Literature DB >> 10970832

Exaggerated activation of nuclear factor-kappaB and altered IkappaB-beta processing in cystic fibrosis bronchial epithelial cells.

A Venkatakrishnan1, A A Stecenko, G King, T R Blackwell, K L Brigham, J W Christman, T S Blackwell.   

Abstract

In cystic fibrosis (CF), inflammatory mediator production by airway epithelial cells is a critical determinant of chronic airway inflammation. To determine whether altered signal transduction through the nuclear factor (NF)-kappaB pathway occurs in CF epithelial cells and results in excessive generation of inflammatory cytokines, we evaluated tumor necrosis factor (TNF)-alpha-induced production of the NF-kappaB-dependent cytokine interleukin (IL)-8 and activation of NF-kappaB in three different human bronchial epithelial cell lines: (1) BEAS cells that express wild-type CF transmembrane conductance regulator (CFTR), (2) IB3 cells with mutant CFTR, and (3) C38 cells, which are "corrected" IB3 cells complemented with wild-type CFTR. Treatment of cells with TNF-alpha (30 ng/ml) resulted in markedly elevated NF-kappaB activation and production of IL-8 by IB3 cells compared with BEAS and C38 cells. Despite the differences in NF- kappaB activation, no differences in basal levels of IkappaB-alpha or TNF-alpha- induced IkappaB-alpha processing and degradation were detected among the cell lines. In contrast, the basal level of IkappaB-beta was increased in the IB3 cells. Treatment with TNF-alpha resulted in increased formation of hypophosphorylated IkappaB-beta and increased nuclear localization of IkappaB-beta in IB3 cells compared with the other cell types. These findings provide additional evidence of a dysregulated inflammatory response in CF.

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Year:  2000        PMID: 10970832     DOI: 10.1165/ajrcmb.23.3.3949

Source DB:  PubMed          Journal:  Am J Respir Cell Mol Biol        ISSN: 1044-1549            Impact factor:   6.914


  55 in total

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2.  Lack of cystic fibrosis transmembrane conductance regulator in CD3+ lymphocytes leads to aberrant cytokine secretion and hyperinflammatory adaptive immune responses.

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3.  Parthenolide inhibits IkappaB kinase, NF-kappaB activation, and inflammatory response in cystic fibrosis cells and mice.

Authors:  Aicha Saadane; Sophia Masters; Joseph DiDonato; Jingfeng Li; Melvin Berger
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4.  Initial interrogation, confirmation and fine mapping of modifying genes: STAT3, IL1B and IFNGR1 determine cystic fibrosis disease manifestation.

Authors:  Heike Labenski; Silke Hedtfeld; Tim Becker; Burkhard Tümmler; Frauke Stanke
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Review 5.  Cystic fibrosis: NHLBI Workshop on the Primary Prevention of Chronic Lung Diseases.

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Review 6.  Monitoring inflammation in CF. Cytokines.

Authors:  Scott D Sagel; Frank J Accurso
Journal:  Clin Rev Allergy Immunol       Date:  2002-08       Impact factor: 8.667

Review 7.  The role of inflammation in the pathophysiology of CF lung disease.

Authors:  James F Chmiel; Melvin Berger; Michael W Konstan
Journal:  Clin Rev Allergy Immunol       Date:  2002-08       Impact factor: 8.667

8.  Hyperglycemia impedes lung bacterial clearance in a murine model of cystic fibrosis-related diabetes.

Authors:  William R Hunt; Susu M Zughaier; Dana E Guentert; Melissa A Shenep; Michael Koval; Nael A McCarty; Jason M Hansen
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2013-10-04       Impact factor: 5.464

9.  Genomewide association analysis of respiratory syncytial virus infection in mice.

Authors:  James M Stark; M Michael Barmada; Abby V Winterberg; Nilanjana Majumber; William J Gibbons; Marilyn A Stark; Maureen A Sartor; Mario Medvedovic; Jay Kolls; Kiflai Bein; Beena Mailaparambil; Marcus Krueger; Andrea Heinzmann; George D Leikauf; Daniel R Prows
Journal:  J Virol       Date:  2009-12-16       Impact factor: 5.103

10.  Microarray analysis reveals induction of lipoprotein genes in mucoid Pseudomonas aeruginosa: implications for inflammation in cystic fibrosis.

Authors:  Aaron M Firoved; Wojciech Ornatowski; Vojo Deretic
Journal:  Infect Immun       Date:  2004-09       Impact factor: 3.441

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