1
|
Using CRISPR-Cas9 to quantify the contributions of O-glycans, N-glycans and Glycosphingolipids to human leukocyte-endothelium adhesion. Sci Rep 2016; 6:30392. [PMID: 27458028 PMCID: PMC4960646 DOI: 10.1038/srep30392] [Citation(s) in RCA: 40] [Impact Index Per Article: 5.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/20/2016] [Accepted: 06/30/2016] [Indexed: 01/20/2023] Open
Abstract
There is often interest in dissecting the relative contributions of the N-glycans, O-glycans and glycosphingolipids (GSLs) in regulating complex biological traits like cell signaling, adhesion, development and metastasis. To address this, we developed a CRISPR-Cas9 toolkit to selectively truncate each of these commonly expressed glycan-types. Here, O-glycan biosynthesis was truncated by knocking-out Core 1 β3Gal-T Specific Molecular Chaperone (COSMC), N-glycans by targeting the β1,2 GlcNAc-transferase (MGAT1) and GSLs by deleting UDP-glucose ceramide glucosyltransferase (UGCG). These reagents were applied to reveal the glycoconjugates regulating human myeloid cell adhesion to selectins under physiological shear-flow observed during inflammation. These functional studies show that leukocyte rolling on P- and L-selectin is ablated in cells lacking O-glycans, with N-glycan truncation also increasing cell rolling velocity on L-selectin. All three glycan families contributed to E-selectin dependent cell adhesion with N-glycans contributing to all aspects of the leukocyte adhesion cascade, O-glycans only being important during initial recruitment, and GSLs stabilizing slow cell rolling and the transition to firm arrest. Overall, the genome editing tools developed here may be broadly applied in studies of cellular glycosylation.
Collapse
|
2
|
Mondal N, Stolfa G, Antonopoulos A, Zhu Y, Wang SS, Buffone A, Atilla-Gokcumen GE, Haslam SM, Dell A, Neelamegham S. Glycosphingolipids on Human Myeloid Cells Stabilize E-Selectin-Dependent Rolling in the Multistep Leukocyte Adhesion Cascade. Arterioscler Thromb Vasc Biol 2016; 36:718-27. [PMID: 26868209 DOI: 10.1161/atvbaha.115.306748] [Citation(s) in RCA: 27] [Impact Index Per Article: 3.4] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/21/2015] [Accepted: 02/01/2016] [Indexed: 11/16/2022]
Abstract
OBJECTIVE Recent studies suggest that the E-selectin ligands expressed on human leukocytes may differ from those in other species, particularly mice. To elaborate on this, we evaluated the impact of glycosphingolipids expressed on human myeloid cells in regulating E-selectin-mediated cell adhesion. APPROACH AND RESULTS A series of modified human cell lines and primary neutrophils were created by targeting UDP-Glucose Ceramide Glucosyltransferase using either lentivirus-delivered shRNA or CRISPR-Cas9-based genome editing. Enzymology and mass spectrometry confirm that the modified cells had reduced or abolished glucosylceramide biosynthesis. Glycomics profiling showed that UDP-Glucose Ceramide Glucosyltransferase disruption also increased prevalence of bisecting N-glycans and reduced overall sialoglycan expression on leukocyte N- and O-glycans. Microfluidics-based flow chamber studies demonstrated that both the UDP-Glucose Ceramide Glucosyltransferase knockouts and knockdowns display ≈60% reduction in leukocyte rolling and firm adhesion on E-selectin bearing stimulated endothelial cells, without altering cell adhesion to P-selectin. Consistent with the concept that the glycosphingolipids support slow rolling and the transition to firm arrest, inhibiting UDP-Glucose Ceramide Glucosyltransferase activity resulted in frequent leukocyte detachment events, skipping motion, and reduced diapedesis across the endothelium. Cells bearing truncated O- and N-glycans also sustained cell rolling on E-selectin, although their ability to be recruited from free fluid flow was diminished. CONCLUSIONS Glycosphingolipids likely contribute to human myeloid cell adhesion to E-selectin under fluid shear, particularly the transition of rolling cells to firm arrest.
Collapse
Affiliation(s)
- Nandini Mondal
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Gino Stolfa
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Aristotelis Antonopoulos
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Yuqi Zhu
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Shuen-Shiuan Wang
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Alexander Buffone
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - G Ekin Atilla-Gokcumen
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Stuart M Haslam
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Anne Dell
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.)
| | - Sriram Neelamegham
- From the Department of Chemical and Biological Engineering (N.M., G.S., Y.Z., S.-S.W., A.B., S.N.), Department of Chemistry (G.E.A.-G.), and The NY State Center for Excellence in Bioinformatics and Life Sciences (S.N.), State University of New York, Buffalo; and Department of Life Sciences, Imperial College London, London, UK (A.A., S.M.H., A.D.).
| |
Collapse
|