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PMID: 14534260 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Signaling at the gliovascular interface.

Simard M, Arcuino G, Takano T, Liu QS, Nedergaard M

Abstract

Advances in fluorescent calcium indicating dyes over the past decade have identified calcium signaling as the tool by which astrocytes communicate among themselves and with neighboring neurons. Studies of astrocyte-neuron interactions have shown that calcium signaling is a potent modulator of the strength of both excitatory and inhibitory synapses. The concept that astrocytes possess a mechanism for rapid cell communication has not been incorporated, however, into the supportive functions of astrocytes. Because many of the classical tasks of astrocytes are linked to the blood-brain barrier, we have here examined the expression of proteins required for calcium signaling in their vascular end-foot processes. The gap junction protein, Cx43, was expressed intensively around the vessels interconnecting astrocytic end-foot processes. These gap junctions permitted diffusion of Lucifer yellow, specifically along the path of glial end feet apposed to the vessel wall. The purinergic receptors, P2Y(2) and P2Y(4), were also strongly expressed at the gliovascular interface and colocalized with GFAP around larger vessels in cortex. Multiphoton imaging of freshly prepared brain slices loaded with Fluo-4/AM revealed that ATP mobilized cytosolic calcium in astrocytic end feet, whereas electrical stimulation triggered calcium waves propagating along the vessel wall. Brain endothelial cells and pericytes were physically separated from astrocytes by the basal lamina and responded only weakly to ATP. These observations identify astrocytic end-foot processes plastered at the vessel wall as a center for purinergic signaling. It is speculated that calcium signaling may play a role in astrocytic functions related to the blood-brain barrier, including blood flow regulation, metabolic trafficking, and water homeostasis.

MeSH Terms
Adenosine Triphosphate/pharmacology Animals Astrocytes/cytology,drug effects,physiology Basement Membrane/physiology Blood-Brain Barrier/physiology Brain/blood supply,cytology,physiology Calcium Signaling/drug effects,physiology Cerebrovascular Circulation Connexin 43/biosynthesis Diffusion Endothelium, Vascular/cytology,physiology Fluorescent Dyes Gap Junctions/metabolism Glial Fibrillary Acidic Protein/biosynthesis In Vitro Techniques Male Microcirculation/cytology Patch-Clamp Techniques Pericytes/cytology,drug effects Rats Rats, Sprague-Dawley Receptors, Purinergic P2/biosynthesis Receptors, Purinergic P2Y2
Chemicals
Connexin 43 Fluorescent Dyes Glial Fibrillary Acidic Protein Receptors, Purinergic P2 Receptors, Purinergic P2Y2 purinoceptor P2Y4 Adenosine Triphosphate
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Simard Marie
Department of Neurosurgery, New York Medical College, Valhalla, New York 10590, USA.
Arcuino Gregory
Takano Takahiro
Liu Qing Song
Nedergaard Maiken
References (55)
55 references, click to expand
  1. Astrocyte-mediated potentiation of inhibitory synaptic transmission.
    Nat Neurosci. 1998 Dec;1(8):683-92 PMID: 10196584
  2. Direct immunogold labeling of connexins and aquaporin-4 in freeze-fracture replicas of liver, brain, and spinal cord: factors limiting quantitative analysis.
    Cell Tissue Res. 1999 May;296(2):307-21 PMID: 10382274
  3. High resolution quantitation of microvascular plasma perfusion in non-ischemic and ischemic rat brain by laser-scanning confocal microscopy.
    Brain Res Brain Res Protoc. 1999 Jul;4(2):185-91 PMID: 10446413
  4. IL-1beta differentially regulates calcium wave propagation between primary human fetal astrocytes via pathways involving P2 receptors and gap junction channels.
    Proc Natl Acad Sci U S A. 1999 Sep 28;96(20):11613-8 PMID: 10500225
  5. Three-dimensional measurement of cerebral microvascular plasma perfusion, glial fibrillary acidic protein and microtubule associated protein-2 immunoreactivity after embolic stroke in rats: a double fluorescent labeled laser-scanning confocal microscopic study.
    Brain Res. 1999 Oct 9;844(1-2):55-66 PMID: 10536261
  6. Blood-brain barrier biology and methodology.
    J Neurovirol. 1999 Dec;5(6):556-69 PMID: 10602397
  7. Meningeal cells can communicate with astrocytes by calcium signaling.
    Ann Neurol. 2000 Jan;47(1):18-25 PMID: 10632097
  8. What is the blood-brain barrier? A molecular perspective. Cerebral vascular biology.
    Adv Exp Med Biol. 1999;474:111-22 PMID: 10634997
  9. Tight junctions of the blood-brain barrier.
    Cell Mol Neurobiol. 2000 Feb;20(1):57-76 PMID: 10690502
  10. ATP-dependent astrocyte-endothelial calcium signaling following mechanical damage to a single astrocyte in astrocyte-endothelial co-cultures.
    J Neurotrauma. 2000 Apr;17(4):345-58 PMID: 10776917
  11. Advances in the vascular pathophysiology of ischemic stroke.
    Thromb Res. 2000 May 1;98(3):73-81 PMID: 10812160
  12. Pericyte migration from the vascular wall in response to traumatic brain injury.
    Microvasc Res. 2000 Jul;60(1):55-69 PMID: 10873515
  13. Volume-sensitive purinergic signaling in human hepatocytes.
    J Hepatol. 2000 Aug;33(2):174-82 PMID: 10952234
  14. Coexpression of several types of metabotropic nucleotide receptors in single cerebellar astrocytes.
    J Neurochem. 2000 Nov;75(5):2071-9 PMID: 11032896
  15. Neuroglial networks: neurons and glia talk to each other.
    Curr Biol. 2000 Oct 5;10(19):R712-4 PMID: 11050407
  16. Ultrastructure of the capillary pericytes and the expression of smooth muscle alpha-actin and desmin in the snake infrared sensory organs.
    Anat Rec. 2000 Nov 1;260(3):299-307 PMID: 11066040
  17. Mechanism of action of prostaglandin E2 in the dog skeletal muscle circulation.
    Chin Med J (Engl). 1998 Oct;111(10):945-50 PMID: 11189246
  18. Induction of astrocyte differentiation by endothelial cells.
    J Neurosci. 2001 Mar 1;21(5):1538-47 PMID: 11222644
  19. Glucose transporter asymmetries in the bovine blood-brain barrier.
    J Biol Chem. 2001 Apr 20;276(16):12725-9 PMID: 11278779
  20. Developmental expression of metabotropic P2Y(1) and P2Y(2) receptors in freshly isolated astrocytes from rat hippocampus.
    J Neurochem. 2001 Apr;77(2):530-41 PMID: 11299315
  21. Understanding the Physiology of the Blood-Brain Barrier: In Vitro Models.
    News Physiol Sci. 1998 Dec;13:287-293 PMID: 11390805
  22. Glial cell influence on the human blood-brain barrier.
    Glia. 2001 Nov;36(2):145-55 PMID: 11596123
  23. Protoplasmic astrocytes in CA1 stratum radiatum occupy separate anatomical domains.
    J Neurosci. 2002 Jan 1;22(1):183-92 PMID: 11756501
  24. Astrocytes function in matching blood flow to metabolic activity.
    News Physiol Sci. 2002 Feb;17:27-31 PMID: 11821533
  25. Purinergic signaling and vascular cell proliferation and death.
    Arterioscler Thromb Vasc Biol. 2002 Mar 1;22(3):364-73 PMID: 11884276
  26. Intercellular calcium signaling mediated by point-source burst release of ATP.
    Proc Natl Acad Sci U S A. 2002 Jul 23;99(15):9840-5 PMID: 12097649
  27. Aquaporin water channels and endothelial cell function.
    J Anat. 2002 Jun;200(6):617-27 PMID: 12162729
  28. Neuron-to-astrocyte signaling is central to the dynamic control of brain microcirculation.
    Nat Neurosci. 2003 Jan;6(1):43-50 PMID: 12469126
  29. Astrocyte-mediated control of cerebral microcirculation.
    Trends Neurosci. 2003 Jul;26(7):340-4; author reply 344-5 PMID: 12850427
  30. Do astrocytes process neural information?
    Prog Brain Res. 1992;94:119-36 PMID: 1337609
  31. Antibodies defining rat endothelial cells: RECA-1, a pan-endothelial cell-specific monoclonal antibody.
    Lab Invest. 1992 Apr;66(4):459-66 PMID: 1583886
  32. 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
  33. Gap junctions in cultured astrocytes: single-channel currents and characterization of channel-forming protein.
    Neuron. 1991 Jan;6(1):133-43 PMID: 1702648
  34. Microvascular pericytes: a review of their morphological and functional characteristics.
    Histol Histopathol. 1991 Apr;6(2):269-86 PMID: 1802127
  35. Gap junctions between cultured astrocytes: immunocytochemical, molecular, and electrophysiological analysis.
    J Neurosci. 1991 May;11(5):1421-32 PMID: 1851221
  36. On the organization of astrocytic gap junctions in rat brain as suggested by LM and EM immunohistochemistry of connexin43 expression.
    J Comp Neurol. 1990 Dec 22;302(4):853-83 PMID: 1964467
  37. Glutamate induces calcium waves in cultured astrocytes: long-range glial signaling.
    Science. 1990 Jan 26;247(4941):470-3 PMID: 1967852
  38. Role of prostaglandins in microcirculatory function.
    Adv Prostaglandin Thromboxane Leukot Res. 1985;13:27-35 PMID: 3159211
  39. Does the release of potassium from astrocyte endfeet regulate cerebral blood flow?
    Science. 1987 Aug 21;237(4817):896-8 PMID: 3616619
  40. High potassium conductance in astrocyte endfeet.
    Science. 1986 Jul 25;233(4762):453-4 PMID: 3726539
  41. Glutamate-mediated astrocyte-neuron signalling.
    Nature. 1994 Jun 30;369(6483):744-7 PMID: 7911978
  42. Direct signaling from astrocytes to neurons in cultures of mammalian brain cells.
    Science. 1994 Mar 25;263(5154):1768-71 PMID: 8134839
  43. Autocrine signaling through ATP release represents a novel mechanism for cell volume regulation.
    Proc Natl Acad Sci U S A. 1996 Oct 15;93(21):12020-5 PMID: 8876255
  44. Specialized membrane domains for water transport in glial cells: high-resolution immunogold cytochemistry of aquaporin-4 in rat brain.
    J Neurosci. 1997 Jan 1;17(1):171-80 PMID: 8987746
  45. Asymmetric gap junctional coupling between glial cells in the rat retina.
    Glia. 1997 May;20(1):10-22 PMID: 9145301
  46. Prostaglandins stimulate calcium-dependent glutamate release in astrocytes.
    Nature. 1998 Jan 15;391(6664):281-5 PMID: 9440691
  47. Modulation of neuronal activity by glial cells in the retina.
    J Neurosci. 1998 Jun 1;18(11):4022-8 PMID: 9592083
  48. Restricted expression of the gap junctional protein connexin 43 in the arterial system of the rat.
    J Anat. 1998 May;192 ( Pt 4):583-93 PMID: 9723985
  49. Connexin43 is highly localized to sites of disturbed flow in rat aortic endothelium but connexin37 and connexin40 are more uniformly distributed.
    Circ Res. 1998 Sep 21;83(6):636-43 PMID: 9742059
  50. Glutamate-dependent astrocyte modulation of synaptic transmission between cultured hippocampal neurons.
    Eur J Neurosci. 1998 Jun;10(6):2129-42 PMID: 9753099
  51. Ca2+ mobilization in bovine corneal endothelial cells by P2 purinergic receptors.
    Curr Eye Res. 1998 Oct;17(10):994-1004 PMID: 9788302
  52. Modulation of synaptic efficacy and synaptic depression by glial cells at the frog neuromuscular junction.
    Neuron. 1998 Oct;21(4):847-55 PMID: 9808470
  53. P2 receptor subtypes in the cardiovascular system.
    Biochem J. 1998 Dec 15;336 ( Pt 3):513-23 PMID: 9841859
  54. Connexins regulate calcium signaling by controlling ATP release.
    Proc Natl Acad Sci U S A. 1998 Dec 22;95(26):15735-40 PMID: 9861039
  55. ATP released from astrocytes mediates glial calcium waves.
    J Neurosci. 1999 Jan 15;19(2):520-8 PMID: 9880572
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2003-10-08
Pages
9254-62
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6740832
Subset
IM
Grants
NINDS NIH HHS · R01 NS030007 · United States
NINDS NIH HHS · NS30007 · United States
NINDS NIH HHS · NS38073 · United States
NINDS NIH HHS · R01 NS038073 · United States
NCRR NIH HHS · RR14661 · United States
NINDS NIH HHS · NS01672 · United States
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