Self-assembled proteomimetic (SAP) with antibody-like binding from short PNA–peptide conjugates

B Benjamin Brennecke (Department of Organic Chemistry, Faculty of Science, University of Geneva) B Beatrice Civili (Department of Organic Chemistry, Faculty of Science, University of Geneva) P Pramod M. Sabale (Department of Organic Chemistry, Faculty of Science, University of Geneva) S Sofia Barluenga (Department of Organic Chemistry, Faculty of Science, University of Geneva) B Benjamin Meyer (Center of Vaccinology, Department of Pathology and Immunology, Faculty of Medicine, University of Geneva) N Nicolas Winssinger (Department of Organic Chemistry, CVU, Faculty of Sciences)

Abstract

Affinity proteins based on a three-helix bundle (affibodies, alphabodies, and computationally de novo designed ones) have been shown to be a general platform to discover binders with properties reminiscent of antibodies, combining high target specificity with affinities reaching well below the nanomolar. Herein, we report a strategy, coined self-assembled proteomimetic (SAP), to mimic such three-helix bundle architecture with a hybridization-enforced two-helix coiled coil that is obtained by templated native chemical ligation (T-NCL) of PNA–peptide conjugates. This SAP strategy stands out by its synthetic accessibility, reducing the length on the longest synthetic peptide to less than 30 amino acids which is readily attainable by standard SPPS methodologies. We show that the T-NCL dramatically accelerates the ligation, enabling this chemistry to proceed in a combinatorial fashion at low micromolar concentrations. We demonstrate that small combinatorial libraries of SAPs can be prepared in one operation and used directly in affinity selections against a target of interest with an LC–MS analysis of the fittest binders. Moreover, we show that the underlying design paradigm is functional for SAPs based on structurally distinct three-helix peptides aimed at different therapeutic targets, namely HER2 and spike’s RBD, reaching picomolar affinities. We further illustrate that the affinity of the SAP can be allosterically regulated using a toehold displacement of the hybridizing PNAs to disrupt the coiled coil stabilization. Finally, we show that an RBD-targeting SAP effectively inhibits viral entry of SARS-CoV-2 with an IC 50 of 2.8 nM.

Article Details

Volume / Issue Vol. 122, Issue 7
Published February 18, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

B

Benjamin Brennecke

Department of Organic Chemistry, Faculty of Science, University of Geneva

B

Beatrice Civili

Department of Organic Chemistry, Faculty of Science, University of Geneva

P

Pramod M. Sabale

Department of Organic Chemistry, Faculty of Science, University of Geneva

S

Sofia Barluenga

Department of Organic Chemistry, Faculty of Science, University of Geneva

B

Benjamin Meyer

Center of Vaccinology, Department of Pathology and Immunology, Faculty of Medicine, University of Geneva

N

Nicolas Winssinger

Department of Organic Chemistry, CVU, Faculty of Sciences