Cargando…

Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination

Ferric complexes of triscatechol siderophores may assume one of two enantiomeric configurations at the iron site. Chirality is known to be important in the iron uptake process, however an understanding of the molecular features directing stereospecific coordination remains ambiguous. Synthesis of th...

Descripción completa

Detalles Bibliográficos
Autores principales: Stow, Parker R., Reitz, Zachary L., Johnstone, Timothy C., Butler, Alison
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8480324/
https://www.ncbi.nlm.nih.gov/pubmed/34603680
http://dx.doi.org/10.1039/d1sc03541j
_version_ 1784576442758070272
author Stow, Parker R.
Reitz, Zachary L.
Johnstone, Timothy C.
Butler, Alison
author_facet Stow, Parker R.
Reitz, Zachary L.
Johnstone, Timothy C.
Butler, Alison
author_sort Stow, Parker R.
collection PubMed
description Ferric complexes of triscatechol siderophores may assume one of two enantiomeric configurations at the iron site. Chirality is known to be important in the iron uptake process, however an understanding of the molecular features directing stereospecific coordination remains ambiguous. Synthesis of the full suite of (DHB(L/D)Lys(L/D)Ser)(3) macrolactone diastereomers, which includes the siderophore cyclic trichrysobactin (CTC), enables the effects that the chirality of Lys and Ser residues exert on the configuration of the Fe(iii) complex to be defined. Computationally optimized geometries indicate that the Λ/Δ configurational preferences are set by steric interactions between the Lys sidechains and the peptide backbone. The ability of each (DHB(L/D)Lys(L/D)Ser)(3) diastereomer to form a stable Fe(iii) complex prompted a genomic search for biosynthetic gene clusters (BGCs) encoding the synthesis of these diastereomers in microbes. The genome of the plant pathogen Dickeya chrysanthemi EC16 was sequenced and the genes responsible for the biosynthesis of CTC were identified. A related but distinct BGC was identified in the genome of the opportunistic pathogen Yersinia frederiksenii ATCC 33641; isolation of the siderophore from Y. frederiksenii ATCC 33641, named frederiksenibactin (FSB), revealed the triscatechol oligoester, linear-(DHB(L)Lys(L)Ser)(3). Circular dichroism (CD) spectroscopy establishes that Fe(iii)–CTC and Fe(iii)–FSB are formed in opposite enantiomeric configuration, consistent with the results of the ferric complexes of the cyclic (DHB(L/D)Lys(L/D)Ser)(3) diastereomers.
format Online
Article
Text
id pubmed-8480324
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-84803242021-10-01 Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination Stow, Parker R. Reitz, Zachary L. Johnstone, Timothy C. Butler, Alison Chem Sci Chemistry Ferric complexes of triscatechol siderophores may assume one of two enantiomeric configurations at the iron site. Chirality is known to be important in the iron uptake process, however an understanding of the molecular features directing stereospecific coordination remains ambiguous. Synthesis of the full suite of (DHB(L/D)Lys(L/D)Ser)(3) macrolactone diastereomers, which includes the siderophore cyclic trichrysobactin (CTC), enables the effects that the chirality of Lys and Ser residues exert on the configuration of the Fe(iii) complex to be defined. Computationally optimized geometries indicate that the Λ/Δ configurational preferences are set by steric interactions between the Lys sidechains and the peptide backbone. The ability of each (DHB(L/D)Lys(L/D)Ser)(3) diastereomer to form a stable Fe(iii) complex prompted a genomic search for biosynthetic gene clusters (BGCs) encoding the synthesis of these diastereomers in microbes. The genome of the plant pathogen Dickeya chrysanthemi EC16 was sequenced and the genes responsible for the biosynthesis of CTC were identified. A related but distinct BGC was identified in the genome of the opportunistic pathogen Yersinia frederiksenii ATCC 33641; isolation of the siderophore from Y. frederiksenii ATCC 33641, named frederiksenibactin (FSB), revealed the triscatechol oligoester, linear-(DHB(L)Lys(L)Ser)(3). Circular dichroism (CD) spectroscopy establishes that Fe(iii)–CTC and Fe(iii)–FSB are formed in opposite enantiomeric configuration, consistent with the results of the ferric complexes of the cyclic (DHB(L/D)Lys(L/D)Ser)(3) diastereomers. The Royal Society of Chemistry 2021-08-25 /pmc/articles/PMC8480324/ /pubmed/34603680 http://dx.doi.org/10.1039/d1sc03541j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Stow, Parker R.
Reitz, Zachary L.
Johnstone, Timothy C.
Butler, Alison
Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination
title Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination
title_full Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination
title_fullStr Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination
title_full_unstemmed Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination
title_short Genomics-driven discovery of chiral triscatechol siderophores with enantiomeric Fe(iii) coordination
title_sort genomics-driven discovery of chiral triscatechol siderophores with enantiomeric fe(iii) coordination
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8480324/
https://www.ncbi.nlm.nih.gov/pubmed/34603680
http://dx.doi.org/10.1039/d1sc03541j
work_keys_str_mv AT stowparkerr genomicsdrivendiscoveryofchiraltriscatecholsiderophoreswithenantiomericfeiiicoordination
AT reitzzacharyl genomicsdrivendiscoveryofchiraltriscatecholsiderophoreswithenantiomericfeiiicoordination
AT johnstonetimothyc genomicsdrivendiscoveryofchiraltriscatecholsiderophoreswithenantiomericfeiiicoordination
AT butleralison genomicsdrivendiscoveryofchiraltriscatecholsiderophoreswithenantiomericfeiiicoordination