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April 28, 2026Immunity0 citationsOpen Access

Pharmacologic glycoengineering of Fcγ receptor IIIa enhances force-resistant IgG-FcγR interactions and anti-tumor antibody efficacy

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BCBowie Yik-Ling ChengRCRaquel M. CenteioDCDavid Kung‐Chun Chiu

Key Points

  • This research aims to investigate how glycoengineering affects the efficacy of therapeutic monoclonal antibodies in cancer treatment.
  • Transient pharmacologic inhibition of N-glycans in host cells
  • Evaluation of antibody efficacy in preclinical tumor models
  • Measurement of IgG-FcγRIIIa interaction durability under shear stress.
  • Glycoengineering improved α-CD20-mediated tumor clearance and survival through FcγRIIIa and NK cell pathways.
  • Enhanced anti-CD25 depletion of intratumoral Tregs in B16-F10 melanoma models.
  • Glycoengineering increased durability of IgG-FcγRIIIa interactions without significant changes in binding affinity.

Abstract

Therapeutic monoclonal antibodies (mAbs) are central to cancer treatment but often show incomplete efficacy. We show that transient pharmacologic inhibition of complex N-glycans in host cells ("glycoengineering") enhances the in vivo activity of multiple depleting mAbs, including mAbs already engineered for heightened potency. In preclinical models, glycoengineering improved α-CD20-mediated tumor clearance and survival through FcγRIIIa- and natural killer (NK) cell-dependent pathways. In B16-F10 melanoma, glycoengineering similarly enhanced anti-CD25 depletion of intratumoral regulatory T cells (Tregs). Notably, glycoengineering produced minimal changes in equilibrium binding affinity but markedly increased the mechanical durability of IgG-FcγRIIIa interactions under physiological shear stress. These results establish antibody effector function as a mechano-immunological process in which IgG-FcγR interactions can be tuned for resilience to physiological forces, thereby moving beyond the current affinity-centric paradigm in mAb engineering. Integrating mechanobiology into therapeutic development may enable mAbs optimized for the dynamic forces of human physiology, which provides a route to enhance next-generation immunotherapies.

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Cite This Study

Cheng et al. (2026) studied this question.

synapsesocial.com/papers/69f04d9f727298f751e71e93https://doi.org/10.1016/j.immuni.2026.03.028
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