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Updated: Apr 11, 2026

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Published on: May 2, 2025
Targeting the novel immune checkpoint KLRG1 is markedly therapeutic against cancer through multiple lymphocyte
Tyler Andrew Jones1, Jason W Shapiro2, Stephen Sinicrope1
1Pathology, The University of Chicago, Chicago, Illinois, USA.
Background:
Checkpoint blockade therapies have demonstrated clinical benefit across multiple cancer types; however, many patients with immune cell infiltration remain non-responsive or develop resistance. This suggests that additional, unidentified regulatory pathways limit treatment efficacy. The purpose of this study was to investigate the role of the inhibitory receptor KLRG1 in limiting antitumor immunity and to evaluate its potential as a therapeutic target in patients refractory to first-generation checkpoint inhibitors.
Methods:
The study used murine models to observe KLRG1 expression following checkpoint therapy and analyzed tumor-infiltrating T cells from patients with melanoma non-responsive to anti-programmed death-1 (PD-1). We generated KLRG1 knockout mice and B16 melanoma N-cadherin (KLRG1 ligand) deletions to assess tumor growth. Additionally, a KLRG1 human knock-in mouse model and a novel anti-human KLRG1 monoclonal antibody (mAb) were developed and tested both in vitro and in vivo.
Results:
KLRG1 was found to be upregulated on murine CD8+T cells post-therapy, and high KLRG1 expression correlated with anti-PD-1 resistance in patients with melanoma. KLRG1 knockout mice showed significantly reduced tumor growth, a response dependent on CD8+ T cells, natural killer cells, and γδ T cells. Similarly, deleting N-cadherin in tumors slowed growth. The novel anti-human KLRG1 mAb enhanced human T-cell activation in vitro and significantly reduced tumor progression in humanized KLRG1 mice.
Conclusions:
Our findings demonstrate KLRG1 as a critical negative regulator of antitumor immunity and support KLRG1-cadherin blockade as a promising strategy for improving immunotherapy outcomes.
Insights
Blocking the KLRG1 receptor enhances antitumor immunity, offering a new strategy for patients resistant to current immunotherapies. This research identifies KLRG1 as a key target to improve cancer treatment outcomes.
Area of Science:
- Immunology
- Cancer Biology
- Therapeutic Development
Background:
- Checkpoint blockade therapies show promise but face resistance in many cancer patients.
- Unidentified regulatory pathways may limit the efficacy of current immunotherapies.
- Investigating novel targets is crucial for overcoming treatment resistance.
Purpose of the Study:
- To investigate the role of the inhibitory receptor KLRG1 in limiting antitumor immunity.
- To evaluate KLRG1 as a potential therapeutic target in patients resistant to checkpoint inhibitors.
Main Methods:
- Murine models were used to study KLRG1 expression and tumor growth after checkpoint therapy.
- KLRG1 knockout mice and N-cadherin deletion models were generated.
- A human KLRG1 knock-in mouse model and a novel anti-human KLRG1 monoclonal antibody were developed and tested.
Main Results:
- KLRG1 upregulation correlated with resistance to anti-PD-1 therapy in melanoma patients.
- KLRG1 knockout mice exhibited reduced tumor growth, dependent on multiple immune cell types.
- Anti-KLRG1 antibody treatment enhanced T-cell activation and reduced tumor progression in humanized mice.
Conclusions:
- KLRG1 acts as a critical negative regulator of antitumor immunity.
- KLRG1-cadherin blockade presents a promising strategy to enhance immunotherapy outcomes.
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