Nanobody-based Approach for Potent TNFR Agonist Generation
TNFRSF receptors are central to basic and translational research efforts, engaging membrane-bound ligands of the TNF superfamily.
The tumor necrosis factor (TNF) receptor superfamily (TNFRSF) is of overwhelming scientific and clinical relevance, standing at the center of intensive basic and translational research efforts. These receptors are engaged by membrane-bound ligands of the TNF superfamily (TNFSF) and, in some cases, by soluble ligand molecules released from the membrane-bound TNFSF ligand (TNFL) molecules.
The development of recombinant TNFL-based TNFR agonists for research and especially therapeutic purposes is highly individualized, as ligand type-specific hurdles must be overcome in terms of stability, manufacturability, TNFR-specificity and need for oligomerization. While TNFR-specific antibodies can also show agonistic activity, this agonism typically requires FcγR-binding, resulting in a reciprocal conditional bispecific FcγR/TNFR agonism not useful for the study or exploitation of pure TNFR agonism.
Using a series of nanobodies (or single-domain antibodies (sdAbs) or variable heavy domain of heavy chains (VHHs)) specific for the TNFRSF members 41BB, BCMA, CD40, CD95, TRAILR2/DR5, GITR, OX40, TNFR1 and TNFR2, the authors show here that genetic fusion of single-chain encoded triplets of these nanobodies with oligomerizing protein scaffolds regularly results in potent hexa-, nona- and dodecavalent agonists inducing TNFR signaling with EC50-values in the sub-nanomolar range.
The oligovalent nanobody formats described exhibit superior CMC properties and enable the simple generation of highly active TNFR agonists from virtually any TNFR-specific nanobody. This approach provides a robust platform for generating potent agonists without the limitations associated with traditional antibody-based methods.