Early expression of FcgammaRI (CD64) on monocytes of cardiac surgical patients and higher density of monocyte anti-inflammatory scavenger CD163 receptor in "on-pump" patients

Martina Kolackova, Manuela Kudlova, Pavel Kunes, Vladimir Lonsky, Jiri Mandak, Ctirad Andrys, Karolina Jankovicova, Jan Krejsek, Martina Kolackova, Manuela Kudlova, Pavel Kunes, Vladimir Lonsky, Jiri Mandak, Ctirad Andrys, Karolina Jankovicova, Jan Krejsek

Abstract

Objective: Activation of innate immunity cells is inseparably linked to cardiac surgical operation. The aim of this study was to assess the kinetics in the expression of receptor for Fc part of IgG, FcgammaRI (CD64), and scavenger receptor CD163 on peripheral blood cells of cardiac surgical patients and to examine the effect of cardiac bypass as a separable influence on the systemic acute inflammatory response.

Methods: Forty patients, twenty in each group, were randomly assigned to CABG surgery performed either with "on-pump" or without "off-pump" cardiopulmonary bypass. Standardized quantitative flow cytometry method was used to determine the expression of surface markers.

Results: The density of CD64 molecule on monocytes reached maximum on the 1st postoperative day (P<.001) whereas the peak for CD64 molecule expression on granulocytes was postponed to the 3rd postoperative day (P<.001). The expression of CD163 scavenger molecule on monocytes reached maximum on the 1st postoperative day (P<.001). The density of CD163 molecule on monocytes on the 1st postoperative day is significantly higher in "on-pump" patients in comparison with "off-pump" patients (P<.001).

Conclusion: In cardiac surgical patients the expression of activation marker FcgammaR1 (CD64) on monocytes is increased earlier in comparison with granulocytes in both "on-pump" and "off-pump" patients. The expression of scavenger molecule CD163 on monocytes is significantly higher in "on-pump" patients.

Figures

Figure 1
Figure 1
CD64 molecule expression on monocytes in “on-pump” and “off-pump” patients.
Figure 2
Figure 2
CD163 molecule expression on monocytes in “on-pump” and “off-pump” patients.
Figure 3
Figure 3
CD64 molecule expression on granulocytes in “on-pump” and “off-pump” patients.

References

    1. Ascione R, Lloyd CT, Underwood MJ, Lotto AA, Pitsis AA, Angelini GD. Inflammatory response after coronary revascularization with or without cardiopulmonary bypass. The Annals of Thoracic Surgery. 2000;69(4):1198–1204.
    1. Steeber DA, Venturi GM, Tedder TF. A new twist to the leukocyte adhesion cascade: intimate cooperation is key. Trends in Immunology. 2005;26(1):9–12.
    1. Bakke AC, Allen E, Purtzer MZ, Deodhar A. Neutrophil CD64 expression distinguishing acute inflammatory autoimmune disease from systemic infections. Clinical and Applied Immunology Reviews. 2001;1(5):267–275.
    1. Elghetany MT, Davis BH. Impact of preanalytical variables on granulocytic surface antigen expression: a review. Cytometry Part B: Clinical Cytometry. 2005;65(1):1–5.
    1. Qureshi SS, Lewis SM, Gant VA, Treacher D, Davis BH, Brown KA. Increased distribution and expression of CD64 on blood polymorphonuclear cells from patients with the systemic inflammatory response syndrome (SIRS) Clinical & Experimental Immunology. 2001;125(2):258–265.
    1. Greaves DR, Gordon S. Recent insights into the biology of macrophage scavenger receptors. Journal of Lipid Research. 2005;46(1):11–20.
    1. Xu W, Schlagwein N, Roos A, van den Berg TK, Daha MR, van Kooten C. Human peritoneal macrophages show functional characteristics of M-CSF-driven anti-inflammatory type 2 macrophages. European Journal of Immunology. 2007;37(6):1594–1599.
    1. Kunes P, Lonsky V, Mandak J, et al. The long pentraxin 3 in cardiac surgery: distinct responses in “on-pump” and “off-pump” patients. Scandinavian Cardiovascular Journal. 2007;41(3):171–179.
    1. Paparella D, Yau TM, Young E. Cardiopulmonary bypass induced inflammation: pathophysiology and treatment. An update. European Journal of Cardio-Thoracic Surgery. 2002;21(2):232–244.
    1. Rossi M, Sganga G, Mazzone M, et al. Cardiopulmonary bypass in man: role of the intestine in a self-limiting inflammatory response with demonstrable bacterial translocation. The Annals of Thoracic Surgery. 2004;77(2):612–618.
    1. Hiesmayr MJ, Spittler A, Lassnigg A, et al. Alterations in the number of circulating leucocytes, phenotype of monocyte and cytokine production in patients undergoing cardiothoracic surgery. Clinical & Experimental Immunology. 1999;115(2):315–323.
    1. Fjaertoft G, Hakansson L, Foucard T, Ewald U, Venge P. CD64 (Fcγ receptor I) cell surface expression on maturing neutrophils from preterm and term newborn infants. Acta Paediatrica. 2005;94(3):295–302.
    1. Stefanou DC, Asimakopoulos G, Yagnik DR, et al. Monocyte Fc gamma receptor expression in patients undergoing coronary artery bypass grafting. The Annals of Thoracic Surgery. 2004;77(3):951–955.
    1. Devaraj S, Du Clos TW, Jialal I. Binding and internalization of C-reactive protein by Fcgamma receptors on human aortic endothelial cells mediates biological effects. Arteriosclerosis, Thrombosis, and Vascular Biology. 2005;25(7):1359–1363.
    1. Schneider CP, Schwacha MG, Chaudry IH. The role of interleukin-10 in the regulation of the systemic inflammatory response following trauma-hemorrhage. Biochimica et Biophysica Acta (BBA)—Molecular Basis of Disease. 2004;1689(1):22–32.
    1. Zuwała-Jagiełło J. Haemoglobin scavenger receptor: function in relation to disease. Acta Biochimica Polonica. 2006;53(2):257–268.
    1. Wagener FADTG, Volk H-D, Willis D, et al. Different faces of the heme-heme oxygenase system in inflammation. Pharmacological Reviews. 2003;55(3):551–571.
    1. Goldstein JI, Goldstein KA, Wardwell K, et al. Increase in plasma and surface CD163 levels in patients undergoing coronary artery bypass graft surgery. Atherosclerosis. 2003;170(2):325–332.
    1. Philippidis P, Mason JC, Evans BJ, et al. Hemoglobin scavenger receptor CD163 mediates interleukin-10 release and heme oxygenase-1 synthesis: antiinflammatory monocyte-macrophage responses in vitro, in resolving skin blisters in vivo, and after cardiopulmonary bypass surgery. Circulation Research. 2004;94(1):119–126.
    1. Sulahian TH, Pioli PA, Wardwell K, Guyre PM. Cross-linking of FcγR triggers shedding of the hemoglobin-haptoglobin scavenger receptor CD163. Journal of Leukocyte Biology. 2004;76:271–277.
    1. Hintz KA, Rassias AJ, Wardwell K, et al. Endotoxin induces rapid metalloproteinase-mediated shedding followed by up-regulation of the monocyte hemoglobin scavenger receptor CD163. Journal of Leukocyte Biology. 2002;72(4):711–717.
    1. Weaver LK, Hintz-Goldstein KA, Pioli PA, et al. Pivotal advance: activation of cell surface Toll-like receptors causes shedding of the hemoglobin scavenger receptor CD163. Journal of Leukocyte Biology. 2006;80(1):26–35.
    1. Davis BH, Olsen SH, Ahmad E, Bigelow NC. Neutrophil CD64 is an improved indicator of infection or sepsis in emergency department patients. Archives of Pathology and Laboratory Medicine. 2006;130(5):654–661.

Source: PubMed

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