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Siglec-15 is a glyco-immune checkpoint in prostate cancer regulating immune evasion and metastasis
Abstract:
Prostate cancer is a leading cause of cancer-related mortality in men, and effective treatment options are limited for advanced and metastatic disease. The sialoglycan immune checkpoint Siglec-15 has emerged as a key mediator of tumour-associated immune suppression in several malignancies; however, its expression and functional role in prostate cancer remain poorly defined. Here, using dual immunofluorescence and immunohistochemistry, we demonstrate that Siglec-15 is expressed by prostate tumour epithelial cells, immunosuppressive macrophage phenotypes, and bone-resorbing osteoclasts within the tumour microenvironment. Mechanistically, we show that direct Siglec-15 receptor crosslinking, either by antibodies or tumour cell-derived conditioned medium, promotes monocyte-to-macrophage differentiation, generating macrophages with immunosuppressive and pathogenic phenotypes. Using therapeutic antibodies, we show that Siglec-15 blockade suppresses supernatant-induced monocyte to macrophage differentiation, allowing for the recovery of CD8⁺ T-cell activation. Furthermore, we reveal that macrophage colony-stimulating factor (M-CSF) driven monocyte-derived macrophage differentiation is partially dependent on Siglec-15 signalling, with Siglec-15 blockade enhancing CD8⁺ T-cell responses. In addition, anti-Siglec-15 treatment suppressed osteoclast differentiation, highlighting a dual role for Siglec-15 in prostate cancer immune suppression and bone remodelling. Consistent with these in vitro findings, therapeutic Siglec-15 blockade significantly reduced subcutaneous tumour growth in a CD8⁺ T-cell-dependent manner and prolonged survival in a mouse model of prostate cancer metastasis. Together, these findings identify Siglec-15 as a central regulator of the prostate cancer glyco-immune axis, linking tumour-associated macrophage immune suppression with osteoclast-mediated bone remodelling, providing a compelling rationale for the clinical development of Siglec-15-targeted therapies for patients with advanced disease.
Insights
Siglec-15 promotes prostate cancer immune suppression and bone remodeling by driving immunosuppressive macrophages and osteoclasts. Blocking Siglec-15 enhances anti-tumor CD8+ T-cell responses and reduces tumor growth, offering a new therapeutic strategy.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Prostate cancer is a major cause of cancer mortality in men, with limited options for advanced disease.
- Siglec-15, a sialoglycan immune checkpoint, is implicated in immune suppression in various cancers.
- Its role in prostate cancer is not well understood.
Purpose of the Study:
- To investigate the expression and function of Siglec-15 in prostate cancer.
- To determine Siglec-15's role in immune suppression and bone remodeling within the tumor microenvironment.
- To evaluate the therapeutic potential of Siglec-15 blockade in prostate cancer.
Main Methods:
- Dual immunofluorescence and immunohistochemistry to detect Siglec-15 expression.
- In vitro studies using antibodies and conditioned medium to assess Siglec-15's effect on monocyte differentiation.
- In vivo mouse models to evaluate the efficacy of anti-Siglec-15 therapy.
Main Results:
- Siglec-15 is expressed on prostate tumor cells, immunosuppressive macrophages, and osteoclasts.
- Siglec-15 blockade inhibits monocyte-to-macrophage differentiation and osteoclast formation.
- Anti-Siglec-15 therapy reduced tumor growth and prolonged survival in mice.
- Therapeutic blockade of Siglec-15 enhanced CD8+ T-cell responses.
Conclusions:
- Siglec-15 is a key regulator of the prostate cancer glyco-immune axis.
- It links tumor-associated macrophage suppression with osteoclast-mediated bone remodeling.
- Targeting Siglec-15 presents a promising therapeutic strategy for advanced prostate cancer.