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Updated: May 16, 2026

Visualization of Inflammatory Caspases Induced Proximity in Human Monocyte-Derived Macrophages
Published on: April 6, 2022
HMG-CoA reductase inhibitors activate caspase-1 in human monocytes depending on ATP release and P2X7 activation
Yi-Hsiang Liao1, Yi-Chieh Lin, Shih-Ting Tsao
1Department of Pharmacology, College of Medicine, National Taiwan University, Taipei, Taiwan.
Abstract:
Recent studies have demonstrated the stimulatory effects of HMG-CoA reductase inhibitors, statins, on IL-1β secretion in monocytes and suggest a crucial role for isoprenoids in the inhibition of caspase-1 activity. In this study, we further elucidated the molecular mechanisms underlying the stimulatory effects of statins on caspase-1. Three commonly recognized mechanistic models for NLRP3 inflammasome activation (i.e., ATP/P2X7/K(+) efflux, ROS production, and lysosomal rupture) were investigated in statin-stimulated human THP-1 monocytes. We found that fluvastatin and lovastatin can synergize with LPS to trigger inflammasome activation. Moreover, statin-induced caspase-1 activation and IL-1β production in LPS-primed THP-1 cells are dependent on GGPP deficiency and P2X7 activation. In particular, increased ATP release accounts for the action of statins in P2X7 activation. We also provide evidence that statin-induced moderate ROS elevation is involved in this event. Moreover, the cathepsin B inhibitor was shown to reduce statin-induced IL-1β secretion. Consistently statins can induce cathepsin B activation and lysosomal rupture, as evidenced by LysoTracker staining. Statins also increase intracellular ATP secretion and IL-1β release in primary human monocytes and murine macrophages. Notably, exogenous ATP-elicited P2X7 activation and consequent IL-1β release, an index of direct NLRP3 inflammasome activation, were not altered by statins. Taken together, statin-induced enhancement of inflammasome activation in monocytes and macrophages covers multiple mechanisms, including increases in ATP release, ROS production, and lysosomal rupture. These data not only shed new insight into isoprenylation-dependent regulation of caspase-1 but also unmask mechanisms for statin-elicited inflammasome activation.
Insights
Statins stimulate inflammatory caspase-1 activation and IL-1β secretion in immune cells by increasing ATP release, ROS production, and lysosomal rupture, revealing new mechanisms of action.
Area of Science:
- Immunology
- Molecular Biology
- Pharmacology
Background:
- Statins, HMG-CoA reductase inhibitors, are known to affect immune cell function.
- Isoprenoids play a role in regulating caspase-1 activity.
- NLRP3 inflammasome activation is a key pathway in inflammatory responses.
Purpose of the Study:
- To elucidate the molecular mechanisms by which statins stimulate caspase-1 activation.
- To investigate the role of isoprenoids and NLRP3 inflammasome activation pathways in statin-induced effects.
- To examine statin effects on IL-1β secretion in various immune cells.
Main Methods:
- Investigated NLRP3 inflammasome activation models (ATP/P2X7/K(+) efflux, ROS, lysosomal rupture) in statin-stimulated THP-1 monocytes.
- Utilized fluvastatin and lovastatin, LPS priming, GGPP deficiency assessment, P2X7 activation assays, ROS detection, cathepsin B inhibition, and LysoTracker staining.
- Assessed statin effects on IL-1β release in primary human monocytes and murine macrophages.
Main Results:
- Flutastatin and lovastatin synergized with LPS to activate the inflammasome.
- Statin-induced caspase-1 activation and IL-1β production were dependent on GGPP deficiency and P2X7 activation, driven by increased ATP release.
- Statins induced moderate ROS elevation, cathepsin B activation, and lysosomal rupture, leading to increased IL-1β secretion.
Conclusions:
- Statin-induced inflammasome activation in monocytes and macrophages involves multiple pathways: increased ATP release, ROS production, and lysosomal rupture.
- These findings provide novel insights into isoprenylation-dependent regulation of caspase-1.
- The study unmasks specific mechanisms underlying statin-elicited inflammasome activation.
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