Rewiring of the N-Glycome with prostate cancer progression and therapy resistance
William Butler1, Colin McDowell2, Qing Yang3
1Department of Pathology, Duke University School of Medicine, Durham, NC, 27710, USA.
Abstract:
An understanding of the molecular features associated with prostate cancer progression (PCa) and resistance to hormonal therapy is crucial for the identification of new targets that can be utilized to treat advanced disease and prolong patient survival. The glycome, which encompasses all sugar polymers (glycans) synthesized by cells, has remained relatively unexplored in the context of advanced PCa despite the fact that glycans have great potential value as biomarkers and therapeutic targets due to their high density on the cell surface. Using imaging mass spectrometry (IMS), we profiled the N-linked glycans in tumor tissue derived from 131 patients representing the major disease states of PCa to identify glycosylation changes associated with loss of tumor cell differentiation, disease remission, therapy resistance and disease recurrence, as well as neuroendocrine (NE) differentiation which is a major mechanism for therapy failure. Our results indicate significant changes to the glycosylation patterns in various stages of PCa, notably a decrease in tri- and tetraantennary glycans correlating with disease remission, a subsequent increase in these structures with the transition to therapy-resistant PCa, and downregulation of complex N-glycans correlating with NE differentiation. Furthermore, both nonglucosylated and monoglucosylated mannose 9 demonstrate aberrant upregulation in therapy-resistant PCa which may be useful therapeutic targets as these structures are not normally presented in healthy tissue. Our findings characterize changes to the tumor glycome that occur with hormonal therapy and the development of castration-resistant PCa (CRPC), identifying several glycan markers and signatures which may be useful for diagnostic or therapeutic purposes.
Insights
Prostate cancer (PCa) progression involves significant glycan changes. Aberrant N-glycans, particularly in therapy-resistant PCa, offer potential diagnostic and therapeutic targets.
Area of Science:
- Biochemistry
- Oncology
- Glycomics
Background:
- Understanding molecular changes in prostate cancer (PCa) progression and therapy resistance is vital for new treatment strategies.
- The tumor glycome, rich in cell surface glycans, is underexplored in advanced PCa despite its biomarker and therapeutic potential.
Purpose of the Study:
- To profile N-linked glycans in PCa tissues across various disease states.
- To identify glycosylation changes linked to tumor progression, therapy resistance, and neuroendocrine differentiation.
Main Methods:
- Utilized imaging mass spectrometry (IMS) to analyze N-linked glycans.
- Examined tumor tissues from 131 patients representing major PCa disease states.
Main Results:
- Observed significant alterations in N-glycan patterns during PCa progression and therapy resistance.
- Decreased tri- and tetraantennary glycans correlate with remission, while their increase is linked to therapy resistance.
- Downregulation of complex N-glycans and upregulation of specific mannose 9 structures are associated with neuroendocrine differentiation and therapy resistance.
Conclusions:
- Characterized glycomic alterations in PCa during hormonal therapy and development of castration-resistant PCa (CRPC).
- Identified potential glycan markers and signatures for diagnostic and therapeutic applications in advanced PCa.
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