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Pathogenic bacteria remodel central metabolic enzyme to build a cyclopropanol warhead
BiologyNature Chemistry

Pathogenic bacteria remodel central metabolic enzyme to build a cyclopropanol warhead

F. Trottmann, K. Ishida, et al.

Discover how Burkholderia pseudomallei uses the enzyme BurG to fabricate essential cyclopropanol rings in virulence-inducing malleicyprols. This groundbreaking research, conducted by Felix Trottmann, Keishi Ishida, Mie Ishida-Ito, Hajo Kries, Michael Groll, and Christian Hertweck, unveils a hidden pathway of metabolic evolution potentially ripe for antivirulence strategies.... show more
Abstract
Bacteria of the Burkholderia pseudomallei (BP) group pose a global health threat, causing the infectious diseases melioidosis, a common cause of pneumonia and sepsis, and glanders, a contagious zoonosis. A trait of BP bacteria is a conserved gene cluster coding for the biosynthesis of polyketides (malleicyprols) with a reactive cyclopropanol unit that is critical for virulence. Enzymes building this warhead represent ideal targets for antivirulence strategies but the biochemical basis of cyclopropanol formation is unknown. Here we describe the formation of the malleicyprol warhead. We show that BurG, an unusual NAD+-dependent member of the ketol-acid reductoisomerase family, constructs the strained cyclopropanol ring. Biochemical assays and a suite of eight crystal structures of native and mutated BurG with bound analogues and inhibitors provide snapshots of each step of the complex reaction mechanism, involving a concealed oxidoreduction and a C-S bond cleavage. Our findings illustrate a remarkable case of neofunctionalisation, where a biocatalyst from central metabolism has been evolutionarily repurposed for warhead production in pathogens.
Publisher
Nature Chemistry
Published On
Jul 29, 2022
Authors
Felix Trottmann, Keishi Ishida, Mie Ishida-Ito, Hajo Kries, Michael Groll, Christian Hertweck
Tags
Burkholderia pseudomalleimalleicyprolsBurGvirulence factorpolyketidesketol-acid reductoisomeraseredox reaction
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