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Updated: Mar 9, 2026

Detection of Inflammasome Activation and Pyroptotic Cell Death in Murine Bone Marrow-derived Macrophages
Published on: May 21, 2018
Actin polymerization plays a significant role in asbestos-induced inflammasome activation in mesothelial cells in
Maximilian MacPherson1, Catherine Westbom1, Helen Kogan1
1Department of Pathology and Laboratory Medicine, College of Medicine, University of Vermont, 89 Beaumont Avenue, Burlington, VT, 05405, USA.
Abstract:
Asbestos exposure leads to malignant mesothelioma (MM), a deadly neoplasm of mesothelial cells of various locations. Although there is no doubt about the role of asbestos in MM tumorigenesis, mechanisms are still not well explored. Recently, our group demonstrated that asbestos causes inflammasome priming and activation in mesothelial cells, which in part is dependent on oxidative stress. Our current study sheds light on yet another mechanism of inflammasome activation by asbestos. Here we show the role of actin polymerization in asbestos-induced activation of the nod-like receptor pyrin domain-containing protein 3 (NLRP3) inflammasome. Using human mesothelial cells, we first demonstrate that asbestos and carbon nanotubes induced caspase-1 activation and high-mobility group box 1, interleukin 1 beta and interleukin 18 secretion was blocked by Cytochalasin D (Cyto D) an actin polymerization inhibitor. Next, to understand the mechanism, we assessed whether phagocytosis of fibers by mesothelial cells is affected by actin polymerization inhibition. Transmission electron microscopy showed the inhibition of fiber uptake by mesothelial cells in the presence of Cyto D. Furthermore, localization of components of the inflammasome, apoptotic speck-like protein containing a CARD domain (ASC) and NLRP3, to the perinuclear space in mitochondria or endoplasmic reticulum in response to fiber exposure was also interrupted in the presence of Cyto D. Taken together, our studies suggest that actin polymerization plays important roles in inflammasome activation by fibers via regulation of phagocytosis and/or spatial localization of inflammasome components.
Insights
Actin polymerization is crucial for asbestos-induced inflammasome activation in mesothelial cells. Inhibiting actin polymerization blocks fiber uptake and inflammasome component localization, revealing a new mechanism in malignant mesothelioma development.
Area of Science:
- Cell Biology
- Toxicology
- Immunology
Background:
- Asbestos exposure is a known cause of malignant mesothelioma (MM).
- The precise mechanisms of asbestos-induced MM tumorigenesis are not fully understood.
- Previous research indicated asbestos activates the inflammasome in mesothelial cells, partly via oxidative stress.
Purpose of the Study:
- To investigate the role of actin polymerization in asbestos-induced inflammasome activation.
- To elucidate the mechanism by which asbestos triggers the NLRP3 inflammasome in human mesothelial cells.
Main Methods:
- Human mesothelial cells were treated with asbestos and carbon nanotubes.
- Actin polymerization was inhibited using Cytochalasin D (Cyto D).
- Caspase-1 activation, cytokine secretion (HMGB1, IL-1β, IL-18), and fiber phagocytosis were assessed.
- Localization of inflammasome components (NLRP3, ASC) was examined using transmission electron microscopy.
Main Results:
- Cytochalasin D treatment blocked asbestos- and carbon nanotube-induced caspase-1 activation and cytokine release.
- Inhibition of actin polymerization significantly reduced the uptake of fibers by mesothelial cells.
- Cyto D interrupted the proper spatial localization of NLRP3 and ASC to perinuclear sites, mitochondria, or endoplasmic reticulum.
Conclusions:
- Actin polymerization is a key mediator in asbestos-induced NLRP3 inflammasome activation.
- The process involves regulating fiber phagocytosis and the spatial organization of inflammasome proteins.
- This finding offers new insights into the molecular mechanisms underlying asbestos-related mesothelioma.
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