Home LiteratureArticle Details
PMID: 9705994 Published · ppublish English Journal Article

Gap junctional communication and pharmacological heterogeneity in astrocytes cultured from the rat striatum.

The Journal of physiology ·Vol. 510 ( Pt 2) ·1998-07-15 ·Pages 429-40

Venance L, Prémont J, Glowinski J, Giaume C

Abstract

Indo-1 and fluo-3 imaging techniques were used to investigate the role of gap junctions in the changes in cytosolic calcium concentrations ([Ca2+]i) induced by several receptor agonists. Subpopulations of confluent cultured astrocytes from the rat striatum were superfused with submaximal concentrations of endothelin-1 (Et1) and the alpha 1-adrenergic and muscarinic receptor agonists, methoxamine and carbachol, respectively. 2. Combined binding and autoradiographic studies indicated that all striatal astrocytes possess binding sites for Et1. In contrast, alpha 1-adrenergic and muscarinic binding sites were found to be heterogeneously distributed. In agreement with these findings, Et1 induced fast calcium responses in all cells while only subsets of striatal astrocytes responded to the application of methoxamine or carbachol. 3. Halothane, heptanol and octanol, which are commonly used as gap junction inhibitors, drastically reduced the amplitude of Et1-induced calcium responses. In contrast, 18-alpha-glycyrrhetinic acid (alpha GA) used at a concentration known to block gap junction permeability in astrocytes had no significant effect on the amplitude of these calcium responses. 4. As demonstrated by quantitative and topological analysis, Et1 application similarly increased [Ca2+]i levels in all astrocytes in both the absence and presence of alpha GA. 5. In control conditions, subpopulations of cells responding to methoxamine or carbachol exhibited two main types of calcium responses which differed in their shape and kinetic characteristics. In the presence of alpha GA the number of cells responding to these receptor agonists was significantly reduced. Indeed, responses characterized by their long latency, slow rise time and weak amplitude disappeared in the presence of alpha GA while responses with short latency and fast rise time were preserved. 6. These results indicate that permeable gap junction channels tend to attenuate the pharmacological and functional heterogeneity of populations of astrocytes, while their inhibition restricts calcium responses in astrocytes expressing high densities of transmitter receptors coupled to phospholipase C.

MeSH Terms
Animals Astrocytes/cytology,drug effects,metabolism Autoradiography Calcium/metabolism Cell Communication/drug effects,physiology Cells, Cultured Endothelin-1/metabolism Gap Junctions/drug effects,physiology Immunohistochemistry Kinetics Microscopy, Fluorescence Neostriatum/cytology,drug effects,metabolism Rats Receptors, Adrenergic, alpha-1/drug effects,metabolism Receptors, Endothelin/drug effects
Chemicals
Endothelin-1 Receptors, Adrenergic, alpha-1 Receptors, Endothelin Calcium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Venance L
INSERM U114, Collège de France, Paris, France. venance@infobiogen.fr
Prémont J
Glowinski J
Giaume C
References (40)
40 references, click to expand
  1. Halothane and octanol block Ca2+ oscillations in pancreatic acini by multiple mechanisms.
    Am J Physiol. 1995 Nov;269(5 Pt 1):G779-88 PMID: 7491971
  2. Synergistic Regulation of Cytosolic Ca2+ Concentration by Adenosine and alpha1-Adrenergic Agonists in Mouse Striatal Astrocytes.
    Eur J Neurosci. 1991 Jun;3(6):539-550 PMID: 12106486
  3. Prostaglandins stimulate calcium-dependent glutamate release in astrocytes.
    Nature. 1998 Jan 15;391(6664):281-5 PMID: 9440691
  4. Effects of general anesthetics on intercellular communications mediated by gap junctions between astrocytes in primary culture.
    Anesthesiology. 1993 May;78(5):892-901 PMID: 7683851
  5. Glial receptors and their intervention in astrocyto-astrocytic and astrocyto-neuronal interactions.
    Glia. 1994 Jun;11(2):201-8 PMID: 7927648
  6. Molecular and cellular mechanisms of general anaesthesia.
    Nature. 1994 Feb 17;367(6464):607-14 PMID: 7509043
  7. 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
  8. 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
  9. A pre-loading method of evaluating gap junctional communication by fluorescent dye transfer.
    Biotechniques. 1995 Mar;18(3):490-7 PMID: 7779401
  10. Calcium waves in astrocytes-filling in the gaps.
    Neuron. 1992 Jun;8(6):1101-8 PMID: 1351732
  11. 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
  12. Are several G proteins involved in the different effects of endothelin-1 in mouse striatal astrocytes?
    J Neurochem. 1991 Apr;56(4):1270-5 PMID: 1848277
  13. Neural signalling. Neuromodulatory astrocytes.
    Curr Biol. 1994 Sep 1;4(9):807-10 PMID: 7820550
  14. Adrenergic regulation of intercellular communications between cultured striatal astrocytes from the mouse.
    Proc Natl Acad Sci U S A. 1991 Jul 1;88(13):5577-81 PMID: 1648224
  15. Expression of adrenergic receptors in individual astrocytes and motor neurons isolated from the adult rat brain.
    Glia. 1992;6(2):108-17 PMID: 1328049
  16. Inhibition by anandamide of gap junctions and intercellular calcium signalling in striatal astrocytes.
    Nature. 1995 Aug 17;376(6541):590-4 PMID: 7637807
  17. Astroglial cells in vitro are heterogeneous with respect to expression of the alpha 1-adrenergic receptor.
    Glia. 1989;2(3):135-47 PMID: 2568341
  18. Neuronal activity triggers calcium waves in hippocampal astrocyte networks.
    Neuron. 1992 Mar;8(3):429-40 PMID: 1347996
  19. Glutamate-mediated astrocyte-neuron signalling.
    Nature. 1994 Jun 30;369(6483):744-7 PMID: 7911978
  20. Calcium waves in retinal glial cells.
    Science. 1997 Feb 7;275(5301):844-7 PMID: 9012354
  21. Glia: the brain's other cells.
    Science. 1994 Nov 11;266(5187):970-2 PMID: 7973679
  22. 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
  23. Regulation of astroglial responsiveness to neuroligands in primary culture.
    Neuroscience. 1993 Aug;55(4):991-1001 PMID: 7901803
  24. A new generation of Ca2+ indicators with greatly improved fluorescence properties.
    J Biol Chem. 1985 Mar 25;260(6):3440-50 PMID: 3838314
  25. Glia-neuron intercellular calcium signaling.
    Dev Neurosci. 1994;16(3-4):196-206 PMID: 7705224
  26. Calcium signalling in glial cells.
    Trends Neurosci. 1996 Aug;19(8):346-52 PMID: 8843604
  27. Direct signaling from astrocytes to neurons in cultures of mammalian brain cells.
    Science. 1994 Mar 25;263(5154):1768-71 PMID: 8134839
  28. Neuroligand receptor heterogeneity among astroglia.
    Perspect Dev Neurobiol. 1994;2(3):205-15 PMID: 7850353
  29. Homotypic and heterotypic coupling mediated by gap junctions during glial cell differentiation in vitro.
    Eur J Neurosci. 1995 Mar 1;7(3):451-61 PMID: 7773442
  30. Control of gap-junctional communication in astrocytic networks.
    Trends Neurosci. 1996 Aug;19(8):319-25 PMID: 8843600
  31. Endothelin-1 regulates glucose utilization in cultured astrocytes by controlling intercellular communication through gap junctions.
    Glia. 1996 Mar;16(3):187-95 PMID: 8833189
  32. Pharmacologically-distinct subsets of astroglia can be identified by their calcium response to neuroligands.
    Neuroscience. 1991;41(2-3):325-33 PMID: 1678498
  33. Astrocytic dye coupling in rat hippocampus: topography, developmental onset, and modulation by protein kinase C.
    Hippocampus. 1994 Jun;4(3):297-306 PMID: 7842053
  34. Glial calcium.
    Glia. 1993 Oct;9(2):83-104 PMID: 8244537
  35. Reversible inhibition of intercellular junctional communication by glycyrrhetinic acid.
    Biochem Biophys Res Commun. 1986 Jan 14;134(1):29-36 PMID: 3947327
  36. Receptors for neurotransmitters on astrocytes in the mammalian central nervous system.
    Prog Neurobiol. 1993 Apr;40(4):477-506 PMID: 8095350
  37. Glutamate induces calcium waves in cultured astrocytes: long-range glial signaling.
    Science. 1990 Jan 26;247(4941):470-3 PMID: 1967852
  38. Propofol induces changes in the cytosolic free calcium concentration and the cytoskeletal organization of cultured human glial cells and primary embryonic rat brain cells.
    Anesthesiology. 1994 Nov;81(5):1220-9 PMID: 7978481
  39. Glial heterogeneity may define the three-dimensional shape of mouse mesencephalic dopaminergic neurones.
    Nature. 1984 Feb 16-22;307(5952):641-3 PMID: 6694754
  40. Adrenergic calcium signaling in astrocyte networks within the hippocampal slice.
    J Neurosci. 1995 Aug;15(8):5535-50 PMID: 7643199
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1998-07-15
Pages
429-40
Language
English
Region
England
NLM ID
0266262
PMCID
PMC2231053
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