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The glycosyltransferase LARGE2 is repressed by Snail and ZEB1 in prostate cancer
Qin Huang1, Michael R Miller, James Schappet
1a Department of Molecular Physiology and Biophysics ; University of Iowa Carver College of Medicine ; Iowa City , IA USA.
Abstract:
Reductions in both expression of the dystroglycan core protein and functional glycosylation of the α-dystroglycan (αDG) subunit have been reported in a number of cancers and may contribute to disease progression. In the case of prostate cancer, one mechanism that contributes to αDG hypoglycosylation is transcriptional down-regulation of LARGE2 (GYLTY1B), a glycosyltransferase that produces the functional (laminin-binding) glycan on αDG, but the mechanism(s) underlying reduction of LARGE2 mRNA remain unclear. Here, we show that αDG hypoglycosylation is associated with epithelial-to-mesenchymal transition (EMT)-like status. We examined immunoreactivity for both functionally-glycosylated αDG and E-cadherin by flow cytometry and the relative expression of ZEB1 mRNA and the αDG glycosyltransferase LARGE2 mRNA in prostate and other cancer cell lines by quantitative RT-PCR. To study the role of ZEB1 and other transcription factors in the regulation of LARGE2, we employed overexpression and knockdown approaches. Snail- or ZEB1-driven EMT caused αDG hypoglycosylation by repressing expression of the LARGE2 mRNA, with both ZEB1-dependent and -independent mechanisms contributing to Snail-mediated LARGE2 repression. To examine the direct regulation of LARGE2 by Snail and ZEB1 we employed luciferase reporter and chromatin immunoprecipitation assays. Snail and ZEB1 were found to bind directly to the LARGE2 promoter, specifically to E/Z-box clusters. Furthermore, analysis of gene expression profiles of clinical samples in The Cancer Genome Atlas reveals negative correlation of LARGE2 and ZEB1 expression in various cancers. Collectively, our results suggest that LARGE2 is negatively regulated by Snail and/or ZEB1, revealing a mechanistic basis for αDG hypoglycosylation during prostate cancer progression and metastasis.
Insights
Dystroglycan hypoglycosylation in cancer is linked to epithelial-mesenchymal transition (EMT). Transcription factors Snail and ZEB1 directly repress LARGE2, a key enzyme, causing this change and promoting cancer progression.
Area of Science:
- Molecular Biology
- Cancer Research
- Glycobiology
Background:
- Reduced expression and functional glycosylation of dystroglycan (DG) occur in various cancers, potentially driving disease progression.
- In prostate cancer, LARGE2 (a glycosyltransferase essential for α-dystroglycan (αDG) functional glycosylation) mRNA is downregulated, but the regulatory mechanisms are unclear.
Purpose of the Study:
- To investigate the link between αDG hypoglycosylation and epithelial-to-mesenchymal transition (EMT)-like states.
- To elucidate the transcriptional regulation of LARGE2 by EMT-associated transcription factors.
Main Methods:
- Flow cytometry to assess functionally-glycosylated αDG and E-cadherin.
- Quantitative RT-PCR to measure ZEB1 and LARGE2 mRNA expression.
- Overexpression and knockdown studies of transcription factors.
- Luciferase reporter and chromatin immunoprecipitation assays to assess promoter binding.
Main Results:
- EMT-like status correlated with αDG hypoglycosylation.
- Snail or ZEB1 induction of EMT led to LARGE2 mRNA repression and αDG hypoglycosylation.
- Snail and ZEB1 directly bind to the LARGE2 promoter.
- Negative correlation between LARGE2 and ZEB1 expression observed in clinical cancer samples.
Conclusions:
- LARGE2 expression is negatively regulated by Snail and/or ZEB1.
- This regulation provides a mechanistic link between EMT and αDG hypoglycosylation in cancer progression and metastasis.
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