Cargando…

Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae

The 6-deoxy sugar l-rhamnose (l-Rha) is found widely in plant and microbial polysaccharides and natural products. The importance of this and related compounds in host–pathogen interactions often means that l-Rha plays an essential role in many organisms. l-Rha is most commonly biosynthesized as the...

Descripción completa

Detalles Bibliográficos
Autores principales: Wagstaff, Ben A., Rejzek, Martin, Kuhaudomlarp, Sakonwan, Hill, Lionel, Mascia, Ilaria, Nepogodiev, Sergey A., Dorfmueller, Helge C., Field, Robert A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6556577/
https://www.ncbi.nlm.nih.gov/pubmed/31010825
http://dx.doi.org/10.1074/jbc.RA118.006440
_version_ 1783425352956116992
author Wagstaff, Ben A.
Rejzek, Martin
Kuhaudomlarp, Sakonwan
Hill, Lionel
Mascia, Ilaria
Nepogodiev, Sergey A.
Dorfmueller, Helge C.
Field, Robert A.
author_facet Wagstaff, Ben A.
Rejzek, Martin
Kuhaudomlarp, Sakonwan
Hill, Lionel
Mascia, Ilaria
Nepogodiev, Sergey A.
Dorfmueller, Helge C.
Field, Robert A.
author_sort Wagstaff, Ben A.
collection PubMed
description The 6-deoxy sugar l-rhamnose (l-Rha) is found widely in plant and microbial polysaccharides and natural products. The importance of this and related compounds in host–pathogen interactions often means that l-Rha plays an essential role in many organisms. l-Rha is most commonly biosynthesized as the activated sugar nucleotide uridine 5′-diphospho-β-l-rhamnose (UDP-β-l-Rha) or thymidine 5′-diphospho-β-l-rhamnose (TDP-β-l-Rha). Enzymes involved in the biosynthesis of these sugar nucleotides have been studied in some detail in bacteria and plants, but the activated form of l-Rha and the corresponding biosynthetic enzymes have yet to be explored in algae. Here, using sugar-nucleotide profiling in two representative algae, Euglena gracilis and the toxin-producing microalga Prymnesium parvum, we show that levels of UDP- and TDP-activated l-Rha differ significantly between these two algal species. Using bioinformatics and biochemical methods, we identified and characterized a fusion of the RmlC and RmlD proteins, two bacteria-like enzymes involved in TDP-β-l-Rha biosynthesis, from P. parvum. Using this new sequence and also others, we explored l-Rha biosynthesis among algae, finding that although most algae contain sequences orthologous to plant-like l-Rha biosynthesis machineries, instances of the RmlC-RmlD fusion protein identified here exist across the Haptophyta and Gymnodiniaceae families of microalgae. On the basis of these findings, we propose potential routes for the evolution of nucleoside diphosphate β-l-Rha (NDP-β-l-Rha) pathways among algae.
format Online
Article
Text
id pubmed-6556577
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-65565772019-06-21 Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae Wagstaff, Ben A. Rejzek, Martin Kuhaudomlarp, Sakonwan Hill, Lionel Mascia, Ilaria Nepogodiev, Sergey A. Dorfmueller, Helge C. Field, Robert A. J Biol Chem Glycobiology and Extracellular Matrices The 6-deoxy sugar l-rhamnose (l-Rha) is found widely in plant and microbial polysaccharides and natural products. The importance of this and related compounds in host–pathogen interactions often means that l-Rha plays an essential role in many organisms. l-Rha is most commonly biosynthesized as the activated sugar nucleotide uridine 5′-diphospho-β-l-rhamnose (UDP-β-l-Rha) or thymidine 5′-diphospho-β-l-rhamnose (TDP-β-l-Rha). Enzymes involved in the biosynthesis of these sugar nucleotides have been studied in some detail in bacteria and plants, but the activated form of l-Rha and the corresponding biosynthetic enzymes have yet to be explored in algae. Here, using sugar-nucleotide profiling in two representative algae, Euglena gracilis and the toxin-producing microalga Prymnesium parvum, we show that levels of UDP- and TDP-activated l-Rha differ significantly between these two algal species. Using bioinformatics and biochemical methods, we identified and characterized a fusion of the RmlC and RmlD proteins, two bacteria-like enzymes involved in TDP-β-l-Rha biosynthesis, from P. parvum. Using this new sequence and also others, we explored l-Rha biosynthesis among algae, finding that although most algae contain sequences orthologous to plant-like l-Rha biosynthesis machineries, instances of the RmlC-RmlD fusion protein identified here exist across the Haptophyta and Gymnodiniaceae families of microalgae. On the basis of these findings, we propose potential routes for the evolution of nucleoside diphosphate β-l-Rha (NDP-β-l-Rha) pathways among algae. American Society for Biochemistry and Molecular Biology 2019-06-07 2019-04-22 /pmc/articles/PMC6556577/ /pubmed/31010825 http://dx.doi.org/10.1074/jbc.RA118.006440 Text en © 2019 Wagstaff et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Glycobiology and Extracellular Matrices
Wagstaff, Ben A.
Rejzek, Martin
Kuhaudomlarp, Sakonwan
Hill, Lionel
Mascia, Ilaria
Nepogodiev, Sergey A.
Dorfmueller, Helge C.
Field, Robert A.
Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae
title Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae
title_full Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae
title_fullStr Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae
title_full_unstemmed Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae
title_short Discovery of an RmlC/D fusion protein in the microalga Prymnesium parvum and its implications for NDP-β-l-rhamnose biosynthesis in microalgae
title_sort discovery of an rmlc/d fusion protein in the microalga prymnesium parvum and its implications for ndp-β-l-rhamnose biosynthesis in microalgae
topic Glycobiology and Extracellular Matrices
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6556577/
https://www.ncbi.nlm.nih.gov/pubmed/31010825
http://dx.doi.org/10.1074/jbc.RA118.006440
work_keys_str_mv AT wagstaffbena discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae
AT rejzekmartin discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae
AT kuhaudomlarpsakonwan discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae
AT hilllionel discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae
AT masciailaria discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae
AT nepogodievsergeya discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae
AT dorfmuellerhelgec discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae
AT fieldroberta discoveryofanrmlcdfusionproteininthemicroalgaprymnesiumparvumanditsimplicationsforndpblrhamnosebiosynthesisinmicroalgae