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The Human Soluble NKG2D Ligand Differentially Impacts Tumorigenicity and Progression in Temporal and Model-Dependent
Anthony V Serritella1, Pablo Saenz-Lopez Larrocha2, Payal Dhar2
1Department of Hematology/Oncology, Feinberg School of Medicine, Northwestern University, Chicago, IL 60611, USA.
Abstract:
NKG2D is an activating receptor expressed by all human NK cells and CD8 T cells. Harnessing the NKG2D/NKG2D ligand axis has emerged as a viable avenue for cancer immunotherapy. However, there is a long-standing controversy over whether soluble NKG2D ligands are immunosuppressive or immunostimulatory, originating from conflicting data generated from different scopes of pre-clinical investigations. Using multiple pre-clinical tumor models, we demonstrated that the impact of the most characterized human solid tumor-associated soluble NKG2D ligand, the soluble MHC I chain-related molecule (sMIC), on tumorigenesis depended on the tumor model being studied and whether the tumor cells possessed stemness-like properties. We demonstrated that the potential of tumor formation or establishment depended upon tumor cell stem-like properties irrespective of tumor cells secreting the soluble NKG2D ligand sMIC. Specifically, tumor formation was delayed or failed if sMIC-expressing tumor cells expressed low stem-cell markers; tumor formation was rapid if sMIC-expressing tumor cells expressed high stem-like cell markers. However, once tumors were formed, overexpression of sMIC unequivocally suppressed tumoral NK and CD8 T cell immunity and facilitated tumor growth. Our study distinguished the differential impacts of soluble NKG2D ligands in tumor formation and tumor progression, cleared the outstanding controversy over soluble NKG2D ligands in modulating tumor immunity, and re-enforced the viability of targeting soluble NKG2D ligands for cancer immunotherapy for established tumors.
Insights
Soluble NKG2D ligands like sMIC impact tumor formation based on cancer stem cell properties. Once established, sMIC suppresses anti-tumor immunity, supporting its use in cancer immunotherapy.
Area of Science:
- Immunology
- Cancer Biology
- Molecular Biology
Background:
- NKG2D receptor is crucial for NK and CD8 T cell activation.
- The NKG2D/NKG2D ligand pathway is a target for cancer immunotherapy.
- Soluble NKG2D ligands' role in tumor immunity remains controversial.
Purpose of the Study:
- To investigate the dual role of soluble NKG2D ligands in cancer.
- To clarify the impact of soluble MHC I chain-related molecule (sMIC) on tumor formation and progression.
- To resolve the controversy surrounding soluble NKG2D ligands in cancer immunity.
Main Methods:
- Utilized multiple pre-clinical tumor models.
- Assessed the influence of sMIC expression on tumor formation and growth.
- Correlated sMIC expression with tumor cell stemness properties.
- Evaluated the effect of sMIC on NK and CD8 T cell activity within tumors.
Main Results:
- Tumorigenesis depended on tumor cell stemness, not solely sMIC secretion.
- Low stemness in sMIC-expressing cells delayed or prevented tumor formation.
- High stemness in sMIC-expressing cells promoted rapid tumor formation.
- Overexpressed sMIC suppressed anti-tumor immunity (NK and CD8 T cells) in established tumors, enhancing growth.
Conclusions:
- Differentiated the roles of soluble NKG2D ligands in tumor initiation versus progression.
- Resolved the controversy regarding soluble NKG2D ligands' immunomodulatory effects.
- Reinforced the therapeutic potential of targeting soluble NKG2D ligands for established tumors in cancer immunotherapy.
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