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Nemade, H.

Publications and source records attributed to Nemade, H..

2 recordsLinked to original sources

Olfactory receptor 2 drives abdominal aortic aneurysm by promoting CX3CR1-mediated monocyte recruitment

BackgroundAbdominal aortic aneurysms (AAA) are characterized by an intricate interplay of extracellular matrix degradation and inflammation. Macrophages are centrally involved in these processes. The mechanisms underlying macrophage activation in AAA remain incompletely understood. Vascular macrophages have been shown to express olfactory receptor 2 (Olfr2), a G-protein coupled receptor involved in mediating the sense of smelling and regulating inflammatory activity in macrophages. Whether Olfr2 plays a role in modulating macrophage responses in AAA formation remains unknown. Methods & ResultsIn silico micro-array analysis showed increased expression of the human Olfr2 orthologue OR6A2 in AAA tissue compared to healthy aorta. Flow cytometric analysis revealed increased expression of OR6A2 on classical, non-classical, and intermediate monocytes of patients with a large AAA (> 5cm) in comparison to patients with smaller AAA (< 5cm). Up to 30% of vascular macrophages expressed OR6A2 in human AAA and Olfr2 in mouse AAA tissue. Olfr2 expression peaked on major histocompatibility complex II-high (MHCIIhigh) and C-C chemokine receptor type 2-low (CCR2low) aortic monocytes and macrophages on day 7 following experimental AAA initiation and decreased to baseline expression on day 28. Olfr2 gene (Olfr2-/-) deficiency protected mice from AAA formation, which was accompanied by lowered ECM degradation, reduced macrophage infiltration and increased smooth muscle cell content. Conversely, treatment with the Olfr2 agonist octanal exacerbated AAA formation and inflammation, while the antagonist citral reduced AAA formation in comparison to vehicle treated mice. Bulk transcriptome analysis of aortic tissue revealed reduced inflammatory gene expression in Olfr2-/- mice at day 7 following AAA initiation. Spectral flow cytometry resolved 20 aortic immune cell populations, which were largely reduced in quantity by Olfr2-deficiency at day 7 and day 28 post experimental AAA formation, while circulating leukocyte counts and monocyte subset distribution were not altered between Olfr2+/+ and Olfr2-/- mice. Circulating Ly6Chigh-monocytes exhibited reduced expression of the CX3C motif chemokine receptor 1 (CX3CR1) and CCR2 during AAA formation. Transcriptional analysis of monocytes confirmed downregulation of pathways associated with cell adhesion, motility and migration. In vitro, Olfr2-/- monocytes showed impaired migration towards the CX3CR1 ligand CX3CL1. Competitive transfer of Olfr2+/+ and Olfr2-/- monocytes confirmed reduced migratory capacity of Olfr2-/- monocytes into the developing AAA. ConclusionWe demonstrate a critical relevance for Olfr2 in the modulation of the inflammatory response underlying AAA, which is mediated by enhanced monocyte recruitment.

immunology↗

Remodelling of the endothelial cell transcriptional program via paracrine and DNA-binding activities of MPO

Myeloperoxidase (MPO) is an enzyme that functions in host defence by catalysing the formation of reactive oxygen intermediates. Synthesized majorly by myeloid progenitor cell types and neutrophils, MPO is released into the vascular lumen during inflammation, where it may adhere and subsequently enter endothelial cells coating vascular walls. Here, we show that MPO actually enters the nucleus of these endothelial cells and binds chromatin independently of its enzymatic activity to cause changes in chromatin structure. At its binding sites, MPO drives chromatin decondensation, while enhancing condensation at flanking regions. We further show that MPO binds loci relevant for the activation of the endothelial-to- mesenchymal transition (EndMT) and the migratory potential of ECs. Finally, MPO interacts with the RNA- binding factor ILF3 affecting its relative abundance between cytoplasm and nucleus. This leads to ILF3:MPO- driven transcriptional and post-transcriptional regulation. Accordingly, MPO-knockout mice show reduced EC numbers at scars formed after myocardial infarction, indicating reduced neovascularization. In summary, we describe a non-enzymatic role for MPO in coordinating EndMT and controlling the fate of endothelial cells through direct chromatin binding and association with such co-factors as ILF3.

genomics↗