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NOX1 Promotes Mesothelial-Mesenchymal Transition through Modulation of Reactive Oxygen Species-mediated Signaling
Wenyi Qin1, Ann Jeffers1, Shuzi Owens1
1Department of Cellular and Molecular Biology, The University of Texas Health Science Center at Tyler, Tyler, Texas.
Abstract:
Pleural organization may occur after empyema or complicated parapneumonic effusion and can result in restrictive lung disease with pleural fibrosis (PF). Pleural mesothelial cells (PMCs) may contribute to PF through acquisition of a profibrotic phenotype, mesothelial-mesenchymal transition (MesoMT), which is characterized by increased expression of α-SMA (α-smooth muscle actin) and other myofibroblast markers. Although MesoMT has been implicated in the pathogenesis of PF, the role of the reactive oxygen species and the NOX (nicotinamide adenine dinucleotide phosphate oxidase) family in pleural remodeling remains unclear. Here, we show that NOX1 expression is enhanced in nonspecific human pleuritis and is induced in PMCs by THB (thrombin). 4-Hydroxy-2-nonenal, an indicator of reactive oxygen species damage, was likewise increased in our mouse model of pleural injury. NOX1 downregulation blocked THB- and Xa (factor Xa)-mediated MesoMT, as did pharmacologic inhibition of NOX1 with ML-171. NOX1 inhibition also reduced phosphorylation of Akt, p65, and tyrosine 216-GSK-3β, signaling molecules previously shown to be implicated in MesoMT. Conversely, ML-171 did not reverse established MesoMT. NOX4 downregulation attenuated TGF-β- and THB-mediated MesoMT. However, NOX1 downregulation did not affect NOX4 expression. NOX1- and NOX4-deficient mice were also protected in our mouse model of Streptococcus pneumoniae-mediated PF. These data show that NOX1 and NOX4 are critical determinants of MesoMT.
Insights
Nicotinamide adenine dinucleotide phosphate oxidase (NOX) enzymes, specifically NOX1 and NOX4, drive pleural fibrosis by promoting mesothelial-mesenchymal transition (MesoMT). Inhibiting NOX1 and NOX4 shows therapeutic potential for preventing pleural fibrosis.
Area of Science:
- Pulmonary Medicine
- Cell Biology
- Molecular Biology
Background:
- Pleural fibrosis (PF) can cause restrictive lung disease following infections like empyema.
- Pleural mesothelial cells (PMCs) transforming into myofibroblasts (mesothelial-mesenchymal transition, MesoMT) contributes to PF.
- The role of reactive oxygen species and NOX enzymes in pleural remodeling is not well understood.
Purpose of the Study:
- To investigate the role of NOX1 and NOX4 in mesothelial-mesenchymal transition (MesoMT) and pleural fibrosis (PF).
- To determine if NOX enzymes are therapeutic targets for PF.
Main Methods:
- Examined NOX1 expression in human pleuritis and THB-stimulated PMCs.
- Utilized NOX1 inhibition (ML-171) and gene silencing in vitro.
- Assessed MesoMT markers and signaling pathways (Akt, p65, GSK-3β).
- Employed NOX1- and NOX4-deficient mice in a Streptococcus pneumoniae-induced PF model.
Main Results:
- NOX1 expression increased in human pleuritis and was induced by THB in PMCs.
- NOX1 inhibition blocked THB- and Factor Xa-induced MesoMT and reduced key signaling.
- NOX4 deficiency attenuated TGF-β- and THB-induced MesoMT.
- NOX1 and NOX4 deficiency protected mice against Streptococcus pneumoniae-induced PF.
Conclusions:
- NOX1 and NOX4 are essential regulators of MesoMT.
- NOX1 and NOX4 play critical roles in the pathogenesis of pleural fibrosis.
- Targeting NOX enzymes may offer a novel therapeutic strategy for pleural fibrosis.
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