Literature DB >> 21873556

Enhanced Ca2+ entry due to Orai1 plasma membrane insertion increases IL-8 secretion by cystic fibrosis airways.

Haouaria Balghi1, Renaud Robert, Benjamin Rappaz, Xuexin Zhang, Adeline Wohlhuter-Haddad, Alexandra Evagelidis, Yishan Luo, Julie Goepp, Pasquale Ferraro, Philippe Roméo, Mohamed Trebak, Paul W Wiseman, David Y Thomas, John W Hanrahan.   

Abstract

Cystic fibrosis (CF) is caused by mutations in the gene encoding the CF transmembrane conductance regulator (CFTR). The most common mutation, ΔF508, causes retention of CFTR in the endoplasmic reticulum (ER). Some CF abnormalities can be explained by altered Ca(2+) homeostasis, although it remains unknown how CFTR influences calcium signaling. This study examined the novel hypothesis that store-operated calcium entry (SOCE) through Orai1 is abnormal in CF. The significance of Orai1-mediated SOCE for increased interleukin-8 (IL-8) expression in CF was also investigated. CF and non-CF human airway epithelial cell line and primary cells (obtained at lung transplantation) were used in Ca(2+) imaging, electrophysiology, and fluorescence imaging experiments to explore differences in Orai1 function in CF vs. non-CF cells. Protein expression and localization was assessed by Western blots, cell surface biotinylation, ELISA, and image correlation spectroscopy (ICS). We show here that store-operated Ca(2+) entry (SOCE) is elevated in CF human airway epithelial cells (hAECs; ≈ 1.8- and ≈ 2.5-fold for total Ca(2+)(i) increase and Ca(2+) influx rate, respectively, and ≈ 2-fold increase in the I(CRAC) current) and is caused by increased exocytotic insertion (≈ 2-fold) of Orai1 channels into the plasma membrane, which is normalized by rescue of ΔF508-CFTR trafficking to the cell surface. Augmented SOCE in CF cells is a major factor leading to increased IL-8 secretion (≈ 2-fold). CFTR normally down-regulates the Orai1/stromal interaction molecule 1 (STIM1) complex, and loss of this inhibition due to the absence of CFTR at the plasma membrane helps to explain the potentiated inflammatory response in CF cells.

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Year:  2011        PMID: 21873556      PMCID: PMC3236623          DOI: 10.1096/fj.11-187682

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.191


  67 in total

1.  Isolation and culture of airway epithelial cells from chronically infected human lungs.

Authors:  S H Randell; L Walstad; U E Schwab; B R Grubb; J R Yankaskas
Journal:  In Vitro Cell Dev Biol Anim       Date:  2001-09       Impact factor: 2.416

Review 2.  Role of snare proteins in CFTR and ENaC trafficking.

Authors:  K W Peters; J Qi; J P Johnson; S C Watkins; R A Frizzell
Journal:  Pflugers Arch       Date:  2001-07-21       Impact factor: 3.657

3.  Monovalent cation permeability and Ca(2+) block of the store-operated Ca(2+) current I(CRAC )in rat basophilic leukemia cells.

Authors:  Daniel Bakowski; Anant B Parekh
Journal:  Pflugers Arch       Date:  2002-01-22       Impact factor: 3.657

4.  Isolation of CF cell lines corrected at DeltaF508-CFTR locus by SFHR-mediated targeting.

Authors:  E Bruscia; F Sangiuolo; P Sinibaldi; K K Goncz; G Novelli; D C Gruenert
Journal:  Gene Ther       Date:  2002-06       Impact factor: 5.250

5.  Potentiation and inhibition of Ca(2+) release-activated Ca(2+) channels by 2-aminoethyldiphenyl borate (2-APB) occurs independently of IP(3) receptors.

Authors:  M Prakriya; R S Lewis
Journal:  J Physiol       Date:  2001-10-01       Impact factor: 5.182

6.  Proliferation, not apoptosis, alters epithelial cell migration in small intestine of CFTR null mice.

Authors:  A M Gallagher; R A Gottlieb
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2001-09       Impact factor: 4.052

7.  Hair loss and defective T- and B-cell function in mice lacking ORAI1.

Authors:  Yousang Gwack; Sonal Srikanth; Masatsugu Oh-Hora; Patrick G Hogan; Edward D Lamperti; Megumi Yamashita; Curtis Gelinas; Daniel S Neems; Yoshiteru Sasaki; Stefan Feske; Murali Prakriya; Klaus Rajewsky; Anjana Rao
Journal:  Mol Cell Biol       Date:  2008-06-30       Impact factor: 4.272

8.  Enhanced exocytotic-like insertion of Orai1 into the plasma membrane upon intracellular Ca2+ store depletion.

Authors:  Geoffrey E Woodard; Ginés M Salido; Juan A Rosado
Journal:  Am J Physiol Cell Physiol       Date:  2008-04-09       Impact factor: 4.249

9.  A macromolecular complex of beta 2 adrenergic receptor, CFTR, and ezrin/radixin/moesin-binding phosphoprotein 50 is regulated by PKA.

Authors:  Anjaparavanda P Naren; Bryan Cobb; Chunying Li; Koushik Roy; David Nelson; Ghanshyam D Heda; Jie Liao; Kevin L Kirk; Eric J Sorscher; John Hanrahan; John P Clancy
Journal:  Proc Natl Acad Sci U S A       Date:  2002-12-26       Impact factor: 11.205

10.  CFTR in a lipid raft-TNFR1 complex modulates gap junctional intercellular communication and IL-8 secretion.

Authors:  Tecla Dudez; Florence Borot; Song Huang; Brenda R Kwak; Marc Bacchetta; Mario Ollero; Bruce A Stanton; Marc Chanson
Journal:  Biochim Biophys Acta       Date:  2008-01-18
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  22 in total

1.  Abnormal n-6 fatty acid metabolism in cystic fibrosis is caused by activation of AMP-activated protein kinase.

Authors:  Obi C Umunakwe; Adam C Seegmiller
Journal:  J Lipid Res       Date:  2014-05-24       Impact factor: 5.922

Review 2.  STIM proteins: dynamic calcium signal transducers.

Authors:  Jonathan Soboloff; Brad S Rothberg; Muniswamy Madesh; Donald L Gill
Journal:  Nat Rev Mol Cell Biol       Date:  2012-09       Impact factor: 94.444

3.  Expression of ORAII, a plasma membrane resident subunit of the CRAC channel, in rodent and non-rodent species.

Authors:  Roberto Guzman; Eliane G Valente; Jim Pretorius; Efrain Pacheco; Meiying Qi; Brian D Bennett; David H Fong; Fen-Fen Lin; Vivian Bi; Helen J McBride
Journal:  J Histochem Cytochem       Date:  2014-09-23       Impact factor: 2.479

Review 4.  The secret life of CFTR as a calcium-activated chloride channel.

Authors:  Arnaud Billet; John W Hanrahan
Journal:  J Physiol       Date:  2013-08-19       Impact factor: 5.182

5.  Calcium release-activated calcium (CRAC) channels mediate the β(2)-adrenergic regulation of Na,K-ATPase.

Authors:  Michael J Keller; Emilia Lecuona; Murali Prakriya; Yuan Cheng; Saul Soberanes; G R Scott Budinger; Jacob I Sznajder
Journal:  FEBS Lett       Date:  2014-11-11       Impact factor: 4.124

6.  Defective goblet cell exocytosis contributes to murine cystic fibrosis-associated intestinal disease.

Authors:  Jinghua Liu; Nancy M Walker; Akifumi Ootani; Ashlee M Strubberg; Lane L Clarke
Journal:  J Clin Invest       Date:  2015-02-02       Impact factor: 14.808

7.  Store-Operated Ca2+ Release-Activated Ca2+ Channels Regulate PAR2-Activated Ca2+ Signaling and Cytokine Production in Airway Epithelial Cells.

Authors:  Amit Jairaman; Megumi Yamashita; Robert P Schleimer; Murali Prakriya
Journal:  J Immunol       Date:  2015-08-03       Impact factor: 5.422

Review 8.  Dysregulated Chemokine Signaling in Cystic Fibrosis Lung Disease: A Potential Therapeutic Target.

Authors:  Xiaoqing Guan; Yuning Hou; Fei Sun; Zhe Yang; Chunying Li
Journal:  Curr Drug Targets       Date:  2016       Impact factor: 3.465

9.  Genotype-specific alterations in vascular smooth muscle cell function in cystic fibrosis piglets.

Authors:  Jinny J Guo; David A Stoltz; Vivian Zhu; Kenneth A Volk; Jeffrey L Segar; Paul B McCray; Robert D Roghair
Journal:  J Cyst Fibros       Date:  2013-10-31       Impact factor: 5.482

10.  Study of the Endogenous CRAC Channel Using shRNA-Mediated Gene Silencing.

Authors:  Xuexin Zhang; Amy M Spinelli; Wei Zhang; Mohamed Trebak
Journal:  Methods Mol Biol       Date:  2018
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