Rational Redesign of an Fc-Binding Peptide for Multivalent Antibody Assembly
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Multivalent antibody assemblies offer opportunities to enhance avidity, organize immune complexes, and modulate higher-order protein interactions, but constructing such architectures from existing immunoglobulin G (IgG) molecules without redesigning the antibody scaffold remains challenging. Here, we report the rational redesign of a Protein A-derived Fc-binding peptide into ADP1, a stable dimeric Fc-binding peptide that directs Fc-mediated antibody assembly. ADP1 was designed from the parent Fc-binding peptide Z34C by preserving the Fc-recognition surface while redesigning the opposite helical surface to promote peptide–peptide association. Biophysical characterization showed that ADP1 retained nanomolar Fc-binding affinity while exhibiting markedly enhanced chemical and proteolytic stability compared with the parent peptide. Structural analyses of ADP1–Fc complexes revealed that ADP1 bridges neighboring Fc regions through a combined ADP1–Fc and ADP1–ADP1 interface, generating spiral higher-order Fc assemblies. This assembly principle was further extended to full-length IgG, where ADP1 promoted higher-order antibody association in a concentration-sensitive manner. In addition, covalent ADP1 functionalization enabled Fc-directed modification of full-length IgG while retaining Fab-mediated antigen recognition, demonstrating the utility of ADP1 as an antibody assembly and functionalization module. Finally, competitive addition of the parent Z34C peptide modulated ADP1-driven antibody assembly, suggesting a potential route for tuning Fc-mediated assembly propagation. Together, this work establishes a redesigned Fc-binding peptide platform for directing multivalent antibody assembly and functionalization without genetic reengineering of the IgG scaffold.