Monocyte Subsets Save Distinct Patterns of Tetraspanin Expression and Different Capacities to Form Multinucleate Giant Cells
FRONTIERS IN IMMUNOLOGY
Authors: Champion, Thomas C.; Partridge, Lynda J.; Ong, Siew-Min; Malleret, Benoit; Wong, Siew-Cheng; Monk, Peter N.
Abstract
Monocytes are able to undergo homotypic fusion to produce different types of multinucleated giant cells, such as Langhans giant cells in response to M. tuberculosis infection or foreign body giant cells in response to implanted biomaterials. Monocyte fusion is highly coordinated and complex, with various soluble, intracellular, and cell-surface components mediating different stages of the process. Tetraspanins, such as CD9, CD63, and CD81, are known to be involved in cell: cell fusion and have been suggested to play a role in regulating homotypic monocyte fusion. However, peripheral human monocytes are not homogenous: they exist as a heterogeneous population consisting of three subsets, classical (CD14(++)CD16(-)), intermediate (CD14(++)CD16(+)), and non-classical (CD14(+)CD16(+)), at steady state. During infection with mycobacteria, the circulating populations of intermediate and non-classical monocytes increase, suggesting they may play a role in the disease outcome. Human monocytes were separated into subsets and then induced to fuse using concanavalin A. The intermediate monocytes were able to fuse faster and form significantly larger giant cells than the other subsets. When antibodies targeting tetraspanins were added, the intermediate monocytes responded to anti-CD63 by forming smaller giant cells, suggesting an involvement of tetraspanins in fusion for at least this subset. However, the expression of fusion-associated tetraspanins on monocyte subsets did not correlate with the extent of fusion or with the inhibition by tetraspanin antibody. We also identified a CD9(High) and a CD9(Low) monocyte population within the classical subset. The CD9(High) classical monocytes expressed higher levels of tetraspanin CD151 compared to CD9(Low) classical monocytes but the CD9(High) classical subset did not exhibit greater potential to fuse and the role of these cells in immunity remains unknown. With the exception of dendrocyte-expressed seven transmembrane protein, which was expressed at higher levels on the intermediate monocyte subset, the expression of fusion-related proteins between the subsets did not clearly correlate with their ability to fuse. We also did not observe any clear correlation between giant cell formation and the expression of pro-inflammatory or fusogenic cytokines. Although tetraspanin expression appears to be important for the fusion of intermediate monocytes, the control of multinucleate giant cell formation remains obscure.
Reporter mice for isolating and auditing cell type-specific extracellular vesicles in vivo
GENESIS
Authors: McCann, James, V; Bischoff, Steven R.; Zhang, Yu; Cowley, Dale O.; Sanchez-Gonzalez, Veronica; Daaboul, George D.; Dudley, Andrew C.
Abstract
Extracellular vesicles (EVs) are abundant, lipid-enclosed vectors that contain nucleic acids and proteins, they can be secreted from donor cells and freely circulate, and they can be engulfed by recipient cells thus enabling systemic communication between heterotypic cell types. However, genetic tools for labeling, isolating, and auditing cell type-specific EVs in vivo, without prior in vitro manipulation, are lacking. We have used CRISPR-Cas9-mediated genome editing to generate mice bearing a CD63-emGFP(loxP/stop/loxP)knock-in cassette that enables the specific labeling of circulating CD63(+)vesicles from any cell type when crossed with lineage-specificCrerecombinase driver mice. As proof-of-principle, we have crossed these mice with Cdh5-Cre(ERT2)mice to generate CD63(emGFP+)vasculature. Using these mice, we show that developing vasculature is marked with emerald GFP (emGFP) following tamoxifen administration to pregnant females. In adult mice, quiescent vasculature and angiogenic vasculature (in tumors) is also marked with emGFP. Moreover, whole plasma-purified EVs contain a subpopulation of emGFP(+)vesicles that are derived from the endothelium, co-express additional EV (e.g., CD9 and CD81) and endothelial cell (e.g., CD105) markers, and they harbor specific miRNAs (e.g., miR-126, miR-30c, and miR-125b). This new mouse strain should be a useful genetic tool for generating cell type-specific, CD63(+)EVs that freely circulate in serum and can subsequently be isolated and characterized using standard methodologies.