CRISPR-screen identifies ZIP9 and dysregulated Zn2+ homeostasis as a cause of cancer-associated changes in glycosylation

Author:

Rømer Troels Boldt123,Khoder-Agha Fawzi12,Aasted Mikkel Koed Møller12,de Haan Noortje12ORCID,Horn Sabrina12,Dylander August12,Zhang Tao4,Pallesen Emil Marek Heymans12,Dabelsteen Sally12,Wuhrer Manfred4,Høgsbro Christine Flodgaard12,Thomsen Emil Aagaard5,Mikkelsen Jacob Giehm5,Wandall Hans H12ORCID

Affiliation:

1. Copenhagen Center for Glycomics , Department of Cellular and Molecular Medicine, , Blegdamsvej 3B, 2200 Copenhagen , Denmark

2. University of Copenhagen , Department of Cellular and Molecular Medicine, , Blegdamsvej 3B, 2200 Copenhagen , Denmark

3. Department of Clinical Medicine, University of Copenhagen , Blegdamsvej 3B, 2200 Copenhagen , Denmark

4. Center for Proteomics and Metabolomics, Leiden University Medical Center , Einthovenweg 20, 2333 ZC Leiden , Netherlands

5. Department of Biomedicine, Aarhus University , Høegh-Guldbergs Gade 10, 8000 Aarhus , Denmark

Abstract

Abstract Introduction In epithelial cancers, truncated O-glycans, such as the Thomson-nouveau antigen (Tn) and its sialylated form (STn), are upregulated on the cell surface and associated with poor prognosis and immunological escape. Recent studies have shown that these carbohydrate epitopes facilitate cancer development and can be targeted therapeutically; however, the mechanism underpinning their expression remains unclear. Methods To identify genes directly influencing the expression of cancer-associated O-glycans, we conducted an unbiased, positive-selection, whole-genome CRISPR knockout-screen using monoclonal antibodies against Tn and STn. Results and Conclusions We show that knockout of the Zn2+-transporter SLC39A9 (ZIP9), alongside the well-described targets C1GALT1 (C1GalT1) and its molecular chaperone, C1GALT1C1 (COSMC), results in surface-expression of cancer-associated O-glycans. No other gene perturbations were found to reliably induce O-glycan truncation. We furthermore show that ZIP9 knockout affects N-linked glycosylation, resulting in upregulation of oligo-mannose, hybrid-type, and α2,6-sialylated structures as well as downregulation of tri- and tetra-antennary structures. Finally, we demonstrate that accumulation of Zn2+ in the secretory pathway coincides with cell-surface presentation of truncated O-glycans in cancer tissue, and that over-expression of COSMC mitigates such changes. Collectively, the findings show that dysregulation of ZIP9 and Zn2+ induces cancer-like glycosylation on the cell surface by affecting the glycosylation machinery.

Funder

University of Copenhagen Faculty of Health and Medical Sciences

European Research Council

Remodel

NEYE Foundation

Independent Research Fund Denmark Medical Sciences

Publisher

Oxford University Press (OUP)

Subject

Biochemistry

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