Mixing and Matching of Hybrid Megasynthases is a Hub for the Evolution of Metabolic Diversity in Cyanobacteria

K Keishi Ishida (Dept. of Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Jena Germany) Q Qi Sun J Jonna Teikari (Institute for Atmospheric and Earth System Research University of Helsinki P.O. Box 56 (Viikinkaari 9) Helsinki FI‐00014 Finland) C Christian Hertweck (Department of Biomolecular Chemistry) E Elke Dittmann (Department of Microbiology Institute for Biochemistry and Biology University of Potsdam Karl‐Liebknecht‐Str. 24/25 14476 Potsdam‐Golm Germany) M Masahiro Murakami M Martin Baunach (Institute for Pharmaceutical Biology University of Bonn Nussallee 6 53115 Bonn Germany)

Abstract

Abstract Modular megasynthases, such as polyketide synthases (PKSs) and nonribosomal peptide synthetases (NRPSs), are molecular assembly lines that biosynthesize many pharmaceutically and ecologically important natural products. Understanding how these compounds evolve could inspire the artificial evolution of compound diversity by metabolic engineering. Over the past two decades, a number of seminal studies have significantly contributed to our understanding of natural product evolution. However, the evolution of NRPS and PKS assembly lines remains poorly understood, especially for NRPS/PKS hybrids. Here, we provide substantial evidence for a remarkable cluster‐mixing event involving three cyanobacterial biosynthetic gene clusters (BGCs), resulting in the emergence of novel peptide‐polyketide hybrids that were named minutumamides. By combining retro‐evolutionary analysis with structure‐guided genome mining, we could discover a potential evolutionary ancestor that links nostopeptolide and minutumamide biosynthesis. In addition, we were able to trace nostopeptolide‐related module and domain blocks in various other biosynthetic pathways, indicating a surprisingly vivid mixing and matching of biosynthesis genes in the evolution of NRPS and cis ‐acyltransferase PKS/NRPS pathways, which was previously regarded as a unique feature of trans ‐acyltransferase ( trans ‐AT) PKS. These remarkable insights into the evolutionary plasticity of NRPS‐PKS assembly lines provide valuable guidance for pathway engineers looking for productive combinations that yield “nonnatural” hybrid natural products.

Article Details

Volume / Issue Vol. 64, Issue 26
Published June 24, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

K

Keishi Ishida

Dept. of Biomolecular Chemistry Leibniz Institute for Natural Product Research and Infection Biology Jena Germany

Q

Qi Sun

J

Jonna Teikari

Institute for Atmospheric and Earth System Research University of Helsinki P.O. Box 56 (Viikinkaari 9) Helsinki FI‐00014 Finland

C

Christian Hertweck

Department of Biomolecular Chemistry

E

Elke Dittmann

Department of Microbiology Institute for Biochemistry and Biology University of Potsdam Karl‐Liebknecht‐Str. 24/25 14476 Potsdam‐Golm Germany

M

Masahiro Murakami

M

Martin Baunach

Institute for Pharmaceutical Biology University of Bonn Nussallee 6 53115 Bonn Germany