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A High-Throughput Glycosyltransferase Inhibition Assay for Identifying Molecules Targeting Fucosylation in Cancer
Xiaohua Zhang, Fei Chen, Alessandro Petrella
1Department of Chemistry and Biochemistry , National Chung-Cheng University , 168 University Road , Min-Hsiung , Chiayi 62102 , Taiwan.
Abstract:
In cancers, increased fucosylation (attachment of fucose sugar residues) on cell-surface glycans, resulting from the abnormal upregulation of the expression of specific fucosyltransferase enzymes (FUTs), is one of the most important types of glycan modifications associated with malignancy. Fucosylated glycans on cell surfaces are involved in a multitude of cellular interactions and signal regulation in normal biological processes, as well as in disease. For example, sialyl LewisX is a fucosylated cell-surface glycan that is abnormally abundant in some cancers where it has been implicated in facilitating metastasis, allowing circulating tumor cells to bind to the epithelial tissue within blood vessels and invade into secondary sites by taking advantage of glycan-mediated interactions. To identify inhibitors of FUT enzymes as potential cancer therapeutics, we have developed a novel high-throughput assay that makes use of a fluorogenically labeled oligosaccharide as a probe of fucosylation. This probe, which consists of a 4-methylumbelliferyl glycoside, is recognized and hydrolyzed by specific glycoside hydrolase enzymes to release fluorescent 4-methylumbelliferone, yet when the probe is fucosylated prior to treatment with the glycoside hydrolases, hydrolysis does not occur and no fluorescent signal is produced. We have demonstrated that this assay can be used to measure the inhibition of FUT enzymes by small molecules, because blocking fucosylation will allow glycosidase-catalyzed hydrolysis of the labeled oligosaccharide to produce a fluorescent signal. Employing this assay, we have screened a focused library of small molecules for inhibitors of a human FUT enzyme involved in the synthesis of sialyl LewisX and demonstrated that our approach can be used to identify potent FUT inhibitors from compound libraries in microtiter plate format.
Insights
Researchers developed a novel assay to find inhibitors of fucosyltransferase enzymes (FUTs) crucial in cancer metastasis. This high-throughput method screens small molecules, identifying potential therapeutics by detecting changes in fucosylation levels.
Area of Science:
- Biochemistry
- Glycobiology
- Cancer Biology
Background:
- Increased fucosylation of cell-surface glycans, driven by fucosyltransferase enzymes (FUTs), is a hallmark of cancer malignancy.
- Fucosylated glycans, like sialyl Lewis X, promote cancer metastasis by mediating cell adhesion and invasion.
- Targeting FUT enzymes is a promising strategy for developing novel cancer therapeutics.
Purpose of the Study:
- To develop a novel high-throughput assay for identifying inhibitors of fucosyltransferase (FUT) enzymes.
- To screen for small molecules that inhibit FUT enzymes involved in cancer-associated glycan synthesis.
- To validate the assay's utility in discovering potent FUT inhibitors for potential cancer therapeutics.
Main Methods:
- Development of a high-throughput assay using a fluorogenically labeled oligosaccharide probe.
- The assay measures fucosylation by detecting the release of a fluorescent signal upon glycosidase hydrolysis.
- Inhibition of FUT enzymes prevents probe fucosylation, allowing signal generation, thus quantifying inhibitor efficacy.
Main Results:
- The assay successfully measures the inhibition of FUT enzymes by small molecules.
- Screening a focused library identified potent inhibitors of a human FUT enzyme involved in sialyl Lewis X synthesis.
- The assay demonstrated its capability to identify FUT inhibitors from compound libraries in a microtiter plate format.
Conclusions:
- A novel, high-throughput assay for FUT enzyme inhibition has been successfully developed and validated.
- This assay provides a robust platform for discovering novel FUT inhibitors as potential anti-cancer therapeutics.
- The findings support the development of glycan-targeted cancer therapies by identifying key enzyme inhibitors.
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