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Holst, S.

Publications and source records attributed to Holst, S..

2 recordsLinked to original sources

Dissection of N-, O- and glycosphingolipid glycosylation changes in PaTu-S pancreatic adenocarcinoma cells upon TGF-β challenge

Pancreatic ductal adenocarcinoma (PDAC) is characterized by poor prognosis and high mortality. Transforming growth factor-{beta} (TGF-{beta}) plays a key role in tumor progression, which is often associated with aberrant glycosylation. How PDAC cells respond to TGF-{beta} and the role of glycosylation therein is, however, not well known. Here, we investigated the TGF-{beta}-mediated response and glycosylation changes in SMAD4-deficient PaTu-8955S (PaTu-S) cell line. PaTu-S cells responded to TGF-{beta} by upregulating SMAD2 phosphorylation and target gene expression. TGF-{beta} induced expression of the mesenchymal marker N-cadherin, but did not significantly affect epithelial marker E-cadherin expression. The differences of N-glycans, O-glycans and glycosphingolipid (GSL) glycans in PaTu-S cells with TGF-{beta} stimulation were examined. TGF-{beta} treatment primarily induced N-glycome aberrations involving elevated levels of branching, core fucosylation, and sialylation in PaTu-S cells, in line with TGF-{beta}-induced changes in the expression of glycosylation-related genes. In addition, we observed differences in O- and GSL-glycosylation profiles after TGF-{beta} treatment, including lower levels of sialylated Tn antigen, and neoexpression of globosides. Furthermore, SOX4 expression was upregulated upon TGF-{beta} stimulation, and its depletion blocked the TGF-{beta}-induced N-glycomic changes. Thus, our study provides a mechanism by which TGF-{beta}-induced N-glycosylation changes in SOX4 dependent and SMAD4 independent manner in pancreatic cancer cells. Our results open up avenues to study the relevance of glycosylation in TGF-{beta} signaling in SMAD4 inactivated PDAC.

cancer biology

The SPPL3-defined glycosphingolipid repertoire regulates immune responses by improving HLA class I access

HLA class I (HLA-I) drives immune responses by presenting antigen-derived peptides to cognate CD8+ T cells. This process is often hijacked by tumors and pathogens for immune evasion. Since therapeutic options for restoring HLA-I antigen presentation are limited, we aimed to identify new HLA-I pathway targets. By iterative genome-wide screens we uncovered that the cell surface glycosphingolipid (GSL) repertoire determines effective HLA-I antigen presentation. We show that absence of the protease SPPL3 augments B3GNT5 enzyme activity, resulting in upregulated levels of surface (neo)lacto-series GSLs. These GSLs sterically impede molecular interactions with HLA-I and diminish CD8+ T cell activation. In accordance, a disturbed SPPL3-B3GNT5 pathway in glioma associates with decreased patient survival. Importantly, we show that this immunomodulatory effect can be reversed through GSL synthesis inhibition using clinically approved drugs. Overall, our study identifies a GSL signature that functionally inhibits antigen presentation and represents a potential therapeutic target in cancer, infection and autoimmunity.

immunology