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1.
Nat Chem Biol ; 19(12): 1551-1560, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37932529

ABSTRACT

Monoterpenoid indole alkaloids (MIAs) represent a large class of plant natural products with marketed pharmaceutical activities against a wide range of indications, including cancer, malaria and hypertension. Halogenated MIAs have shown improved pharmaceutical properties; however, synthesis of new-to-nature halogenated MIAs remains a challenge. Here we demonstrate a platform for de novo biosynthesis of two MIAs, serpentine and alstonine, in baker's yeast Saccharomyces cerevisiae and deploy it to systematically explore the biocatalytic potential of refactored MIA pathways for the production of halogenated MIAs. From this, we demonstrate conversion of individual haloindole derivatives to a total of 19 different new-to-nature haloserpentine and haloalstonine analogs. Furthermore, by process optimization and heterologous expression of a modified halogenase in the microbial MIA platform, we document de novo halogenation and biosynthesis of chloroalstonine. Together, this study highlights a microbial platform for enzymatic exploration and production of complex natural and new-to-nature MIAs with therapeutic potential.


Subject(s)
Catharanthus , Saccharomyces cerevisiae , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Monoterpenes/metabolism , Indole Alkaloids/metabolism , Plants/metabolism , Pharmaceutical Preparations/metabolism , Plant Proteins/metabolism
2.
Mycopathologia ; 186(6): 889-892, 2021 Dec.
Article in English | MEDLINE | ID: mdl-34570289

ABSTRACT

Today, the genus Scedosporium comprises at least ten species with four of them, Scedosporium apiospermum, Scedosporium boydii, Scedosporium aurantiacum and Scedosporium minutisporum capable of colonizing the lungs of patients with cystic fibrosis. Scedosporium dehoogii, which is also common in the soil, has never been reported as causing human pulmonary infections. Here we report the first genome sequence for S. dehoogii, an invaluable resource to understand the genetic bases of pathogenesis in the genus Scedosporium.


Subject(s)
Genome , Scedosporium , Humans , Scedosporium/genetics
3.
Methods Mol Biol ; 2172: 93-110, 2020.
Article in English | MEDLINE | ID: mdl-32557364

ABSTRACT

Monoterpene indole alkaloids (MIAs) are specialized metabolites synthesized in many plants of the Apocynaceae family including Catharanthus roseus and Rauvolfia sp. MIAs are part of the chemical arsenal that plants evolved to face pet and herbivore attacks, and their high biological activities also confer pharmaceutical properties exploited in human pharmacopeia. Developing robust and straightforward tools to elucidate each step of MIA biosynthetic pathways thus constitutes a prerequisite to the understanding of Apocynaceae defense mechanisms and to the exploitation of MIA cytotoxicity through their production by metabolic engineering. While protocols of virus-induced gene silencing (VIGS) based on Agrobacterium-based transformation have emerged, the recalcitrance of Apocynaceae to this type of transformation prompted us to develop an universal procedure of VIGS vector inoculation. Such procedure relies on the delivery of the transforming plasmids through a particle bombardment performed using a biolistic device and offers the possibility to overcome host specificity to silence genes in any plant species. Using silencing of geissoschizine oxidase as an example, we described the main steps of this biolistic mediated VIGS in C. roseus and R. tetraphylla.


Subject(s)
Alkaloids/metabolism , Apocynaceae/genetics , Apocynaceae/metabolism , Plant Proteins/metabolism , Biolistics , Gene Expression Regulation, Plant/genetics , Gene Expression Regulation, Plant/physiology , Gene Silencing/physiology , Plant Proteins/genetics , Plasmids/genetics
4.
Methods Mol Biol ; 1789: 33-54, 2018.
Article in English | MEDLINE | ID: mdl-29916070

ABSTRACT

Accurate and efficient demonstrations of protein localizations to the vacuole or tonoplast remain strict prerequisites to decipher the role of vacuoles in the whole plant cell biology and notably in defence processes. In this chapter, we describe a reliable procedure of protein subcellular localization study through transient transformations of Catharanthus roseus or onion cells and expression of fusions with fluorescent proteins allowing minimizing artefacts of targeting.


Subject(s)
Bacterial Proteins/analysis , Catharanthus/cytology , Green Fluorescent Proteins/analysis , Luminescent Proteins/analysis , Onions/cytology , Plant Proteins/analysis , Vacuoles/ultrastructure , Bacterial Proteins/genetics , Catharanthus/genetics , Genetic Vectors/genetics , Green Fluorescent Proteins/genetics , Luminescent Proteins/genetics , Microscopy, Fluorescence/methods , Onions/genetics , Plant Proteins/genetics , Protein Transport , Recombinant Fusion Proteins/analysis , Recombinant Fusion Proteins/genetics , Transformation, Genetic , Vacuoles/chemistry , Vacuoles/genetics
5.
Curr Genet ; 64(4): 841-851, 2018 Aug.
Article in English | MEDLINE | ID: mdl-29249052

ABSTRACT

Two-component systems (TCSs) are widely distributed cell signaling pathways used by both prokaryotic and eukaryotic organisms to cope with a wide range of environmental cues. In fungi, TCS signaling routes, that mediate perception of stimuli, correspond to a multi-step phosphorelay between three protein families including hybrid histidine kinases (HHK), histidine phosphotransfer proteins (HPt) and response regulators (RR). The best known of these fungal transduction pathways remains the Sln1(HHK)-Ypd1(HPt)-Ssk1(RR) system that governs the high-osmolarity glycerol (HOG) mitogen-activated protein kinase (MAPK) pathway for osmo-adaptation in Saccharomyces cerevisiae. Although recent advances have provided a preliminary overview of the distribution of TCS proteins in the kingdom Fungi, underlying mechanisms that drive the remarkable diversity among HHKs and other TCS proteins in different fungal lineages remain unclear. More precisely, evolutionary paths that led to the appearance, transfer, duplication, and loss of the corresponding TCS genes in fungi have never been hitherto addressed. In the present study, we were particularly interested in studying the distribution of TCS modules across the so-called "budding yeasts clade" (Saccharomycotina) by interrogating the genome of 82 species. With the exception of the emergence of an additional RR (named Srr1) in the fungal CTG clade, TCS proteins Ypd1 (HPt), Ssk1 (RR), Skn7 (RR), and Rim15 (RR) are well conserved within the Saccharomycotina. Surprisingly, some species from the basal lineages, especially Lipomyces starkeyi, harbor several filamentous-type HHKs that appear as relict genes that have been likely retained from a common ancestor of Saccharomycotina. Overall, this analysis revealed a progressive diminution of the initial pool of HHK-encoding genes during Saccharomycotina yeast evolution.


Subject(s)
Adaptation, Physiological/genetics , Evolution, Molecular , Genome, Fungal/genetics , Histidine Kinase/genetics , Intracellular Signaling Peptides and Proteins/genetics , Osmotic Pressure , Phylogeny , Protein Kinases/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics
6.
J Microbiol Methods ; 144: 152-156, 2018 01.
Article in English | MEDLINE | ID: mdl-29155237

ABSTRACT

We have developed a series of synthetic constructs suitable to genetically manipulate a broad range of yeast species belonging to the fungal CTG clade. This molecular toolbox notably allows heterologous gene expression, single or dual fluorescence labeling and construction of luciferase-expressing strains for bioluminescence imaging.


Subject(s)
Codon , Genetic Engineering/methods , Genetic Engineering/standards , Yeasts/genetics , Fluorescence , Gene Expression Regulation, Fungal , Green Fluorescent Proteins , Luciferases , Luminescent Measurements/methods , Luminescent Measurements/standards , Molecular Biology/methods , Staining and Labeling , Transformation, Genetic , beta-Galactosidase
7.
J Exp Bot ; 66(22): 7271-85, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26363642

ABSTRACT

Phenolamides, so called hydroxycinnamic acid amides, are specialized metabolites produced in higher plants, involved in development, reproduction and serve as defence compounds in biotic interactions. Among them, trihydroxycinnamoyl spermidine derivatives were initially found to be synthetized by a spermidine hydroxycinnamoyltransferase (AtSHT) in Arabidopsis thaliana and to accumulate in the pollen coat. This study reports the identification, in Malus domestica, of an acyltransferase able to complement the sht mutant of Arabidopsis. The quantitative RT-PCR expression profile of MdSHT reveals a specific expression in flowers coordinated with anther development and tapetum cell activities. Three phenolamides including N (1),N (5),N (10)-tricoumaroyl spermidine and N (1),N (5)-dicoumaroyl-N (10)-caffeoyl spermidine identified by LC/MS, were shown to accumulate specifically in pollen grain coat of apple tree. Moreover, in vitro biochemical characterization confirmed MdSHT capacity to synthesize tri-substituted spermidine derivatives with a substrate specificity restricted to p-coumaroyl-CoA and caffeoyl-CoA as an acyl donor. Further investigations of the presence of tri-substituted hydroxycinnamoyl spermidine conjugates in higher plants were performed by targeted metabolic analyses in pollens coupled with bioinformatic analyses of putative SHT orthologues in a wide range of available plant genomes. This work highlights a probable early evolutionary appearance in the common ancestral core Eudicotyledons of a novel enzyme from the BAHD acyltransferase superfamily, dedicated to the synthesis of trihydroxycinnamoyl spermidines in pollen coat. This pathway was maintained in most species; however, recent evolutionary divergences have appeared among Eudicotyledons, such as an organ reallocation of SHT gene expression in Fabales and a loss of SHT in Malvales and Cucurbitales.


Subject(s)
Acyltransferases/metabolism , Biological Evolution , Malus/enzymology , Pollen/chemistry , Spermidine/biosynthesis , Flowers/growth & development , Flowers/metabolism , Genetic Complementation Test , Magnoliopsida/chemistry , Malus/chemistry , Molecular Structure , Mutation , Sequence Analysis, Protein
8.
Methods Mol Biol ; 1072: 391-405, 2014.
Article in English | MEDLINE | ID: mdl-24136537

ABSTRACT

Proteomic analysis of xylem sap has recently become a major field of interest to understand several biological questions related to plant development and responses to environmental clues. The xylem sap appears as a dynamic fluid undergoing changes in its proteome upon abiotic and biotic stresses. Unlike cell compartments which are amenable to purification in sufficient amount prior to proteomic analysis, the xylem sap has to be collected in particular conditions to avoid contamination by intracellular proteins and to obtain enough material. A model plant like Arabidopsis thaliana is not suitable for such an analysis because efficient harvesting of xylem sap is difficult. The analysis of the xylem sap proteome also requires specific procedures to concentrate proteins and to focus on proteins predicted to be secreted. Indeed, xylem sap proteins appear to be synthesized and secreted in the root stele or to originate from dying differentiated xylem cells. This chapter describes protocols to collect xylem sap from Brassica species and to prepare total and N-glycoprotein extracts for identification of proteins by mass spectrometry analyses and bioinformatics.


Subject(s)
Plant Exudates/metabolism , Proteomics/methods , Xylem/metabolism , Brassicaceae/metabolism , Chromatography, Affinity , Computational Biology , Electrophoresis, Polyacrylamide Gel , Mass Spectrometry , Proteome/metabolism
9.
New Phytol ; 198(3): 899-915, 2013 May.
Article in English | MEDLINE | ID: mdl-23442088

ABSTRACT

Xylan is a major structural component of plant cell wall and the second most abundant plant polysaccharide in nature. Here, by combining genomic and functional analyses, we provide a comprehensive picture of xylan utilization by Xanthomonas campestris pv campestris (Xcc) and highlight its role in the adaptation of this epiphytic phytopathogen to the phyllosphere. The xylanolytic activity of Xcc depends on xylan-deconstruction enzymes but also on transporters, including two TonB-dependent outer membrane transporters (TBDTs) which belong to operons necessary for efficient growth in the presence of xylo-oligosaccharides and for optimal survival on plant leaves. Genes of this xylan utilization system are specifically induced by xylo-oligosaccharides and repressed by a LacI-family regulator named XylR. Part of the xylanolytic machinery of Xcc, including TBDT genes, displays a high degree of conservation with the xylose-regulon of the oligotrophic aquatic bacterium Caulobacter crescentus. Moreover, it shares common features, including the presence of TBDTs, with the xylan utilization systems of Bacteroides ovatus and Prevotella bryantii, two gut symbionts. These similarities and our results support an important role for TBDTs and xylan utilization systems for bacterial adaptation in the phyllosphere, oligotrophic environments and animal guts.


Subject(s)
Bacterial Outer Membrane Proteins/genetics , Gene Expression Regulation, Bacterial , Xanthomonas campestris/genetics , Xanthomonas campestris/metabolism , Xylans/metabolism , Adaptation, Physiological , Animals , Bacterial Outer Membrane Proteins/metabolism , Bacteroides/metabolism , Brassica/microbiology , Caulobacter crescentus/metabolism , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Mutation , Oligosaccharides/chemistry , Oligosaccharides/metabolism , Operon , Phaseolus/microbiology , Symbiosis , Xanthomonas campestris/growth & development , Xanthomonas campestris/pathogenicity , Xylose/metabolism , Xylosidases/genetics , Xylosidases/metabolism
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