| Literature DB >> 32103235 |
Sarah Starzonek1, Hanna Maar1, Vera Labitzky1, Daniel Wicklein1, Charlotte Rossdam2, Falk F R Buettner2, Gerrit Wolters-Eisfeld3, Cenap Guengoer4, Christoph Wagener5, Udo Schumacher1, Tobias Lange1.
Abstract
EndothelialEntities:
Keywords: adhesion; carbohydrate-binding protein; metastasis; shear stress; tumor cell biology
Year: 2020 PMID: 32103235 PMCID: PMC7443332 DOI: 10.1093/glycob/cwaa019
Source DB: PubMed Journal: Glycobiology ISSN: 0959-6658 Impact factor: 4.313
Fig. 1Human tumor cells categorized for their sialyl-Lewis A and X (sLeA/X) status show divergent static binding vs. dynamic adhesion to human vs. murine E- and P-selectins. sLeA/X expression (A) and static binding of selectins (B) were analyzed by flow cytometry (black curves represent control/isotype conditions). Dynamic adhesion on selectins (C) was tested in laminar flow adhesion experiments as illustrated in the insert. Adhesive events were distinguished into firm adhesion, rolling and tethering. Please note the color code legend above panel (A). Bars in (C) represent mean ± SD of triplicate recordings each from two independent experiments. Black bars represent nonspecific binding to IgG-Fc control. Briefly, sLeA and/or sLeX are apparently required for static E-selectin binding (A and B) and dynamic adhesion on mPSel (C). sLeA/X-negative cells developed loose dynamic adhesions on hESel and firm adhesions on mESel (C) and were able to bind P-selectins under static conditions (B). The only cell lines with notable dynamic adhesions on hPSel (C) were both derived from leukemia patients (EOL-1 and Molm13) and were the only ones that expressed PSGL-1 (Supplementary Figure 1). mESel was commonly more strongly bound than hESel (B [all groups] + C [group III]). This figure is available in black and white in print and in colour at Glycobiology online.
Fig. 2Carbohydrate specificity of human vs. murine E-selectin. Direct E-selectin glycan binding assay of streptavidin-HRP complexed human vs. murine E-selectin on a 96-well plate coated with the annotated glycans. Note the broader carbohydrate binding pattern of murine E-selectin. Bars represent mean ± SEM of two technical replicates. This figure is available in black and white in print and in colour at Glycobiology online.
Fig. 3Role of sialic acid residues for tumor cell–selectin interaction. Effects of enzymatic cleavage of terminal sialic acid residues using neuraminidase (V. cholerae) on sLeA/X expression and static selectin binding are shown in (A and B), respectively. The effects of this treatment on the dynamic adhesion of tumor cells on hESel and mESel (C), hPSel (D) and mPSel (E) varied among the tumor cells. Importantly, note the species-specific differences in the efficacy of neuraminidase on static E-selectin binding (B). Despite abrogated static hESel binding (B), most of the tested cell lines still developed dynamic adhesions on hESel (C). Bars in (A and B) represent mean ± SD of changes of fluorescence intensity relative to controls (represented by the black dotted lines, biological triplicates). Bars in (C–E) represent means ± SD of triplicate recordings each from two independent experiments; *P ≤ 0.05, **P ≤ 0.01 and ***P ≤ 0.001; comparisons were made between treated (+) vs. control (−) cells within the subsets of different adhesive interactions (firm, rolling or tethering adhesion). This figure is available in black and white in print and in colour at Glycobiology online.
Fig. 4Effects of GalNAc-α-O-benzyl treatment on tumor cell–selectin interaction. Expression of sLeA on HT29 and GC5023 as well as sLeX on all sLeX-expressing cells was strongly decreased after treatment with GalNAc-α-O-benzyl (A). Static binding to hESel was reduced by more than 65% for all tested cell lines, while strong effects on mESel binding (>50% reduction) were only observable for HT29 and the two sLeA/X-negative cells lines HOS and SKOV3 (B). P-selectin binding remained unaffected except mPSel binding by HT29 and PaCa5061 cells (B). The strongest effects on dynamic adhesions were seen for sLeA/X-positive cells on hESel and sLeA/X-negative cells on hESel and mESel (C). Effects on adhesion to P-selectins under flow conditions were less striking and differed among the cell lines (D and E). Note the discrepant effects of GalNAc-α-O-benzyl on static vs. dynamic hESel and mESel interaction (sLeX-positive group); in case of mPSel, however, significant reductions of static binding were also visible in the dynamic experiment (HT29 and PaCa5061). See legend to Figure 3 for technical information. This figure is available in black and white in print and in colour at Glycobiology online.
Fig. 5Role of cell surface glycoproteins for tumor cell–selectin interaction. Enzymatic cleavage of cell surface glycoproteins using pronase (S. griseus) decreased sLeA and sLeX by a maximum of 50% only except sLeA on GC5023 (~90% reduction) (A). The consequences of such treatment for static selectin binding are shown in (B). Note the common reduction of static mPSel binding. Dynamic adhesions on E-selectins were only slightly affected (C), while the ability of EOL-1 and Molm13 cells to adhere on hPSel and mPSel was strongly decreased (D and E). In the pronase experiments, we observed less reliable correlation between the treatment effects on static and dynamic mPSel interaction (note the striking effect on static mPSel binding by PaCa5061, GC5023 and DU4475 cells, all of which showed nearly unaltered dynamic adhesion on mPSel). Please see legend to Figure 3 for technical information. This figure is available in black and white in print and in colour at Glycobiology online.
Fig. 6Profiling GSL glycosylation after treatment of tumor cells with GalNAc-α-O-benzyl. Treatment of HT29 and PaCa5061 cells with GalNAc-α-O-benzyl decreased the abundance of the glycan originating from the ganglioside GM3 (at ~32 MTU) in favor of the glycan globotriaose (Gb3) derived from the globo-series GSL Gb3-Cer (at ~79 MTU). *P ≤ 0.05, **P ≤ 0.01 and ***P ≤ 0.001. This figure is available in black and white in print and in colour at Glycobiology online.
Fig. 7Effects of tunicamycin treatment on tumor cell–selectin interaction. Pharmacologic inhibition of N-glycosylation in the ER using tunicamycin only partially reduced sLeA and sLeX expression on the tumor cells; most strikingly, sLeX was reduced by ~ 85% on HT29 cells (A). Static selectin binding of sLeA/X-positive cells was mostly unaffected, while strong effects were seen for EOL-1 cells with reduced binding of hESel, hPSel and mPSel and for sLeA/X-negative cells with abolished mESel binding (B). Effects of tunicamycin treatment on dynamic adhesion on selectins were rather weak (C–E). Significant differences were only seen for Molm13 cells on hESel and mPSel (increase) and DU4475 and SKOV3 on mESel (decrease) (C and E). Please see legend to Figure 3 for technical information. This figure is available in black and white in print and in colour at Glycobiology online.
Fig. 8Effects of swainsonine treatment on tumor cell–selectin interaction. Pharmacologic inhibition of N-glycosylation in the Golgi using swainsonine had largely no effect on sLeA/X expression and static selectin binding except sLeX expression on GC5023 cells (A), static hESel binding by Molm13 cells and static mESel binding by HOS and SKOV3 cells (B). Effects on the dynamic adhesion on selectins varied among the cell lines as shown in (C–E). In particular, adhesions of HT29 cells on hESel and mPSel were decreased (C and E) while adhesions of SKOV3 cells on hESel, of Molm13 cells on mESel (C) and rolling of EOL-1 cells on hPSel were increased (D). Please see legend to Figure 3 for technical information. This figure is available in black and white in print and in colour at Glycobiology online.