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Bioluminescence Imaging of NADPH Oxidase Activity in Different Animal Models
Published on: October 22, 2012
Reactive oxygen species and NADPH oxidase 4 involvement in osteoarthritis
S Drevet1, G Gavazzi2, L Grange3
1Grenoble Alpes University Hospital, Orthogeriatric Unit, Geriatric Department, Grenoble Alpes University, GREPI UGA-EFS EA7408, Boulevard de la Chantourne, 38043 Grenoble Cedex 1, France.
Abstract:
Osteoarthritis (OA) is a degenerative chronic disease affecting >300,000 million people around the world as of 2016. Symptomatic measures exist, but there are hardly any curative treatments available. Disruption of the cartilage homeostasis in favor of catabolism leads to cartilage destruction. ROS-macromolecular-induced damage is significantly greater in OA cartilage and OA is described as low-grade chronic systemic inflammation. This review aimed to assess the critical role of cartilage ageing and oxidative stress in the OA process, focusing in particular on NADPH oxidase and especially Nox4 involvement. With age, hypertrophic senescent cells with an altered redox cell profile accumulated. Chondrocytes are more sensitive to oxidant-mediators and the serum level of pro-inflammatory mediators increases. Age-related advanced glycation end products impact on extra cellular matrix (ECM) properties leading to the apoptosis of chondrocytes. A focus on NADPH oxidase-mediated-ROS signaling highlighted the very specific Nox4 isoform, which plays a role on the final common pathway targeting chondrocyte cells. IL-1β-mediated Nox4 stimulation induced an increase in the levels released by the chondrocyte of MMP-1 and MMP-13 proteins, which are involved in ECM degradation. In comparison with the other Nox isoforms, Nox4 remains unusual, since it is constitutively active, does not depend on cytosolic activator proteins and seems to generate H2O2 thanks to the specific conformation of the Nox4 E-loop. Nox4-induced ROS production appears an essential actor in the OA process and it could be relevant to focus on this target in the aim of discovering and developing new therapeutic strategies.
Insights
Oxidative stress and cartilage aging play key roles in osteoarthritis (OA). The study highlights Nox4, a specific NADPH oxidase, as a crucial target for developing new OA therapies.
Area of Science:
- Biochemistry
- Cell Biology
- Rheumatology
Background:
- Osteoarthritis (OA) is a prevalent degenerative joint disease impacting over 300 million globally.
- Current OA treatments primarily manage symptoms, lacking curative options due to cartilage destruction and chronic inflammation.
- Oxidative stress and cartilage aging are increasingly recognized as critical factors in OA pathogenesis.
Purpose of the Study:
- To review the roles of cartilage aging and oxidative stress in osteoarthritis.
- To specifically investigate the involvement of NADPH oxidase, particularly the Nox4 isoform, in OA.
- To explore potential therapeutic strategies targeting Nox4 in OA.
Main Methods:
- Literature review focusing on cartilage aging, oxidative stress, and NADPH oxidase in OA.
- Analysis of the specific role of the Nox4 isoform in chondrocyte function and extracellular matrix (ECM) degradation.
- Examination of the signaling pathways involving Nox4, IL-1β, and matrix metalloproteinases (MMPs).
Main Results:
- Aging leads to senescent cells and increased chondrocyte sensitivity to oxidative stress.
- Nox4, a constitutively active NADPH oxidase isoform, generates reactive oxygen species (ROS) in chondrocytes.
- IL-1β stimulation of Nox4 increases MMP-1 and MMP-13, enzymes that degrade ECM, contributing to cartilage destruction.
Conclusions:
- Nox4-derived ROS are integral to the osteoarthritis process.
- The unique characteristics of Nox4 make it a promising therapeutic target for novel OA treatments.
- Targeting Nox4 could offer a new strategy for disease modification in osteoarthritis.
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