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Author Spotlight: Exploring the Relationship Between Lipotoxicity and HFpEF
Published on: March 29, 2024
NLRP3 inhibition protects human coronary endothelial cells from oxidative and lipotoxic stress
Astrid Parenti1, Costanza Titi2, Arianna Brovero3
1Department of Health Sciences, University of Florence, Italy; National Institute for Cardiovascular Research (INRC), Bologna, Italy.
Abstract:
An increased production of reactive oxygen species and elevated levels of free fatty acids are linked to inflammation and vascular endothelial dysfunction. Here, we investigated the effects of two pharmacological inhibitors of the NLRP3 inflammasome, INF150 and INF195, on Human Coronary Artery Endothelial Cells (HCAECs) exposed to hydrogen peroxide (H2O2) and palmitic acid (PA), to mimic the oxidative and lipotoxic stress underlying endothelial dysfunction. HCAECs were pre-treated for 15 min with either INF150 or INF195, followed by exposure to increasing concentrations of H2O2 or PA staring from doses that induce endothelial dysfunction without causing cell death. Cell viability was assessed by MTT assay, while in vitro angiogenesis was evaluated through pseudo-capillary formation. NLRP3, caspase-1, and IL-1β levels were quantified by ELISA and pyroptosis by LDH release and gasdermin D cleavage. Additionally, we evaluated the protective effects of the two inhibitors in HCAECs primed with TNF-α and subsequently challenged with PA. Both inhibitors preserved cell viability under oxidative stress conditions, with INF195 showing greater efficacy. Notably, only INF195 significantly protected HCAECs from both PA and TNF-α + PA-induced injury. Exposure to PA, with or without TNF-α, markedly increased caspase-1 expression and pyroptosis which were rescued by INF195. Furthermore, H2O2 and PA significantly impaired in vitro pseudocapillary formation by HCAECs and HUVECs, considered the gold standard for in vitro angiogenesis assays, an effect counteracted by INF195. These findings suggest that, under oxidative and lipotoxic stress, NLRP3 inflammasome inhibition -particularly via INF195 - supports the maintenance of vascular endothelial homeostasis by preserving cell viability and angiogenic function.
Insights
Two NLRP3 inflammasome inhibitors, INF150 and INF195, were tested against oxidative and lipotoxic stress in endothelial cells. INF195 demonstrated significant protection, preserving cell viability and angiogenic function, suggesting its therapeutic potential for vascular endothelial dysfunction.
Area of Science:
- Cardiovascular Biology
- Inflammation Research
- Endothelial Cell Biology
Background:
- Oxidative stress and elevated free fatty acids contribute to inflammation and vascular endothelial dysfunction.
- The NLRP3 inflammasome plays a role in endothelial dysfunction under stress conditions.
Purpose of the Study:
- To investigate the protective effects of NLRP3 inflammasome inhibitors INF150 and INF195 against oxidative and lipotoxic stress in Human Coronary Artery Endothelial Cells (HCAECs).
- To assess the impact of these inhibitors on endothelial cell viability, angiogenesis, and pyroptosis.
Main Methods:
- HCAECs were exposed to hydrogen peroxide (H₂O₂) or palmitic acid (PA) after pre-treatment with INF150 or INF195.
- Cell viability (MTT assay), in vitro angiogenesis (pseudo-capillary formation), and pyroptosis markers (caspase-1, IL-1β, LDH release, gasdermin D cleavage) were measured.
- Protective effects were also evaluated in HCAECs primed with TNF-α and challenged with PA.
Main Results:
- Both inhibitors preserved cell viability under oxidative stress, with INF195 showing superior efficacy.
- INF195 significantly protected HCAECs from PA and TNF-α + PA-induced injury, reducing caspase-1 expression and pyroptosis.
- INF195 counteracted the impairment of in vitro angiogenesis caused by H₂O₂ and PA in HCAECs and HUVECs.
Conclusions:
- NLRP3 inflammasome inhibition, particularly with INF195, can maintain vascular endothelial homeostasis under oxidative and lipotoxic stress.
- INF195 preserves endothelial cell viability and angiogenic function, indicating its potential as a therapeutic agent for endothelial dysfunction.