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Featured researches published by Céline Raynaud.


Proceedings of the National Academy of Sciences of the United States of America | 2003

Molecular characterization of the 1,3-propanediol (1,3-PD) operon of Clostridium butyricum

Céline Raynaud; Patricia Sarcabal; Isabelle Meynial-Salles; Christian Croux; Philippe Soucaille

The genes encoding the 1,3-propanediol (1,3-PD) operon of Clostridium butyricum VPI1718 were characterized from a molecular and a biochemical point of view. This operon is composed of three genes, dhaB1, dhaB2, and dhaT. When grown in a vitamin B12-free mineral medium with glycerol as carbon source, Escherichia coli expressing dhaB1, dhaB2, and dhaT produces 1,3-PD and high glycerol dehydratase and 1,3-PD dehydrogenase activities. dhaB1 and dhaB2 encode, respectively, a new type of glycerol dehydratase and its activator protein. The deduced proteins DhaB1 and DhaB2, with calculated molecular masses of 88,074 and 34,149 Da, respectively, showed no homology with the known glycerol dehydratases that are all B12 dependent but significant similarity with the pyruvate formate lyases and pyruvate formate lyases activating enzymes and their homologues. The 1,158-bp dhaT gene codes for a 1,3-PD dehydrogenase with a calculated molecular mass of 41,558 Da, revealing a high level of identity with other DhaT proteins from natural 1,3-PD producers. The expression of the 1,3-PD operon in C. butyricum is regulated at the transcriptional level, and this regulation seems to involve a two-component signal transduction system DhaAS/DhaA, which may have a similar function to DhaR, a transcriptional regulator found in other natural 1,3-PD producers. The discovery of a glycerol dehydratase, coenzyme B12 independent, should significantly influence the development of an economical vitamin B12-free biological process for the production of 1,3-PD from renewable resources.


Biotechnology for Biofuels | 2016

Construction of a restriction-less, marker-less mutant useful for functional genomic and metabolic engineering of the biofuel producer Clostridium acetobutylicum

Christian Croux; Ngoc Phuong Thao Nguyen; Jieun Lee; Céline Raynaud; Florence Saint-Prix; Maria Gonzalez-Pajuelo; Isabelle Meynial-Salles; Philippe Soucaille

BackgroundClostridium acetobutylicum is a gram-positive, spore-forming, anaerobic bacterium capable of converting various sugars and polysaccharides into solvents (acetone, butanol, and ethanol). The sequencing of its genome has prompted new approaches to genetic analysis, functional genomics, and metabolic engineering to develop industrial strains for the production of biofuels and bulk chemicals.ResultsThe method used in this paper to knock-out or knock-in genes in C. acetobutylicum combines the use of an antibiotic-resistance gene for the deletion or replacement of the target gene, the subsequent elimination of the antibiotic-resistance gene with the flippase recombinase system from Saccharomyces cerevisiae, and a C. acetobutylicum strain that lacks upp, which encodes uracil phosphoribosyl-transferase, for subsequent use as a counter-selectable marker. A replicative vector containing (1) a pIMP13 origin of replication from Bacillus subtilis that is functional in Clostridia, (2) a replacement cassette consisting of an antibiotic resistance gene (MLSR) flanked by two FRT sequences, and (3) two sequences homologous to selected regions around target DNA sequence was first constructed. This vector was successfully used to consecutively delete the Cac824I restriction endonuclease encoding gene (CA_C1502) and the upp gene (CA_C2879) in the C. acetobutylicum ATCC824 chromosome. The resulting C. acetobutylicum Δcac1502Δupp strain is marker-less, readily transformable without any previous plasmid methylation and can serve as the host for the “marker-less” genetic exchange system. The third gene, CA_C3535, shown in this study to encode for a type II restriction enzyme (Cac824II) that recognizes the CTGAAG sequence, was deleted using an upp/5-FU counter-selection strategy to improve the efficiency of the method. The restriction-less marker-less strain and the method was successfully used to delete two genes (ctfAB) on the pSOL1 megaplasmid and one gene (ldhA) on the chromosome to get strains no longer producing acetone or l-lactate.ConclusionsThe restriction-less, marker-less strain described in this study, as well as the maker-less genetic exchange coupled with positive selection, will be useful for functional genomic studies and for the development of industrial strains for the production of biofuels and bulk chemicals.


Journal of Bacteriology | 2011

Molecular Characterization of the glycerol oxidative pathway of Clostridium butyricum VPI 1718

Céline Raynaud; Jieun Lee; Patricia Sarcabal; Christian Croux; Isabelle Meynial-Salles; Philippe Soucaille

The glycerol oxidative pathway of Clostridium butyricum VPI 1718 plays an important role in glycerol dissimilation. We isolated, sequenced, and characterized the region coding for the glycerol oxidation pathway. Five open reading frames (ORFs) were identified: dhaR, encoding a putative transcriptional regulator; dhaD (1,142 bp), encoding a glycerol dehydrogenase; and dhaK (995 bp), dhaL (629 bp), and dhaM (386 bp), encoding a phosphoenolpyruvate (PEP)-dependent dihydroxyacetone (DHA) kinase enzyme complex. Northern blot analysis demonstrated that the last four genes are transcribed as a 3.2-kb polycistronic operon only in glycerol-metabolizing cultures, indicating that the expression of this operon is regulated at the transcriptional level. The transcriptional start site of the operon was determined by primer extension, and the promoter region was deduced. The glycerol dehydrogenase activity of DhaD and the PEP-dependent DHA kinase activity of DhaKLM were demonstrated by heterologous expression in different Escherichia coli mutants. Based on our complementation experiments, we proposed that the HPr phosphoryl carrier protein and His9 residue of the DhaM subunit are involved in the phosphoryl transfer to dihydroxyacetone-phosphate. DhaR, a potential regulator of this operon, was found to contain conserved transmitter and receiver domains that are characteristic of two-component systems present in the AraC family. To the best of our knowledge, this is the first molecular characterization of a glycerol oxidation pathway in a Gram-positive bacterium.


Biochemistry | 2004

Insight into the mechanism of the B12-independent glycerol dehydratase from Clostridium butyricum: preliminary biochemical and structural characterization.

Jessica Rae O'brien; Céline Raynaud; Christian Croux; Laurence Girbal; Philippe Soucaille; William N. Lanzilotta


Archive | 2005

Recombinant enzyme with altered feedback sensitivity

Gwénaëlle Bestel-Corre; Michel Chateau; Rainer Figge; Céline Raynaud; Philippe Soucaille


Archive | 2006

Process for the preparation of methionine and its precursors homoserine or succinylhomoserine employing a microorganism with enhanced sulfate permease expression

Rainer Figge; Fabien Lux; Céline Raynaud; Michel Chateau; Philippe Soucaille


Archive | 2006

Process for the preparation of aspartate and derived amino acids like lysine, threonine, isoleucine, methionine, or homoserine employing a microorganism with enhanced isocitrate lyase and/or malate synthase expression

Rainer Figge; Gwénaëlle Bestel-Corre; Céline Raynaud; Philippe Soucaille


Archive | 2013

Methods for Producing Methionine by Culturing a Microorganism Modified to Enhance Production of Cysteine

Rainer Figge; Fabien Lux; Céline Raynaud; Michel Chateau; Philippe Soucaille


Archive | 2006

METHOD FOR THE ENZYMATIC PRODUCTION OF ALPHA-KETOBUTYRATE

Rainer Figge; Fabien Lux; Céline Raynaud; Philippe Soucaille


Archive | 2015

NEW MICROORGANISM AND METHOD FOR THE PRODUCTION OF 1.2-PROPANEDIOL BASED ON NADPH DEPENDENT ACETOL REDUCTASE AND IMPROVED NADPH SUPPLY

Pascale Aliprandi; Emilie Navarro; Céline Raynaud; Corre Gwénaëlle Bestel; Philippe Soucaille

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