Large Libraries of Structurally Diverse Macrocycles Suitable for Membrane Permeation

Author:

Nielsen Alexander L.1ORCID,Bognar Zsolt1ORCID,Mothukuri Ganesh K.1ORCID,Zarda Anne1ORCID,Schüttel Mischa1ORCID,Merz Manuel L.1ORCID,Ji Xinjian1ORCID,Will Edward J.1ORCID,Chinellato Monica2ORCID,Bartling Christian R. O.3ORCID,Strømgaard Kristian3ORCID,Cendron Laura2ORCID,Angelini Alessandro45ORCID,Heinis Christian1ORCID

Affiliation:

1. Institute of Chemical Sciences and Engineering, School of Basic Sciences École Polytechnique Fédérale de Lausanne (EPFL) CH-1015 Lausanne Switzerland

2. Department of Biology University of Padova 35131 Padova Italy

3. Center for Biopharmaceuticals and Department of Drug Design and Pharmacology, Faculty of Health and Medical Sciences University of Copenhagen Jagtvej 162 DK-2100 Copenhagen Denmark

4. Department of Molecular Sciences and Nanosystems Ca' Foscari University of Venice Via Torino 155, Venezia Mestre Venice 30172 Italy

5. European Centre for Living Technologies (ECLT), Ca' Bottacin Dorsoduro 3911, Calle Crosera Venice 30124 Italy

Abstract

AbstractMacrocycles offer an attractive format for drug development due to their good binding properties and potential to cross cell membranes. To efficiently identify macrocyclic ligands for new targets, methods for the synthesis and screening of large combinatorial libraries of small cyclic peptides were developed, many of them using thiol groups for efficient peptide macrocyclization. However, a weakness of these libraries is that invariant thiol‐containing building blocks such as cysteine are used, resulting in a region that does not contribute to library diversity but increases molecule size. Herein, we synthesized a series of structurally diverse thiol‐containing elements and used them for the combinatorial synthesis of a 2,688‐member library of small, structurally diverse peptidic macrocycles with unprecedented skeletal complexity. We then used this library to discover potent thrombin and plasma kallikrein inhibitors, some also demonstrating favorable membrane permeability. X‐ray structure analysis of macrocycle‐target complexes showed that the size and shape of the newly developed thiol elements are key for binding. The strategy and library format presented in this work significantly enhance structural diversity by allowing combinatorial modifications to a previously invariant region of peptide macrocycles, which may be broadly applied in the development of membrane permeable therapeutics.

Funder

European Research Council

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Horizon 2020 Framework Programme

Publisher

Wiley

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