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A Silicosis Mouse Model Established by Repeated Inhalation of Crystalline Silica Dust
Published on: January 6, 2023
Iron-dependent lysosomal destabilization initiates silica-induced apoptosis in murine macrophages
1Divisions of Pulmonary Medicine, Faculty of Health Sciences, University of Linköping, SE58185 Linköping, Sweden. Lenpe@inr.liu.se
Abstract:
Alveolar macrophages play a critical role in silica-induced lung fibrosis, and apoptotic mechanisms have been implicated in silica-induced pathogenesis. Here, employing a model of murine macrophages (J774 cells), it is shown that serum-coated alpha-quartz silica particles cause lysosomal rupture and apoptosis following endocytotic uptake. The loss of lysosomal integrity involves intralysosomal iron-catalyzed peroxidative damage to lysosomal membranes. Thus, lysosomal damage is most pronounced in cells exposed to silica particles with high amounts of surface-bound iron, whereas silica particles previously treated with the iron chelator desferrioxamine only induce modest rupture. Furthermore, inhibition of intralysosomal Fenton type chemistry, either by pre-treatment with desferrioxamine complexed to starch--an iron chelator targeted to the lysosomal compartment--or by concomitant treatment with diphenylene iodonium--a potent inhibitor of NADPH oxidase --both prevent silica-induced lysosomal leakage and ensuing apoptotic cell death. This study also demonstrates that silica-induced lysosomal rupture is a very early apoptotic event, preceding activation of caspases, disruption of transmembrane mitochondrial potential and DNA fragmentation. Indeed, these later apoptotic events appear to be directly correlated to the magnitude of lysosomal leakage, and are not observed in cells treated with high molecular weight desferrioxamine or diphenylene iodonium.
Insights
Silica particles trigger lung cell death by damaging lysosomes, a key early event in silica-induced lung fibrosis. Iron within silica exacerbates this lysosomal rupture and subsequent apoptosis.
Area of Science:
- Cell Biology
- Toxicology
- Immunology
Background:
- Alveolar macrophages are crucial in silica-induced lung fibrosis.
- Apoptotic mechanisms contribute to silica pathogenesis.
Purpose of the Study:
- To investigate the role of lysosomal integrity in silica-induced macrophage apoptosis.
- To elucidate the mechanisms of silica particle-induced cell damage.
Main Methods:
- Murine macrophages (J774 cells) were exposed to serum-coated alpha-quartz silica particles.
- Lysosomal integrity, iron catalysis, and apoptotic markers were assessed.
- Iron chelators and NADPH oxidase inhibitors were used to investigate mechanisms.
Main Results:
- Silica particles caused lysosomal rupture and apoptosis in macrophages.
- Intralysosomal iron-catalyzed peroxidative damage to lysosomal membranes was identified.
- Iron chelation and NADPH oxidase inhibition prevented silica-induced lysosomal leakage and apoptosis.
- Lysosomal rupture preceded other apoptotic events like caspase activation and DNA fragmentation.
Conclusions:
- Silica-induced lysosomal rupture is an early, critical event in macrophage apoptosis.
- Intralysosomal iron and Fenton-type chemistry are key drivers of silica-induced cell damage.
- Targeting lysosomal integrity offers a potential therapeutic strategy for silica-induced lung fibrosis.
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