Related Experiment Video
Updated: Oct 7, 2025

Identifying PD-1/PD-L1 Inhibitors with Surface Plasmon Resonance Technology
Published on: May 2, 2025
Fc-null anti-PD-1 monoclonal antibodies deliver optimal checkpoint blockade in diverse immune environments
Julia Moreno-Vicente1,2, Jane E Willoughby1, Martin C Taylor1
1Antibody and Vaccine Group, Centre for Cancer Immunology, Cancer Sciences, University of Southampton, Southampton, UK.
Background:
Despite extensive clinical use, the mechanisms that lead to therapeutic resistance to anti-programmed cell-death (PD)-1 monoclonal antibodies (mAbs) remain elusive. Here, we sought to determine how interactions between the Fc region of anti-PD-1 mAbs and Fcγ receptors (FcγRs) affect therapeutic activity and how these are impacted by the immune environment.
Methods:
Mouse and human anti-PD-1 mAbs with different Fc binding profiles were generated and characterized in vitro. The ability of these mAbs to elicit T-cell responses in vivo was first assessed in a vaccination setting using the model antigen ovalbumin. The antitumor activity of anti-PD-1 mAbs was investigated in the context of immune 'hot' MC38 versus 'cold' neuroblastoma tumor models, and flow cytometry performed to assess immune infiltration.
Results:
Engagement of activating FcγRs by anti-PD-1 mAbs led to depletion of activated CD8 T cells in vitro and in vivo, abrogating therapeutic activity. Importantly, the extent of this Fc-mediated modulation was determined by the surrounding immune environment. Low FcγR-engaging mouse anti-PD-1 isotypes, which are frequently used as surrogates for human mAbs, were unable to expand ovalbumin-reactive CD8 T cells, in contrast to Fc-null mAbs. These results were recapitulated in mice expressing human FcγRs, in which clinically relevant hIgG4 anti-PD-1 led to reduced endogenous expansion of CD8 T cells compared with its engineered Fc-null counterpart. In the context of an immunologically 'hot' tumor however, both low-engaging and Fc-null mAbs induced long-term antitumor immunity in MC38-bearing mice. Finally, a similar anti-PD-1 isotype hierarchy was demonstrated in the less responsive 'cold' 9464D neuroblastoma model, where the most effective mAbs were able to delay tumor growth but could not induce long-term protection.
Conclusions:
Our data collectively support a critical role for Fc:FcγR interactions in inhibiting immune responses to both mouse and human anti-PD-1 mAbs, and highlight the context-dependent effect that anti-PD-1 mAb isotypes can have on T-cell responses. We propose that engineering of Fc-null anti-PD-1 mAbs would prevent FcγR-mediated resistance in vivo and allow maximal T-cell stimulation independent of the immunological environment.
Insights
Fc region interactions with Fcγ receptors (FcγRs) can inhibit anti-programmed cell-death (PD)-1 antibody therapy by depleting CD8 T cells. Engineering Fc-null anti-PD-1 antibodies may enhance T-cell responses and overcome resistance.
Area of Science:
- Immunology
- Cancer Immunotherapy
- Antibody Engineering
Background:
- Mechanisms of therapeutic resistance to anti-programmed cell-death (PD)-1 monoclonal antibodies (mAbs) are not fully understood.
- Interactions between the Fc region of anti-PD-1 mAbs and Fc gamma receptors (FcγRs) may influence therapeutic activity and resistance.
- The impact of the immune microenvironment on Fc:FcγR interactions in anti-PD-1 therapy requires investigation.
Purpose of the Study:
- To determine how Fc:FcγR interactions affect anti-PD-1 mAb therapeutic activity.
- To investigate the influence of the immune environment on Fc-mediated modulation of anti-PD-1 mAbs.
- To explore strategies for engineering anti-PD-1 mAbs to overcome therapeutic resistance.
Main Methods:
- Generation and characterization of mouse and human anti-PD-1 mAbs with varying Fc binding profiles.
- Assessment of T-cell responses in vitro and in vivo using vaccination models and tumor models (MC38 and neuroblastoma).
- Flow cytometry analysis to evaluate immune cell infiltration and T-cell populations.
Main Results:
- Engagement of activating FcγRs by anti-PD-1 mAbs led to CD8 T cell depletion, abrogating therapeutic activity.
- Low FcγR-engaging anti-PD-1 isotypes failed to expand antigen-specific CD8 T cells compared to Fc-null mAbs.
- In 'hot' tumors, both low-engaging and Fc-null mAbs induced long-term antitumor immunity, while in 'cold' tumors, efficacy was limited.
Conclusions:
- Fc:FcγR interactions critically inhibit immune responses to anti-PD-1 mAbs, contributing to therapeutic resistance.
- Anti-PD-1 mAb isotypes have context-dependent effects on T-cell responses, influenced by the immune environment.
- Engineering Fc-null anti-PD-1 mAbs is proposed to prevent FcγR-mediated resistance and maximize T-cell stimulation.

