ICI has revolutionized cancer therapy over the last decade by harnessing the immune system to target cancer cells. It blocks immuno-suppressive receptors and their ligands, which normally reduce T cell activity and pro-inflammatory cytokine secretion, like interferon γ (IFNγ). This blockade lifts immunosuppression and enhances T-cell anti-tumor activity. Initial ICI therapies using anti-CTLA-4 and anti-PD-1 monoclonal antibodies (mAbs) showed promising results in melanoma and lung cancer. However, primary or acquired resistance limits their long-term effectiveness, benefiting only a fraction of patients. To address these limitations, new immune checkpoints (ICs) are being explored in clinical studies. Combining novel and established ICIs has shown significant efficacy, making it crucial to expand the ICI therapy repertoire to improve cancer treatment and patient survival, especially for those with resistance. Recently, GPR56 was identified as a novel IC that reduces T cell migration. GPR56 is an adhesion GPCR with a large extracellular domain that undergoes autoproteolytic cleavage. The N terminal fragment (NTF) remains non-covalently attached to the C terminal fragment (CTF) but is shed extracellularly upon ligand stimulation. Shedding the NTF increases the constitutive activity of the CTF, negatively regulating receptor activity. GPR56 acts as an inhibitory receptor on T cells and natural killer cells, influencing cell adhesion, migration, and development in the CNS and hematopoietic systems. GPR56 is also a negative prognostic marker in cancer, promoting cancer cell adhesion, proliferation, and progression. Unpublished data from our group show an interaction between GPR56 and HERV-K, a member of the HERV family linked to ancient retroviral infections. HERV-K, usually silenced in healthy tissues, is highly expressed in various cancers, including breast cancer, melanoma, and ovarian cancer. It is associated with neurodegeneration and CNS tumors, suggesting a dependency of these cancers on HERV-K. It is a critical regulator in certain CNS tumors and essential for tumorigenesis and metastasis in breast cancer. Although ICI has revolutionized cancer therapy and improved clinical outcome, primary and acquired resistance limit the success. Thus, only a fraction of cancer patients can benefit long-term from ICI, with some cancers not responding to available therapies. To overcome this, novel ICs have been identified, and subsequent clinical studies showed remarkable efficacies. Still, expanding the ICI repertoire is essential for improving therapy and patient survival. Here, our innovative approach could give oncologists and clinicians a new therapeutic option when treating the end users of our innovative ICI therapy – cancer patients, especially with primary or acquired resistance to other ICIs.