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AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis

Bacterial pathogens need to scavenge iron from their host for growth and proliferation during infection. They have evolved several strategies to do this, one being the biosynthesis and excretion of small, high-affinity iron chelators known as siderophores. The biosynthesis of siderophores is an impo...

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Autores principales: Schmelz, Stefan, Kadi, Nadia, McMahon, Stephen A., Song, Lijiang, Oves-Costales, Daniel, Oke, Muse, Liu, Huanting, Johnson, Kenneth A., Carter, Lester G., Botting, Catherine H., White, Malcolm F., Challis, Gregory L., Naismith, James H.
Formato: Texto
Lenguaje:English
Publicado: 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2644304/
https://www.ncbi.nlm.nih.gov/pubmed/19182782
http://dx.doi.org/10.1038/nchembio.145
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author Schmelz, Stefan
Kadi, Nadia
McMahon, Stephen A.
Song, Lijiang
Oves-Costales, Daniel
Oke, Muse
Liu, Huanting
Johnson, Kenneth A.
Carter, Lester G.
Botting, Catherine H.
White, Malcolm F.
Challis, Gregory L.
Naismith, James H.
author_facet Schmelz, Stefan
Kadi, Nadia
McMahon, Stephen A.
Song, Lijiang
Oves-Costales, Daniel
Oke, Muse
Liu, Huanting
Johnson, Kenneth A.
Carter, Lester G.
Botting, Catherine H.
White, Malcolm F.
Challis, Gregory L.
Naismith, James H.
author_sort Schmelz, Stefan
collection PubMed
description Bacterial pathogens need to scavenge iron from their host for growth and proliferation during infection. They have evolved several strategies to do this, one being the biosynthesis and excretion of small, high-affinity iron chelators known as siderophores. The biosynthesis of siderophores is an important area of study, not only for potential therapeutic intervention, but also to illuminate new enzyme chemistries. Two general pathways for siderophore biosynthesis exist: the well-characterized nonribosomal peptide synthetase (NRPS)-dependent pathway and the NRPS-independent (NIS) pathway, which relies on a different family of sparsely-investigated synthetases. Here, we report structural and biochemical studies of AcsD from Pectobacterium (formerly Erwinia) chrysanthemi, a NIS synthetase involved in achromobactin biosynthesis. The structures of ATP and citrate complexes provide a mechanistic rationale for stereospecific formation of an enzyme-bound (3R)-citryl-adenylate, which reacts with L-serine to form a likely achromobactin precursor. AcsD is a novel acyl adenylate-forming enzyme with a new fold and chemical catalysis strategy.
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spelling pubmed-26443042009-09-01 AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis Schmelz, Stefan Kadi, Nadia McMahon, Stephen A. Song, Lijiang Oves-Costales, Daniel Oke, Muse Liu, Huanting Johnson, Kenneth A. Carter, Lester G. Botting, Catherine H. White, Malcolm F. Challis, Gregory L. Naismith, James H. Nat Chem Biol Article Bacterial pathogens need to scavenge iron from their host for growth and proliferation during infection. They have evolved several strategies to do this, one being the biosynthesis and excretion of small, high-affinity iron chelators known as siderophores. The biosynthesis of siderophores is an important area of study, not only for potential therapeutic intervention, but also to illuminate new enzyme chemistries. Two general pathways for siderophore biosynthesis exist: the well-characterized nonribosomal peptide synthetase (NRPS)-dependent pathway and the NRPS-independent (NIS) pathway, which relies on a different family of sparsely-investigated synthetases. Here, we report structural and biochemical studies of AcsD from Pectobacterium (formerly Erwinia) chrysanthemi, a NIS synthetase involved in achromobactin biosynthesis. The structures of ATP and citrate complexes provide a mechanistic rationale for stereospecific formation of an enzyme-bound (3R)-citryl-adenylate, which reacts with L-serine to form a likely achromobactin precursor. AcsD is a novel acyl adenylate-forming enzyme with a new fold and chemical catalysis strategy. 2009-02-01 2009-03 /pmc/articles/PMC2644304/ /pubmed/19182782 http://dx.doi.org/10.1038/nchembio.145 Text en
spellingShingle Article
Schmelz, Stefan
Kadi, Nadia
McMahon, Stephen A.
Song, Lijiang
Oves-Costales, Daniel
Oke, Muse
Liu, Huanting
Johnson, Kenneth A.
Carter, Lester G.
Botting, Catherine H.
White, Malcolm F.
Challis, Gregory L.
Naismith, James H.
AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis
title AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis
title_full AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis
title_fullStr AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis
title_full_unstemmed AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis
title_short AcsD catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis
title_sort acsd catalyzes enantioselective citrate desymmetrization in siderophore biosynthesis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2644304/
https://www.ncbi.nlm.nih.gov/pubmed/19182782
http://dx.doi.org/10.1038/nchembio.145
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