Synthetic Matching of Complex Monoterpene Indole Alkaloid Chemical Space

Author:

Xie Jianing1ORCID,Pahl Axel12ORCID,Krzyzanowski Adrian13ORCID,Krupp Anna4ORCID,Liu Jie1ORCID,Koska Sandra1ORCID,Schölermann Beate1,Zhang Ruirui1ORCID,Bonowski Jana1ORCID,Sievers Sonja12ORCID,Strohmann Carsten4ORCID,Ziegler Slava1ORCID,Grigalunas Michael1ORCID,Waldmann Herbert13ORCID

Affiliation:

1. Department of Chemical Biology Max-Planck-Institute of Molecular Physiology Otto-Hahn-Straße 11 44227 Dortmund Germany

2. Compound Management and Screening Center (COMAS) Otto-Hahn-Straße 11 44227 Dortmund Germany

3. Faculty of Chemistry and Chemical Biology TU Dortmund University Otto-Hahn-Straße 6 44227 Dortmund Germany

4. Faculty of Chemistry Inorganic Chemistry TU Dortmund University Otto-Hahn-Straße 6 44227 Dortmund Germany

Abstract

AbstractMonoterpene indole alkaloids (MIAs) are endowed with high structural and spatial complexity and characterized by diverse biological activities. Given this complexity‐activity combination in MIAs, rapid and efficient access to chemical matter related to and with complexity similar to these alkaloids would be highly desirable, since such compound classes might display novel bioactivity. We describe the design and synthesis of a pseudo‐natural product (pseudo‐NP) collection obtained by the unprecedented combination of MIA fragments through complexity‐generating transformations, resulting in arrangements not currently accessible by biosynthetic pathways. Cheminformatic analyses revealed that both the pseudo‐NPs and the MIAs reside in a unique and common area of chemical space with high spatial complexity‐density that is only sparsely populated by other natural products and drugs. Investigation of bioactivity guided by morphological profiling identified pseudo‐NPs that inhibit DNA synthesis and modulate tubulin. These results demonstrate that the pseudo‐NP collection occupies similar biologically relevant chemical space that Nature has endowed MIAs with.

Funder

Max-Planck-Gesellschaft

Alexander von Humboldt-Stiftung

Innovative Medicines Initiative

Publisher

Wiley

Subject

General Medicine

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