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Updated: Sep 3, 2026

Targeted Antibody Blocking by a Dual-Functional Conjugate of Antigenic Peptide and Fc-III Mimetics (DCAF)
Published on: September 17, 2019
Antibody framework engineering enables augmented cytokine receptor signaling capacities of bispecific single domain
Britta Lipinski1,2, Laura Unmuth1,2, Thi Hong Hue Tran1
1Biomolecular Immunotherapy, Institute for Organic Chemistry and Biochemistry, Technical University of Darmstadt, Darmstadt, Germany.
In this work, we developed bispecific antibody (bsAb)-derived surrogate agonists which mimic the function of IL-21 by targeting the IL-21 receptor composed of IL-21 R (CD360) and IL-2 Rγ (CD132). For this, antigen-specific VHHs (variable domains of the heavy chain of heavy-chain-only antibodies) were obtained by immunization of camelids and isolated using yeast surface display. Combinatorial reformatting of IL-21 R-specific single‑domain antibodies (sdAbs) and IL-2 Rγ-targeting paratopes into a monovalent bispecific antibody architecture enabled the identification of IL-21 mimetics displaying attenuated capacities in triggering STAT3 phosphorylation compared to the wild-type cytokine as demonstrated in NK-92 cells as well as peripheral blood mononuclear cells (PBMCs). Moreover, by applying different protein engineering strategies, we demonstrate that agonism capacities of the generated IL-21 mimetics, such as pSTAT3 induction or Granzyme B expression of cytotoxic T cells, can be significantly optimized. For this, framework mutations were introduced to engineer VHH:VHH interactions within the bispecific sdAb-Fc fusion geometry for a more rigid receptor targeting. Furthermore, we show that antibody format engineering, in which the VHHs were arranged in an IgG-like scaffold that replaces the conventional IgG VH and VL domains with the corresponding VHHs, combined with rigidifying mutations, enables IL-21 R agonism comparable to the wild-type cytokine. Taken together, these findings show that IL-21 receptor agonism can be substantially optimized by adapting the spatial orientation of paratopes targeting both receptor subunits via forced dimerization, without altering paratope valencies.
In this work, we developed bispecific antibody (bsAb)-derived surrogate agonists which mimic the function of IL-21 by targeting the IL-21 receptor composed of IL-21 R (CD360) and IL-2 Rγ (CD132). For this, antigen-specific VHHs (variable domains of the heavy chain of heavy-chain-only antibodies) were obtained by immunization of camelids and isolated using yeast surface display. Combinatorial reformatting of IL-21 R-specific single‑domain antibodies (sdAbs) and IL-2 Rγ-targeting paratopes into a monovalent bispecific antibody architecture enabled the identification of IL-21 mimetics displaying attenuated capacities in triggering STAT3 phosphorylation compared to the wild-type cytokine as demonstrated in NK-92 cells as well as peripheral blood mononuclear cells (PBMCs). Moreover, by applying different protein engineering strategies, we demonstrate that agonism capacities of the generated IL-21 mimetics, such as pSTAT3 induction or Granzyme B expression of cytotoxic T cells, can be significantly optimized. For this, framework mutations were introduced to engineer VHH:VHH interactions within the bispecific sdAb-Fc fusion geometry for a more rigid receptor targeting. Furthermore, we show that antibody format engineering, in which the VHHs were arranged in an IgG-like scaffold that replaces the conventional IgG VH and VL domains with the corresponding VHHs, combined with rigidifying mutations, enables IL-21 R agonism comparable to the wild-type cytokine. Taken together, these findings show that IL-21 receptor agonism can be substantially optimized by adapting the spatial orientation of paratopes targeting both receptor subunits via forced dimerization, without altering paratope valencies.
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