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Fini, M. A.

Publications and source records attributed to Fini, M. A..

2 recordsLinked to original sources

Macrophage Xanthine Oxidoreductase Links LPS Induced Lung Inflammatory Injury to NLRP3 Inflammasome Expression and Mitochondrial Respiration

Acute lung injury (ALI) and the acute respiratory distress syndrome (ARDS) remain poorly treated inflammatory lung disorders. Both reactive oxygen species (ROS) and macrophages are involved in the pathogenesis of ALI/ARDS. Xanthine oxidoreductase (XOR) is an ROS generator that plays a central role in the inflammation that contributes to ALI. To elucidate the role of macrophage-specific XOR in endotoxin induced ALI, we developed a conditional myeloid specific XOR knockout in mice. Myeloid specific ablation of XOR in LPS insufflated mice markedly attenuated lung injury demonstrating the essential role of XOR in this response. Macrophages from myeloid specific XOR knockout exhibited loss of inflammatory activation and increased expression of anti-inflammatory genes/proteins. Transcriptional profiling of whole lung tissue of LPS insufflated XORfl/fl//LysM-Cre mice demonstrated an important role for XOR in expression and activation of the NLRP3 inflammasome and acquisition of a glycolytic phenotype by inflammatory macrophages. These results identify XOR as an unexpected link between macrophage redox status, mitochondrial respiration and inflammatory activation.

immunology↗

Aberrant mechanosensitive signaling underlies activation of vascular endothelial xanthine oxidoreductase that promotes aortic aneurysm formation in Marfan syndrome

Marfan syndrome (MFS) is an inherited connective tissue disorder caused by mutations in the FBN1 gene encoding fibrillin-1, a matrix component of extracellular microfibrils. The main cause of morbidity and mortality in MFS is thoracic aortic aneurysm and dissection, but the underlying mechanisms remain undetermined. We found a significant increase in reactive oxygen species (ROS) generation in ascending aorta of MFS patients and MFS mice harboring the Fbn1 mutation (C1039G), which was associated with up-regulation of xanthine oxidoreductase (XOR) protein in aortic endothelial cells (ECs). Mechanosensitive signaling involving focal adhesion kinase (FAK)-p38 mitogen-activated protein kinase (MAPK) and early growth response-1 (Egr- 1) was aberrantly activated in ascending aorta of Fbn1C1039G/+ mice, and mechanical stress on human aortic ECs up-regulated XOR expression through FAK-p38 MAPK activation and Egr-1 up-regulation. Inhibition of XOR function by ECs-specific disruption of Xdh gene or by systemic administration of XOR inhibitor febuxostat in Fbn1C1039G/+ mice suppressed ROS generation, FAK-p38 MAPK activation, and Egr-1 up-regulation, leading to attenuation of aortic aneurysm formation. These findings unveil aberrant mechanosensitive signaling in vascular ECs triggering endothelial XOR activation and ROS generation as a culprit underlying the pathogenesis of aortic aneurysm formation in MFS, and highlight a drug repositioning approach using a uric acid lowering drug febuxostat as a potential therapy for MFS.

pathology↗