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Published on: July 6, 2019
Inhibition of Caspase-1 with Tetracycline Ameliorates Acute Lung Injury
Konrad Peukert1, Mario Fox1, Susanne Schulz1
1Department of Anesthesiology and Intensive Care Medicine.
Abstract:
Rationale: Acute respiratory distress syndrome (ARDS) is a heterogeneous syndrome with a mortality of up to 40%. Precision medicine approaches targeting patients on the basis of their molecular phenotypes of ARDS might help to identify effective pharmacotherapies. The inflammasome-caspase-1 pathway contributes to the development of ARDS via IL-1β and IL-18 production. Recent studies indicate that tetracycline can be used to treat inflammatory diseases mediated by IL-1β and IL-18, although the molecular mechanism by which tetracycline inhibits inflammasome-caspase-1 signaling remains unknown. Objectives: To identify patients with ARDS characterized by IL-1β and IL-18 expression and investigate the ability of tetracycline to inhibit inflammasome-caspase-1 signaling in ARDS. Methods: IL-1β and IL-18 concentrations were quantified in BAL fluid from patients with ARDS. Tetracycline's effects on lung injury and inflammation were assessed in two mouse models of direct (pulmonary) acute lung injury, and its effects on IL-1β and IL-18 production were assessed by alveolar leukocytes from patients with direct ARDS ex vivo. Murine macrophages were used to further characterize the effect of tetracycline on the inflammasome-caspase-1 pathway. Measurements and Main Results: BAL fluid concentrations of IL-1β and IL-18 are significantly higher in patients with direct ARDS than those with indirect (nonpulmonary) ARDS. In experimental acute lung injury, tetracycline significantly diminished lung injury and pulmonary inflammation by selectively inhibiting caspase-1-dependent IL-1β and IL-18 production, leading to improved survival. Tetracycline also reduced the production of IL-1β and IL-18 by alveolar leukocytes from patients with direct ARDS. Conclusions: Tetracycline may be effective in the treatment of direct ARDS in patients with elevated caspase-1 activity. Clinical Trial registered with www.clinicaltrials.gov (NCT04079426).
Insights
Tetracycline effectively reduced lung injury and inflammation in direct acute respiratory distress syndrome (ARDS) by inhibiting the inflammasome-caspase-1 pathway. This suggests tetracycline as a potential treatment for ARDS patients with high caspase-1 activity.
Area of Science:
- Pulmonary Medicine
- Molecular Biology
- Pharmacology
Background:
- Acute respiratory distress syndrome (ARDS) is a severe condition with high mortality, characterized by heterogeneous molecular phenotypes.
- The inflammasome-caspase-1 pathway, producing IL-1β and IL-18, is implicated in ARDS pathogenesis.
- Tetracycline's anti-inflammatory effects are known, but its mechanism against inflammasome-caspase-1 signaling in ARDS is unclear.
Purpose of the Study:
- To identify ARDS patients with elevated IL-1β and IL-18 expression.
- To investigate tetracycline's efficacy in inhibiting the inflammasome-caspase-1 pathway in ARDS.
- To explore tetracycline's therapeutic potential in direct ARDS.
Main Methods:
- Quantified IL-1β and IL-18 levels in bronchoalveolar lavage (BAL) fluid from ARDS patients.
- Assessed tetracycline's impact on lung injury and inflammation in mouse models of direct acute lung injury.
- Evaluated tetracycline's effect on IL-1β and IL-18 production by alveolar leukocytes and murine macrophages.
Main Results:
- Direct ARDS patients exhibited significantly higher IL-1β and IL-18 levels in BAL fluid compared to indirect ARDS.
- Tetracycline treatment reduced lung injury and inflammation in experimental acute lung injury by inhibiting caspase-1-dependent IL-1β and IL-18.
- Tetracycline improved survival in mouse models and decreased IL-1β/IL-18 production in patient-derived alveolar leukocytes.
Conclusions:
- Tetracycline demonstrates potential as a therapeutic agent for direct ARDS.
- The drug's efficacy is linked to the inhibition of caspase-1-driven IL-1β and IL-18 production.
- This study supports further clinical investigation of tetracycline for ARDS management (Clinical Trial NCT04079426).

