Novel Monocyte Biomarkers of Atherogenic Conditions
CURRENT PHARMACEUTICAL DESIGN
Authors: Gratchev, Alexei; Ovsiy, Ilja; Manousaridis, Ioannis; Riabov, Vladimir; Orekhov, Alexander; Kzhyshkowska, Julia
Abstract
Hidden low grade inflammation underlines various cardio-metabolic diseases. This type of inflammation is triggered by abnormal reaction to unwanted self products or deregulation of cellular response to cytokines. In the case of atherosclerosis hidden inflammation is induced by modified lipoproteins and develops under control of different cytokines including IL-4 and TGF beta. The key innate immune cells reacting on these factors are monocytes and macrophages. It is well established that monocytes represent a heterogeneous cell population that easily reacts to pathologic changes in the organism. The best studied marker which expression on monocytes is changed in inflammatory conditions is CD16. Although this marker was shown to be associated with various pathologic conditions its specificity is highly questionable. There is an urgent need of identification of new monocyte-expressed biomarkers that may help not only to detect hidden inflammation but also to determine its type. Our analysis of type 2 activation of human monocytes resulted in identification of 3 novel biomarkers for hidden type 2 inflammation. These include stabilin-1, FOXQ1 and IL17RB. These markers are expressed by monocytes/macrophages under stimulation with IL-4 or its combination with TGF beta - 2 cytokines playing important role in atherogenesis. Stabilin-1 was demonstrated on the monocytes in patients with hyperholisterolemia and in macrophages within atherosclerotic lesions. Association of FoxQ1 and IL17RB with atherosclerosis can be deduced from published data but requires experimental confirmation. Functions of all three proteins suggest that they are not only diagnostic markers, but also involved in atherogenesis and can be used as targets for novel therapeutic approaches.
Allergen challenge of peripheral blood mononuclear cells from patients with seasonal allergic rhinitis increases IL-17RB, which regulates basophil apoptosis and degranulation
CLINICAL AND EXPERIMENTAL ALLERGY
Authors: Wang, H.; Mobini, R.; Fang, Y.; Barrenas, F.; Zhang, H.; Xiang, Z.; Benson, M.
Abstract
P>Background Previously, expression profiling has been used to analyse allergen-challenged T-helper type 2 cells, nasal biopsies and nasal fluid cells from patients with seasonal allergic rhinitis (SAR). Allergen-challenged peripheral blood mononuclear cells (PBMCs) provide a human in vitro model of how antigen-presenting cells, CD4+ T cells and effector cells such as basophils interact in allergic inflammation. Objective To identify novel genes and pathways in allergen-challenged PBMCs from patients with SAR using gene expression profiling and functional studies. Methods PBMCs from 11 patients with SAR and 23 healthy controls were analysed with gene expression profiling. mRNA expression of IL17RB in basophils was evaluated using quantitative real-time PCR. Membrane protein expression and apoptosis of basophils were examined by flow cytometry. Degranulation of basophils was assessed by measuring beta-hexosaminidase release. Cytokine release was measured using ELISA. Results Gene expression microarray analysis of allergen-challenged PBMCs showed that 209 out of 44 000 genes were differentially expressed in patients compared with controls. IL17RB was the gene whose expression increased most in patients (P < 0.0001). FACS analysis of PBMCs showed, for the first time, that basophils express IL-17RB. Following allergen challenge, IL-17RB protein increased significantly on basophils from patients compared with controls (P < 0.05). IL-3 significantly increased both mRNA and protein expressions of IL17RB. Activation of IL-17RB by its ligand, IL-25, inhibited apoptosis of basophils. Moreover, IgE-mediated degranulation was enhanced by IL-25. Conclusion Increased expression of IL-17RB on allergen-challenged basophil is regulated by IL-3, inhibits apoptosis and promotes IgE-mediated degranulation of basophils. Cite this as: H. Wang, R. Mobini, Y. Fang, F. Barrenas, H. Zhang, Z. Xiang and M. Benson, Clinical & Experimental Allergy, 2010 (40) 1194-1202.