Caspase-Driven Microvascular Inflammation and Hypoperfusion in Intravascular Hemolysis: Roles of Leukocyte and Endothelial Activation
Brito, P. L.; Gushiken, L. F. S.; Gotardo, E. M. F.; Figueiredo, V.; Leonardo, F. C.; Costa, F. F.; Conran, N.
Show abstract
Intravascular hemolysis (IVH), a pathological process associated with various conditions, triggers vascular responses; however, the molecular and cellular mechanisms driving this process remain unclear. To explore the role of NLRP3 inflammasome- and caspase-dependent pathways in IVH-induced inflammation, we used in vivo models of acute and chronic IVH, alongside hemestimulation of endothelial cells, thereby isolating this disease mechanism from its etiological causes. Acute IVH induced immediate inflammatory responses in C57BL/6 mice, marked by the release of pro-inflammatory molecules, including IL-1{beta}, within just 15 minutes and NLRP3-dependent caspase activation in circulating leukocytes. Chronic IVH processes in mice elevated liver monocyte-derived macrophage caspase activity and NLRP3 protein expression. In turn, acute IVH impaired cutaneous microvascular blood flow and perfusion, and induced microvascular leukocyte recruitment, which were both caspase-1-dependent. Acute IVH induced time-dependent CD11b-integrin-subunit presentation on leukocytes, while heme stimulation augmented endothelial cell adhesion molecule expression, potentially promoting leukocyte recruitment. This endothelial activation was associated with reactive oxygen species generation, which promoted caspase-1 activation and was key to adhesion molecule upregulation. Our findings highlight a role for inflammasome-/caspase-dependent pathways in hemolytic inflammation, contributing to microvascular leukocyte recruitment and particularly to cutaneous hypoperfusion, a consequence that could facilitate the progression of skin lesions. Targeting caspase-dependent pathways and their downstream effects in disorders that display IVH may offer therapeutic potential for maintaining endothelial integrity, reducing leukocyte activation, and mitigating ischemic injury. NEW & NOTEWORTHYThis study identifies caspase-1 as a driver of the vascular inflammation and hypoperfusion induced by intravascular hemolysis (IVH). Using in vivo models and heme-stimulated endothelial cells, we show that hemolysis rapidly induces caspase-1-dependent endothelial-leukocyte recruitment, microvascular dysfunction, and also IL-1{beta} release. Oxidative stress promotes heme-induced endothelial caspase-1 activation and adhesion molecule expression, potentially amplifying vascular dysfunction. These findings provide insight into IVH-driven pathology in hemolytic disorders, including sickle cell disease.
Matching journals
The top 10 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Myeloid Drp1 Deficiency Limits Revascularization in Ischemic Muscles via Inflammatory Macrophage Polarization and Metabolic Reprograming 95%
- Endothelial SOCS3 maintains homeostasis and promotes survival in endotoxemic mice 95%
- Essential Role of Protein Kinase R in the Pathogenesis of Pulmonary Veno-occlusive Disease 94%
Similar papers in this journal
- Hypothermia protects against ventilator-induced lung injury by limiting IL-1β release and NETs formation 94%
- Overriding defective FPR chemotaxis signaling in diabetic neutrophil stimulates infection control in diabetic wound 94%
- Neutrophil-mediated Oxidative Stress and Albumin Structural Damage Predict COVID-19-associated Mortality 94%
Similar papers in this journal
Similar papers in this journal
- Extratubular polymerized uromodulin induces leukocyte recruitment and inflammation in vivo 95%
- Neutrophils contribute to ER stress in lung epithelial cells in the pristane-induced diffuse alveolar hemorrhage mouse model 94%
- Activation of bone marrow adaptive immunity in type 2 diabetes: rescue by co-stimulation modulator Abatacept 94%
Similar papers in this journal
- Coagulopathy signature precedes and predicts severity of end-organ heat stroke pathology in a mouse model 93%
- Endothelial JAK2V617F mutation leads to thrombosis, vasculopathy, and cardiomyopathy in a murine model of myeloproliferative neoplasm 92%
- Novel rapid high-throughput method of NETosis Induction and Inhibition with physiological triggers and inhibitors 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.