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Updated: Jul 2, 2026

Metabolic Glycoengineering of Sialic Acid Using N-acyl-modified Mannosamines
Published on: November 25, 2017
Inhibition of the sodium/potassium ATPase impairs N-glycan expression and function
Reza Beheshti Zavareh1, Ken S Lau, Rose Hurren
1Ontario Cancer Institute, Princess Margaret Hospital, Canada.
Abstract:
Aberrant N-linked glycans promote the malignant potential of cells by enhancing the epithelial-to-mesenchymal transition and the invasive phenotype. To identify small molecule inhibitors of N-glycan biosynthesis, we developed a chemical screen based on the ability of the tetravalent plant lectin L-phytohemagglutinin (L-PHA) to bind and crosslink surface glycoproteins with beta1,6GlcNAc-branched complex type N-glycans and thereby induce agglutination and cell death. In this screen, Jurkat cells were treated with a library of off-patent chemicals (n = 1,280) to identify molecules that blocked L-PHA-induced death. The most potent hit from this screen was the cardiac glycoside (CG) dihydroouabain. In secondary assays, a panel of CGs was tested for their effects on L-PHA-induced agglutination and cell death. All of the CGs tested inhibited L-PHA-induced death in Jurkat cells, and the most potent CG tested was digoxin with an EC(50) of 60 +/- 20 nmol/L. Digoxin also increased the fraction of some concanavalin A-binding N-glycans. Using matrix-assisted laser desorption/ionization time-of-flight mass spectrometry, digoxin specifically increased GlcNAc(1)Man(3)GlcNAc(2)Fuc(1) and GlcNAc(2)Man(3)GlcNAc(2)Fuc(1) oligosaccharides demonstrating an impairment of the N-glycan pathway. Consistent with this effect on the N-glycan pathway, digoxin inhibited N-glycosylation-mediated processes of tumor cell migration and invasion. Furthermore, digoxin prevented distant tumor formation in two mouse models of metastatic prostate cancer. Thus, taken together, our high throughput screen identified CGs as modifiers of the N-glycan pathway. These molecules can be used as tools to better understand the role of N-glycans in normal and malignant cells. Moreover, these results may partly explain the anticancer effect of CGs in cardiovascular patients.
Insights
Cardiac glycosides, like digoxin, inhibit N-glycan biosynthesis, reducing cancer cell invasion and metastasis. This study identifies cardiac glycosides as potential therapeutic agents for cancer by targeting aberrant N-glycans.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Aberrant N-linked glycans contribute to cancer malignancy by promoting epithelial-to-mesenchymal transition and invasion.
- Small molecule inhibitors of N-glycan biosynthesis are needed to target cancer progression.
Purpose of the Study:
- To identify small molecule inhibitors of N-glycan biosynthesis using a high-throughput chemical screen.
- To investigate the effects of cardiac glycosides on N-glycan pathways and cancer cell behavior.
Main Methods:
- A chemical screen using Jurkat cells and L-phytohemagglutinin (L-PHA) lectin to identify inhibitors of L-PHA-induced cell death.
- Secondary assays to test cardiac glycosides for inhibition of L-PHA-induced agglutination and cell death.
- Matrix-assisted laser desorption/ionization time-of-flight mass spectrometry to analyze N-glycan structures.
- In vivo studies using mouse models of metastatic prostate cancer.
Main Results:
- Cardiac glycosides, particularly dihydroouabain and digoxin, were identified as potent inhibitors of L-PHA-induced cell death.
- Digoxin inhibited N-glycan biosynthesis, specifically increasing certain oligosaccharides, indicating an impairment of the N-glycan pathway.
- Digoxin suppressed N-glycosylation-dependent tumor cell migration and invasion.
- Digoxin significantly reduced distant tumor formation in mouse models of prostate cancer.
Conclusions:
- Cardiac glycosides modify the N-glycan pathway and possess anticancer properties.
- These findings highlight the potential of cardiac glycosides as therapeutic agents for metastatic cancers.
- Cardiac glycosides can serve as valuable tools for studying the role of N-glycans in normal and malignant cells.
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