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A Bioluminescent and Fluorescent Orthotopic Syngeneic Murine Model of Androgen-dependent and Castration-resistant Prostate Cancer
Published on: March 6, 2018
Sialylation Inhibition Can Partially Revert Acquired Resistance to Enzalutamide in Prostate Cancer Cells
Emily Archer Goode1, Margarita Orozco-Moreno1, Kirsty Hodgson1
1Newcastle University Centre for Cancer, Newcastle University Institute of Biosciences, Newcastle NE1 3BZ, UK.
Abstract:
Prostate cancer is a lethal solid malignancy and a leading cause of cancer-related deaths in males worldwide. Treatments, including radical prostatectomy, radiotherapy, and hormone therapy, are available and have improved patient survival; however, recurrence remains a huge clinical challenge. Enzalutamide is a second-generation androgen receptor antagonist that is used to treat castrate-resistant prostate cancer. Among patients who initially respond to enzalutamide, virtually all acquire secondary resistance, and an improved understanding of the mechanisms involved is urgently needed. Aberrant glycosylation, and, in particular, alterations to sialylated glycans, have been reported as mediators of therapy resistance in cancer, but a link between tumour-associated glycans and resistance to therapy in prostate cancer has not yet been investigated. Here, using cell line models, we show that prostate cancer cells with acquired resistance to enzalutamide therapy have an upregulation of the sialyltransferase ST6 beta-galactoside alpha-2,6-sialyltransferase 1 (ST6GAL1) and increased levels of α2,6-sialylated N-glycans. Furthermore, using the sialyltransferase inhibitor P-SiaFNEtoc, we discover that acquired resistance to enzalutamide can be partially reversed by combining enzalutamide therapy with sialic acid blockade. Our findings identify a potential role for ST6GAL1-mediated aberrant sialylation in acquired resistance to enzalutamide therapy for prostate cancer and suggest that sialic acid blockade in combination with enzalutamide may represent a novel therapeutic approach in patients with advanced disease. Our study also highlights the potential to bridge the fields of cancer biology and glycobiology to develop novel combination therapies for prostate cancer.
Insights
Prostate cancer resistance to enzalutamide therapy involves increased sialic acid. Blocking sialic acid with ST6GAL1 inhibitors may offer a new treatment strategy for advanced prostate cancer.
Area of Science:
- Cancer Biology
- Glycobiology
- Oncology
Background:
- Prostate cancer is a major cause of male cancer deaths, with recurrence being a significant challenge.
- Enzalutamide is a key treatment for castrate-resistant prostate cancer, but secondary resistance frequently develops.
- Mechanisms of enzalutamide resistance are not fully understood, necessitating further investigation.
Purpose of the Study:
- To investigate the role of aberrant glycosylation in acquired resistance to enzalutamide in prostate cancer.
- To identify specific glycan alterations and associated enzymes involved in therapy resistance.
- To explore novel therapeutic strategies combining enzalutamide with sialic acid blockade.
Main Methods:
- Utilized prostate cancer cell line models to study enzalutamide resistance.
- Assessed the expression of sialyltransferase ST6 beta-galactoside alpha-2,6-sialyltransferase 1 (ST6GAL1) and levels of α2,6-sialylated N-glycans.
- Employed the sialyltransferase inhibitor P-SiaFNEtoc to evaluate the effect of sialic acid blockade.
Main Results:
- Prostate cancer cells with acquired enzalutamide resistance showed upregulated ST6GAL1 and increased α2,6-sialylated N-glycans.
- Inhibition of sialic acid synthesis partially reversed acquired resistance to enzalutamide.
- ST6GAL1-mediated aberrant sialylation is implicated in enzalutamide resistance.
Conclusions:
- Aberrant sialylation driven by ST6GAL1 plays a role in acquired enzalutamide resistance in prostate cancer.
- Combining enzalutamide with sialic acid blockade presents a potential novel therapeutic approach for advanced prostate cancer.
- This research bridges cancer biology and glycobiology, suggesting new combination therapies.
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