vitamin-k-semiquinone-radical has been researched along with Pulmonary-Fibrosis* in 4 studies
4 other study(ies) available for vitamin-k-semiquinone-radical and Pulmonary-Fibrosis
Article | Year |
---|---|
Can Bisphosphonates Prevent Vitamin K Antagonist Toxicity in Patients with Idiopathic Pulmonary Fibrosis?
Topics: Anticoagulants; Diphosphonates; Humans; Idiopathic Pulmonary Fibrosis; Pulmonary Fibrosis; Vitamin K | 2017 |
Reply: Can Bisphosphonates Prevent Vitamin K Antagonist Toxicity in Patients with Idiopathic Pulmonary Fibrosis?
Topics: Anticoagulants; Diphosphonates; Humans; Idiopathic Pulmonary Fibrosis; Pulmonary Fibrosis; Vitamin K | 2017 |
Absence of Vitamin K-Dependent γ-Carboxylation in Human Periostin Extracted from Fibrotic Lung or Secreted from a Cell Line Engineered to Optimize γ-Carboxylation.
Periostin (PN, gene name POSTN) is an extracellular matrix protein that is up-regulated in bronchial epithelial cells and lung fibroblasts by TH-2 cytokines. Its paralog, TGF-β-induced protein (βig-h3, gene name TGFBI), is also expressed in the lung and up-regulated in bronchial myofibroblasts by TGF-β. PN and βig-h3 contain fasciclin 1 modules that harbor putative recognition sequences for γ-glutamyl carboxylase and are annotated in UniProt as undergoing vitamin K-dependent γ-carboxylation of multiple glutamic acid residues. γ-carboxylation profoundly alters activities of other proteins subject to the modification, e.g., blood coagulation factors, and would be expected to alter the structure and function of PN and βig-h3. To analyze for the presence of γ-carboxylation, proteins extracted from fibrotic lung were reacted with monoclonal antibodies specific for PN, βig-h3, or modification with γ-carboxyglutamic acid (Gla). In Western blots of 1-dimensional gels, bands stained with anti-PN or -βig-h3 did not match those stained with anti-Gla. In 2-dimensional gels, anti-PN-positive spots had pIs of 7.0 to >8, as expected for the unmodified protein, and there was no overlap between anti-PN-positive and anti-Gla-positive spots. Recombinant PN and blood coagulation factor VII were produced in HEK293 cells that had been transfected with vitamin K 2, 3-epoxide reductase C1 to optimize γ-carboxylation. Recombinant PN secreted from these cells did not react with anti-Gla antibody and had pIs similar to that found in extracts of fibrotic lung whereas secreted factor VII reacted strongly with anti-Gla antibody. Over 67% coverage of recombinant PN was achieved by mass spectrometry, including peptides with 19 of the 24 glutamates considered targets of γ-carboxylation, but analysis revealed no modification. Over 86% sequence coverage and three modified glutamic acid residues were identified in recombinant fVII. These data indicate that PN and βig-h3 are not subject to vitamin K-dependent γ-carboxylation. Topics: Cell Adhesion Molecules; Female; HEK293 Cells; Humans; Lung; Male; Metabolic Engineering; Protein Processing, Post-Translational; Pulmonary Fibrosis; Recombinant Proteins; Vitamin K | 2015 |
Asbestos-induced lung epithelial permeability: potential role of nonoxidant pathways.
Asbestos fibers are an important cause of lung fibrosis; however, the biological mechanisms are incompletely understood. The lung epithelium serves an important barrier function in the lung, and disrupting the epithelial barrier can contribute to lung fibrosis. Lung epithelial permeability is increased in patients with asbestosis, and asbestos fibers increase permeability across cultured human lung epithelium. However, the mechanism of this increased permeability is not known. Many of the biological effects of asbestos are postulated to be due to its ability to generate oxidants, and oxidants are known to increase epithelial permeability. However, we previously reported that altering the iron content of asbestos (important in oxidant generation) had no effect on its ability to increase permeability. For that reason, we undertook these studies to determine whether asbestos increases epithelial permeability through nonoxidant pathways. Both extracellular (H2O2) and intracellular (menadione) oxidants increase paracellular permeability across human lung epithelial monolayers. Extracellular catalase but not superoxide dismutase prevented increased permeability after both oxidant exposures. However, catalase offered no protection from asbestos-induced permeability. We next depleted the cells of glutathione or catalase to determine whether depleting normal cellular antioxidants would increase the sensitivity to asbestos. Permeability was the same in control cells and in cells depleted of these antioxidants. In addition to generating oxidants, asbestos also activates signal transduction pathways. Blocking protein kinase C activation did not prevent asbestos-induced permeability; however, blocking tyrosine kinase with tyrophostin A25 did prevent asbestos-induced permeability, and blocking tyrosine phosphatase with sodium vanadate enhanced the effect of asbestos. These data demonstrate that asbestos may increase epithelial permeability through nonoxidant pathways that involve tyrosine kinase activation. This model offers an important system for studying pathways involved in regulating lung epithelial permeability. Topics: Amitrole; Asbestos, Amosite; Asbestos, Serpentine; Buthionine Sulfoximine; Catalase; Cell Membrane Permeability; Cells, Cultured; Epithelial Cells; Glutathione; Humans; Hydrogen Peroxide; Kinetics; Lung; Mannitol; Oxidants; Phorbol 12,13-Dibutyrate; Pulmonary Fibrosis; Time Factors; Vitamin K | 1998 |