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Molecular Pharmacology

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Research ArticleArticle

PAR1 and PAR2 Couple to Overlapping and Distinct Sets of G Proteins and Linked Signaling Pathways to Differentially Regulate Cell Physiology

Kelly L. McCoy, Stephen F. Traynelis and John R. Hepler
Molecular Pharmacology June 2010, 77 (6) 1005-1015; DOI: https://doi.org/10.1124/mol.109.062018
Kelly L. McCoy
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Stephen F. Traynelis
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John R. Hepler
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Abstract

The protease-activated receptors (PAR1 and PAR2) are unusual G protein-coupled receptors that are activated by distinct serine proteases and are coexpressed in many different cell types. Limited recent evidence suggests these closely related receptors regulate different physiological outputs in the same cell, although little is known about the comparative signaling pathways used by these receptors. Here we report that PAR1 and PAR2 couple to overlapping and distinct sets of G proteins to regulate receptor-specific signaling pathways involved in cell migration. In functionally PAR-null COS-7 cells, ectopically expressed PAR1 and PAR2 both form stable complexes with Gαq, Gα11, Gα14, Gα12, and Gα13. It is surprising that PAR1 but not PAR2 coupled to Gαo, Gαi1, and Gαi2. Consistent with these observations, PAR1 and PAR2 stimulation of inositol phosphate production and RhoA activation was blocked by specific inhibitors of Gq/11 and G12/13 signaling, respectively. Both receptors stimulated extracellular signal-regulated kinase (ERK) 1/2 phosphorylation, but only PAR1 inhibited adenylyl cyclase activity, and pertussis toxin blocked PAR1 effects on both adenylyl cyclase and ERK1/2 signaling. Neu7 astrocytes express native PAR1 and PAR2 receptors that activate inositol phosphate, RhoA, and ERK1/2 signaling. However, only PAR1 inhibited adenylyl cyclase activity. PAR1 and PAR2 also stimulate Neu7 cell migration. PAR1 effects on ERK1/2 phosphorylation and cell migration were blocked both by pertussis toxin and by the mitogen-activated protein kinase kinase/ERK inhibitor [1,4-diamino-2,3-dicyano-1,4-bis(methylthio)butadiene (U0126)], whereas PAR2 effects were only blocked by U0126. These studies demonstrate that PAR1 and PAR2 physically and functionally link to overlapping and distinct profiles of G proteins to differentially regulate downstream signaling pathways and cell physiology.

Footnotes

  • ↵Embedded Image The online version of this article (available at http://molpharm.aspetjournals.org) contains supplemental material.

  • This work was supported by National Institutes of Health National Institute of Neurological Disorders and Stroke [Grants R01-NS049195, R01-NS37112, R01-NS039419] and by the American Heart Association [Grant 0715465B].

  • Article, publication date, and citation information can be found at http://molpharm.aspetjournals.org.

    doi:10.1124/mol.109.062018.

  • ABBREVIATIONS:

    PAR
    protease-activated receptor
    BSA
    bovine serum albumin
    CNS
    central nervous system
    DMEM
    Dulbecco's modified Eagle's medium
    ECL
    enhanced chemiluminescence
    ERK
    extracellular signal-regulated kinase
    GPCR
    G protein-coupled receptor
    GRK2
    G protein-coupled receptor kinase-2
    InsP
    inositol phosphate
    MAPK
    mitogen-activated protein kinase
    PAR-AP
    protease-activated receptor-activating peptide
    PBS
    phosphate-buffered saline
    PLC
    phospholipase C
    PTX
    pertussis toxin
    RGS
    regulator of G protein signaling
    TBST
    Tris-buffered saline/Tween 20
    PAGE
    polyacrylamide gel electrophoresis
    BIS
    bisindolymaleimide
    ELISA
    enzyme-linked immunosorbent assay
    coIP
    coimmunoprecipitate
    MEK
    mitogen-activated protein kinase kinase
    DβM
    n-dodecyl-β-d-maltoside
    α1A-AR
    α1A-adrenergic receptor
    IP
    immunoprecipitate
    PKC
    protein kinase C
    GTPγS
    guanosine 5′-3-O-(thio)triphosphate
    U0126
    1,4-diamino-2,3-dicyano-1,4-bis(methylthio) butadiene
    U73122
    1-[6-[[17β-methoxyestra-1,3,5(10)-trien-17-yl]amino]hexyl]-1H-pyrrole-2,5-dione.

  • Received October 29, 2009.
  • Accepted March 9, 2010.
  • Copyright © 2010 The American Society for Pharmacology and Experimental Therapeutics
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Molecular Pharmacology: 77 (6)
Molecular Pharmacology
Vol. 77, Issue 6
1 Jun 2010
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Research ArticleArticle

PAR1 and PAR2 Couple to Overlapping and Distinct Sets of G Proteins and Linked Signaling Pathways to Differentially Regulate Cell Physiology

Kelly L. McCoy, Stephen F. Traynelis and John R. Hepler
Molecular Pharmacology June 1, 2010, 77 (6) 1005-1015; DOI: https://doi.org/10.1124/mol.109.062018

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Research ArticleArticle

PAR1 and PAR2 Couple to Overlapping and Distinct Sets of G Proteins and Linked Signaling Pathways to Differentially Regulate Cell Physiology

Kelly L. McCoy, Stephen F. Traynelis and John R. Hepler
Molecular Pharmacology June 1, 2010, 77 (6) 1005-1015; DOI: https://doi.org/10.1124/mol.109.062018
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