Site‐Selective Protein Conjugation by a Multicomponent Ugi Reaction

Author:

Koutsopetras Ilias1,Vaur Valentine1,Benazza Rania23,Diemer Hélène23,Sornay Charlotte1,Ersoy Yağmur4,Rochet Léa5,Longo Carmen4,Hernandez‐Alba Oscar23,Erb Stéphane23,Detappe Alexandre6,Skerra Arne4,Wagner Alain1,Cianferani Sarah23,Chaubet Guilhem1ORCID

Affiliation:

1. Bio-Functional Chemistry (UMR 7199) LabEx Medalis University of Strasbourg 74 Route du Rhin 67400 Illkirch-Graffenstaden France

2. Laboratoire de Spectrométrie de Masse BioOrganique (LSMBO) Université de Strasbourg CNRS IPHC UMR 7178 67000 Strasbourg France

3. Infrastructure Nationale de Protéomique ProFI – FR2048 67087 Strasbourg France

4. Lehrstuhl für Biologische Chemie Technische Universität München Emil-Erlenmeyer-Forum 5 85354 Freising Germany

5. Department of Chemistry University College London London UK

6. Institut de Cancérologie Strasbourg Europe Strasbourg France

Abstract

AbstractThe chemical bioconjugation of proteins has seen tremendous applications in the past decades, with the booming of antibody‐drug conjugates and their use in oncology. While genetic engineering has permitted to produce bespoke proteins featuring key (un−)natural amino acid residues poised for site‐selective modifications, the conjugation of native proteins is riddled with selectivity issues. Chemoselective strategies are plentiful and enable the precise modification of virtually any residue with a reactive side‐chain; site‐selective methods are less common and usually most effective on small and medium‐sized proteins. In this context, we studied the application of the Ugi multicomponent reaction for the site‐selective conjugation of amine and carboxylate groups on proteins, and antibodies in particular. Through an in‐depth mechanistic methodology work supported by peptide mapping studies, we managed to develop a set of conditions allowing the highly selective modification of antibodies bearing N‐terminal glutamate and aspartate residues. We demonstrated that this strategy did not alter their affinity toward their target antigen and produced an antibody‐drug conjugate with subnanomolar potency. Excitingly, we showed that the high site selectivity of our strategy was maintained on other protein formats, especially on anticalins, for which directed mutagenesis helped to highlight the key importance of a single lysine residue.

Funder

Agence Nationale de la Recherche

H2020 Marie Skłodowska-Curie Actions

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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