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Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference

The genomes of anaerobic ammonium-oxidizing (anammox) bacteria contain a gene cluster comprising genes of unusual fatty acid biosynthesis enzymes that were suggested to be involved in the synthesis of the unique “ladderane” lipids produced by these organisms. This cluster encodes an acyl carrier pro...

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Autores principales: Dietl, Andreas, Wellach, Kathrin, Mahadevan, Pavithra, Mertes, Nicole, Winter, Sophie L., Kutsch, Tobias, Walz, Carlo, Schlichting, Ilme, Fabritz, Sebastian, Barends, Thomas R.M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10139942/
https://www.ncbi.nlm.nih.gov/pubmed/36907440
http://dx.doi.org/10.1016/j.jbc.2023.104602
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author Dietl, Andreas
Wellach, Kathrin
Mahadevan, Pavithra
Mertes, Nicole
Winter, Sophie L.
Kutsch, Tobias
Walz, Carlo
Schlichting, Ilme
Fabritz, Sebastian
Barends, Thomas R.M.
author_facet Dietl, Andreas
Wellach, Kathrin
Mahadevan, Pavithra
Mertes, Nicole
Winter, Sophie L.
Kutsch, Tobias
Walz, Carlo
Schlichting, Ilme
Fabritz, Sebastian
Barends, Thomas R.M.
author_sort Dietl, Andreas
collection PubMed
description The genomes of anaerobic ammonium-oxidizing (anammox) bacteria contain a gene cluster comprising genes of unusual fatty acid biosynthesis enzymes that were suggested to be involved in the synthesis of the unique “ladderane” lipids produced by these organisms. This cluster encodes an acyl carrier protein (denoted as “amxACP”) and a variant of FabZ, an ACP-3-hydroxyacyl dehydratase. In this study, we characterize this enzyme, which we call anammox-specific FabZ (“amxFabZ”), to investigate the unresolved biosynthetic pathway of ladderane lipids. We find that amxFabZ displays distinct sequence differences to “canonical” FabZ, such as a bulky, apolar residue on the inside of the substrate-binding tunnel, where the canonical enzyme has a glycine. Additionally, substrate screens suggest that amxFabZ efficiently converts substrates with acyl chain lengths of up to eight carbons, whereas longer substrates are converted much more slowly under the conditions used. We also present crystal structures of amxFabZs, mutational studies and the structure of a complex between amxFabZ and amxACP, which show that the structures alone cannot explain the apparent differences from canonical FabZ. Moreover, we find that while amxFabZ does dehydrate substrates bound to amxACP, it does not convert substrates bound to canonical ACP of the same anammox organism. We discuss the possible functional relevance of these observations in the light of proposals for the mechanism for ladderane biosynthesis.
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spelling pubmed-101399422023-04-29 Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference Dietl, Andreas Wellach, Kathrin Mahadevan, Pavithra Mertes, Nicole Winter, Sophie L. Kutsch, Tobias Walz, Carlo Schlichting, Ilme Fabritz, Sebastian Barends, Thomas R.M. J Biol Chem Research Article The genomes of anaerobic ammonium-oxidizing (anammox) bacteria contain a gene cluster comprising genes of unusual fatty acid biosynthesis enzymes that were suggested to be involved in the synthesis of the unique “ladderane” lipids produced by these organisms. This cluster encodes an acyl carrier protein (denoted as “amxACP”) and a variant of FabZ, an ACP-3-hydroxyacyl dehydratase. In this study, we characterize this enzyme, which we call anammox-specific FabZ (“amxFabZ”), to investigate the unresolved biosynthetic pathway of ladderane lipids. We find that amxFabZ displays distinct sequence differences to “canonical” FabZ, such as a bulky, apolar residue on the inside of the substrate-binding tunnel, where the canonical enzyme has a glycine. Additionally, substrate screens suggest that amxFabZ efficiently converts substrates with acyl chain lengths of up to eight carbons, whereas longer substrates are converted much more slowly under the conditions used. We also present crystal structures of amxFabZs, mutational studies and the structure of a complex between amxFabZ and amxACP, which show that the structures alone cannot explain the apparent differences from canonical FabZ. Moreover, we find that while amxFabZ does dehydrate substrates bound to amxACP, it does not convert substrates bound to canonical ACP of the same anammox organism. We discuss the possible functional relevance of these observations in the light of proposals for the mechanism for ladderane biosynthesis. American Society for Biochemistry and Molecular Biology 2023-03-11 /pmc/articles/PMC10139942/ /pubmed/36907440 http://dx.doi.org/10.1016/j.jbc.2023.104602 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Dietl, Andreas
Wellach, Kathrin
Mahadevan, Pavithra
Mertes, Nicole
Winter, Sophie L.
Kutsch, Tobias
Walz, Carlo
Schlichting, Ilme
Fabritz, Sebastian
Barends, Thomas R.M.
Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference
title Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference
title_full Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference
title_fullStr Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference
title_full_unstemmed Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference
title_short Structures of an unusual 3-hydroxyacyl dehydratase (FabZ) from a ladderane-producing organism with an unexpected substrate preference
title_sort structures of an unusual 3-hydroxyacyl dehydratase (fabz) from a ladderane-producing organism with an unexpected substrate preference
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10139942/
https://www.ncbi.nlm.nih.gov/pubmed/36907440
http://dx.doi.org/10.1016/j.jbc.2023.104602
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