained from astrocytes cultured from sibling Cx43 knockout (KO) and wild-type (WT) mice in six litters showed that Ca2+ waves propagated more slowly in Cx43 KO than in WT astrocytes; however, because this difference in velocity was only seen in conditions where cell confluence was higher in WT than KO astrocytes, it is attributable to differences in plating density. By contrast, density-independent differences were observed in the amplitudes of the Ca2+ responses (15% smaller in KO astrocytes) and efficacy of spread (to 14% fewer cells in KO astrocytes). Blockade of purinergic receptors with suramin reduced the velocities of the waves by 40% in WT and KO astrocytes and reduced the amplitudes by 20% and 6%, respectively. In the presence of heptanol, Ca2+ waves spread to only 30% of the cells, with a 70% reduced velocity and 30% reduced amplitude. It is concluded that the propagation of Ca2+ waves between astrocytes from Cx43 KO mice is not so greatly affected as expected by deletion of the major gap junction protein between these cells. The residual 5% coupling contributed by the additional connexins (Cx40, Cx45, and Cx46) expressed in KO astrocytes still suffices to provide a more substantial portion of Ca2+ wave propagation than does signaling through extracellular purinergic pathways. These studies demonstrate that, even with severely reduced junctional conductance, Cx43 KO astrocytes are capable of performing long-range Ca2+ wave signaling, perhaps preserving one mechanism critical to neural function.

MeSH Terms
Animals Astrocytes/drug effects,metabolism Calcium/metabolism Cell Communication/physiology Cells, Cultured Connexin 43/genetics Extracellular Space/physiology Heptanol/pharmacology Mice Mice, Knockout/genetics,metabolism Reference Values Signal Transduction/physiology Suramin/pharmacology
Chemicals
Connexin 43 Suramin Heptanol Calcium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Scemes E
Department of Physiology, University of Sao Paulo, Brazil.
Dermietzel R
Spray D C
References (30)
30 references, click to expand
  1. Gap junctions in cultured astrocytes: single-channel currents and characterization of channel-forming protein.
    Neuron. 1991 Jan;6(1):133-43 PMID: 1702648
  2. Swelling-induced changes in electrophysiological properties of cultured astrocytes and oligodendrocytes. I. Effects on membrane potentials, input impedance and cell-cell coupling.
    Brain Res. 1990 Oct 8;529(1-2):255-61 PMID: 2282495
  3. Gap junctions: new tools, new answers, new questions.
    Neuron. 1991 Mar;6(3):305-20 PMID: 1848077
  4. Gap junctions between cultured astrocytes: immunocytochemical, molecular, and electrophysiological analysis.
    J Neurosci. 1991 May;11(5):1421-32 PMID: 1851221
  5. Intercellular signaling in glial cells: calcium waves and oscillations in response to mechanical stimulation and glutamate.
    Neuron. 1991 Jun;6(6):983-92 PMID: 1675864
  6. Quantitative immunohistochemical and biochemical correlates of connexin43 localization in rat brain.
    Glia. 1992;5(1):1-9 PMID: 1311703
  7. Intercellular calcium signaling via gap junctions in glioma cells.
    J Cell Biol. 1992 Jul;118(1):195-201 PMID: 1320034
  8. Activation of protein kinase C blocks astroglial gap junction communication and inhibits the spread of calcium waves.
    J Neurochem. 1992 Aug;59(2):519-26 PMID: 1629725
  9. Gap junction-mediated intercellular diffusion of Ca2+ in cultured human corporal smooth muscle cells.
    Am J Physiol. 1992 Aug;263(2 Pt 1):C373-83 PMID: 1325115
  10. Cell-to-cell spread of calcium signals mediated by ATP receptors in mast cells.
    Nature. 1992 Sep 17;359(6392):241-4 PMID: 1388246
  11. Gap junctions. Multiplicity of controls in differentiated and undifferentiated cells and possible functional implications.
    Adv Second Messenger Phosphoprotein Res. 1993;27:163-98 PMID: 8380327
  12. Role of phosphoinositide hydrolysis in astrocyte volume regulation.
    J Neurochem. 1993 Oct;61(4):1506-14 PMID: 8397296
  13. Spatial dynamics of second messengers: IP3 and cAMP as long-range and associative messengers.
    Trends Neurosci. 1994 Mar;17(3):95-101 PMID: 7515531
  14. Intercellular calcium waves mediated by diffusion of inositol trisphosphate: a two-dimensional model.
    Am J Physiol. 1995 Jun;268(6 Pt 1):C1537-45 PMID: 7611375
  15. Isolated rat hepatocytes can signal to other hepatocytes and bile duct cells by release of nucleotides.
    Proc Natl Acad Sci U S A. 1996 Sep 3;93(18):9948-53 PMID: 8790437
  16. Endothelin-1 regulates glucose utilization in cultured astrocytes by controlling intercellular communication through gap junctions.
    Glia. 1996 Mar;16(3):187-95 PMID: 8833189
  17. Control of gap-junctional communication in astrocytic networks.
    Trends Neurosci. 1996 Aug;19(8):319-25 PMID: 8843600
  18. P2 purinoceptors in rat cortical astrocytes: expression, calcium-imaging and signalling studies.
    Neuroscience. 1996 Oct;74(4):1187-96 PMID: 8895885
  19. An extracellular signaling component in propagation of astrocytic calcium waves.
    Proc Natl Acad Sci U S A. 1996 Nov 12;93(23):13268-73 PMID: 8917580
  20. Mechanism involved in initiation and propagation of receptor-induced intercellular calcium signaling in cultured rat astrocytes.
    J Neurosci. 1997 Mar 15;17(6):1981-92 PMID: 9045727
  21. Mechanisms for the coordination of intercellular calcium signaling in insulin-secreting cells.
    J Cell Sci. 1997 Feb;110 ( Pt 4):497-504 PMID: 9067601
  22. ATP-induced oscillations of cytosolic Ca2+ activity in cultured astrocytes from rat brain are modulated by medium osmolarity indicating a control of [Ca2+]i oscillations by cell volume.
    Neurochem Res. 1997 May;22(5):621-8 PMID: 9131642
  23. Characterization of the signalling pathways involved in ATP and basic fibroblast growth factor-induced astrogliosis.
    Br J Pharmacol. 1997 Aug;121(8):1692-9 PMID: 9283705
  24. Characterization of the Ca2+ responses evoked by ATP and other nucleotides in mammalian brain astrocytes.
    Br J Pharmacol. 1997 Aug;121(8):1700-6 PMID: 9283706
  25. Metabolic trafficking through astrocytic gap junctions.
    Glia. 1997 Sep;21(1):114-23 PMID: 9298854
  26. Altered gap junctional communication, intercellular signaling, and growth in cultured astrocytes deficient in connexin43.
    J Neurosci Res. 1997 Sep 1;49(5):528-40 PMID: 9302074
  27. Hepatocyte gap junctions are permeable to the second messenger, inositol 1,4,5-trisphosphate, and to calcium ions.
    Proc Natl Acad Sci U S A. 1989 Apr;86(8):2708-12 PMID: 2784857
  28. The physiology of neuroglial cells.
    Ergeb Physiol. 1966;57:1-90 PMID: 5330861
  29. Transfection of C6 glioma cells with connexin 43 cDNA: analysis of expression, intercellular coupling, and cell proliferation.
    Proc Natl Acad Sci U S A. 1991 Mar 1;88(5):1883-7 PMID: 1848013
  30. Differential expression of three gap junction proteins in developing and mature brain tissues.
    Proc Natl Acad Sci U S A. 1989 Dec;86(24):10148-52 PMID: 2557621
Article Info
Journal
Glia
Abbr.
Glia
ISSN
0894-1491
Published
1998-09-00
Pages
65-73
Language
English
Region
United States
NLM ID
8806785
PMCID
PMC1808224
Subset
IM
Grants
NINDS NIH HHS · NS07512 · United States
NINDS NIH HHS · NS34931 · United States
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: [email protected]