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Granulocyte-Derived Extracellular Vesicles Activate Monocytes and Are Associated With Mortality in Intensive Care Unit Patients

Abstract

To understand how extracellular vesicle (EV) subtypes differentially activate monocytes, a series of studies were performed. We found that plasma-EVs biased monocytes toward an M1 profile. Culturing monocytes with granulocyte-, monocyte-, and endothelial-EVs induced several pro-inflammatory cytokines. By contrast, platelet-EVs induced TGF-β and GM-CSF, and red blood cell (RBC)-EVs did not activate monocytes . The scavenger receptor CD36 was important for binding of RBC-EVs to monocytes, while blockade of CD36, CD163, CD206, TLR1, TLR2, and TLR4 did not affect binding of plasma-EVs to monocytes . To identify mortality risk factors, multiple soluble factors and EV subtypes were measured in patients' plasma at intensive care unit admission. Of 43 coagulation factors and cytokines measured, two were significantly associated with mortality, tissue plasminogen activator and cystatin C. Of 14 cellular markers quantified on EVs, 4 were early predictors of mortality, including the granulocyte marker CD66b. In conclusion, granulocyte-EVs have potent pro-inflammatory effects on monocytes . Furthermore, correlation of early granulocyte-EV levels with mortality in critically ill patients provides a potential target for intervention in management of the pro-inflammatory cascade associated with critical illness.

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References
1.
Barres C, Blanc L, Bette-Bobillo P, Andre S, Mamoun R, Gabius H . Galectin-5 is bound onto the surface of rat reticulocyte exosomes and modulates vesicle uptake by macrophages. Blood. 2009; 115(3):696-705. DOI: 10.1182/blood-2009-07-231449. View

2.
Graversen J, Madsen M, Moestrup S . CD163: a signal receptor scavenging haptoglobin-hemoglobin complexes from plasma. Int J Biochem Cell Biol. 2002; 34(4):309-14. DOI: 10.1016/s1357-2725(01)00144-3. View

3.
Ohuchi M, Fujino K, Kishimoto T, Yamane T, Hamamoto T, Tabata T . Association of the Plasma Platelet-Derived Microparticles to Platelet Count Ratio with Hospital Mortality and Disseminated Intravascular Coagulopathy in Critically Ill Patients. J Atheroscler Thromb. 2015; 22(8):773-82. DOI: 10.5551/jat.29439. View

4.
Ghosh A, Li W, Febbraio M, Espinola R, McCrae K, Cockrell E . Platelet CD36 mediates interactions with endothelial cell-derived microparticles and contributes to thrombosis in mice. J Clin Invest. 2008; 118(5):1934-43. PMC: 2323190. DOI: 10.1172/JCI34904. View

5.
Vasina E, Cauwenberghs S, Feijge M, Heemskerk J, Weber C, Koenen R . Microparticles from apoptotic platelets promote resident macrophage differentiation. Cell Death Dis. 2011; 2:e211. PMC: 3186911. DOI: 10.1038/cddis.2011.94. View