Patent Description:
For the mass production of useful products such as amino acids, regulation of glucose uptake and pentose phosphorylation pathway in the Corynebacterium strain is very important (<NPL>). The gluconate repressor (GntR) is an important regulatory protein that regulates carbon flow through glucose uptake and pentose phosphorylation pathways. It is known that two gluconate repressors (GntR1 and GntR2) are found in the Corynebacterium glutamicum strain. GntR1 and GntR2 strongly repress the expression of genes which are related to gluconate metabolism (gntP, gntK, gnd), and weakly repress the expression of the pentose phosphate operon (tkt-tal-zwf-opcA-devB), which is a major part of the pentose phosphorylation pathway. On the other hand, the expression of ptsG which encodes the glucose-specific transporter enzyme II of the glucose phosphotransferase system (PTS) is activated by GntR1 and GntR2 (<NPL>).

The nucleotide sequence of the Corynebacterium glutamicum ATCC13032 chromosome (cf. <NPL>) and <CIT>) is available e.g. at the GenBank data base of the NCBI (National Center for Biotechnology Information, U. National Library of Medicine <NUM> Rockville Pike, Bethesda MD, <NUM> USA) under the accession number NC_003450. The nucleotide sequence of the gluconate repressor gene gntR1 comprising locus_tag NCgl2440 is disclosed at the GenBank data base of the NCBI under the accession number NC_003450. The nucleotide sequence of the gluconate repressor gene gntR2 comprising locus_tag NCgl1650 is disclosed at the GenBank data base of the NCBI under the accession number NC_003450.

<NPL>) reported a genome-wide analysis of the role of the transcriptional regulator GntR1 in C. glutamicum.

Furthermore, <NPL>) describe that alterations in the transcription factors GntR1 and RamA enhance the growth and central metabolism of Corynebacterium glutamicum. <NPL>) reported a double deletion of the two GntR-type functionally redundant regulator genes in C. glutamicum, gntR1 and gntR2, leading to a significantly lower glucose uptake rate and growth rate as compared to the wild type strain (i.e. ATCC <NUM>) when grown on glucose as the sole carbon source. <CIT>) describe the favorable effect of an amino acid exchange at position <NUM> from arginine to cysteine of the amino acid sequence of the gluconate repressor protein GntR1 on L-lysine production in Corynebacterium glutamicum.

The object of the present invention is to provide a C. glutamicum strain having an improved ability to produce L-lysine and a method for producing L-lysine using such strain.

To achieve the object outlined above novel L-lysine excreting bacteria of the species Corynebacterium glutamicum (C. glutamicum), having the ability to excrete L-lysine are provided, comprising in their chromosome a polynucleotide encoding a polypeptide having the activity of a gluconate repressor protein GntR1 comprising the amino acid sequence of SEQ ID NO:<NUM>, wherein the amino acid at position <NUM> of the amino acid sequence of the polypeptide contains a proteinogenic amino acid different from arginine (Arg) and cysteine (Cys), e.g. aspartic acid (Asp) or glutamic acid (Glu), and whereas the activity of the gluconate repressor protein GntR2 in the L-lysine excreting bacteria of the species Corynebacterium glutamicum is attenuated compared to the activity of the GntR2 repressor protein of the wild-type strain.

The present invention further relates to a method for producing L-lysine by using these bacteria in a fermentative process.

In particular, the present invention concerns a C. glutamicum strain having an increased ability to produce L-lysine compared with the ability of the wildtype strain and comprising a gene (gntR1) coding for the gluconate repressor protein GntR1 comprising the amino acid sequence of SEQ ID NO: <NUM> wherein the amino acid Arg, arginine, in position <NUM> is replaced by the amino acid Glu, glutamic acid, (GntR1 (R102E)) and wherein the activity of the gluconate repressor protein GntR2 comprising SEQ ID NO: <NUM> is attenuated compared to the activity of the GntR2 repressor protein of the wild-type strain.

Attenuation of the activity of the gluconate repressor protein GntR2 means that the translation of the gene gntR2 coding for the gluconate repressor protein GntR2 results in a GntR2 gene product having a reduced repressor activity compared to the activity of the GntR2 repressor protein found in the C. glutamicum wild type or does not result in a GntR2 gene product having the function of a gluconate repressor anymore. This can be achieved e.g. by mutation of the gntR2 gene or by introduction of oligonucleotide fragments into the gntR2 gene or by partial or complete deletion of the coding sequences of the gntR2 gene, respectively.

According to the present invention, the attenuation of the activity of the gluconate repressor protein GntR2 is achieved by.

The deletion of a part or all of the gene encoding the polypeptide may be the removal of the entire polynucleotide encoding the endogenous target polypeptide in the chromosome, replacement with a polynucleotide in which some nucleotides are deleted, or replacement with a marker gene.

The modification of the expression control region (or expression control sequence), deletion, insertion, non-conservative or conservative substitution, or a combination thereof, mutation in the expression control region (or expression control sequence) occurs, or weaker replacement with an active sequence. The expression control region also includes a promoter, an operator sequence, a sequence encoding a ribosome binding site, and a sequence regulating the termination of transcription and translation.

The base sequence modification encoding the start codon or <NUM>'-UTR region of the gene transcript encoding the polypeptide is, for example, a base encoding another start codon having a lower polypeptide expression rate than the intrinsic start codon It may e.g. be substituted with a sequence.

The modification of the amino acid sequence or polynucleotide sequence is a deletion, insertion, non-conservative or conservative substitution of the amino acid sequence of the polypeptide or the polynucleotide sequence encoding the polypeptide to weaken the activity of the polypeptide. Or a combination thereof may result in a mutation in sequence, or replacement with an amino acid sequence or polynucleotide sequence improved to have weaker activity or an amino acid sequence or polynucleotide sequence improved to have no activity. For example, by introducing a mutation in the polynucleotide sequence to form a stop codon, the expression of a gene may be inhibited or attenuated but is not limited thereto.

The introduction of an antisense oligonucleotide (eg, antisense RNA) that complementarily binds to the transcript of the gene encoding the polypeptide is described, for example, in <NPL>].

The addition of a sequence complementary to the Shine-Dalgarno sequence in front of the Shine-Dalgarno sequence of the gene encoding the polypeptide to form a secondary structure that cannot be attached to the ribosome is mRNA translation It may make it impossible or slow it down.

The addition of a promoter transcribed in the opposite direction to the <NUM>' end of the open reading frame (ORF) of the gene sequence encoding the polypeptide (Reverse transcription engineering, RTE) is an antisense complementary to the transcript of the gene encoding the polypeptide It may be to attenuate activity by making nucleotides.

Particularly, attenuation of the activity of the gluconate repressor protein GntR2 also comprises complete deletion of the gntR2 gene.

SEQ ID NO: <NUM> shows the DNA sequence of the gluconate repressor gene gntR1 and SEQ ID NO: <NUM> shows the amino acid sequence of the gluconate repressor protein GntR1 found in the C. glutamicum wild type ATCC <NUM> (locus_tag NCgl2440 disclosed at the GenBank data base of the NCBI under the accession number NC_003450).

SEQ ID NO: <NUM> shows the DNA sequence of the gluconate repressor gene gntR2 and SEQ ID NO: <NUM> shows the amino acid sequence of the gluconate repressor protein GntR2 found in the C. glutamicum wild type ATCC <NUM> (locus_tag NCgl1650 disclosed at the GenBank data base of the NCBI under the accession number NC_003450).

The representative wild-type strain (the taxonomic type strain) of C. glutamicum, ATCC <NUM>, can be purchased at the American Type Culture Collection (ATCC) and at the DSMZ-German Collection of Microorganisms and Cell Cultures GmbH under the accession no.

A multitude of L-lysine excreting strains of the genus Corynebacterium, in particular of the species Corynebacterium glutamicum were obtained in the art during the past decades starting from strains such as ATCC13032, ATCC14067, ATCC13869 and the like. They were obtained as a result of strain development programs using inter alia methods like classical mutagenesis, selection for antimetabolite resistance as well as amplification and promotor modification of genes of the biosynthetic pathway of the L-amino acid in question by genetic engineering methods. Summaries may be found in <NPL>) or <NPL>).

L-lysine excreting strains of the species Corynebacterium glutamicum are widely known in the art and can be used for the purpose of the present invention. For example, <NPL>) describe strain DM1933. Strain DM1933 was obtained from ATCC13032 by several steps of strain development. Furthermore L-lysine excreting Corynebacterium glutamicum strain DSM32514 may be used. Strain DM2031 is a further developed derivative of DM1933 having enhanced L-lysine excretion ability. Other L-lysine excreting Corynebacterium glutamicum strains are e. described in <CIT> and <CIT>.

L-lysine excreting strains of the species Corynebacterium glutamicum typically contain a polynucleotide coding for a feedback resistant aspartokinase polypeptide variant. A feedback resistant aspartokinase polypeptide variant means an aspartokinase which is less sensitive, or desensitized resp. , to inhibition by mixtures of L-lysine and L-threonine, e.g. <NUM> each, or mixtures of the L-lysine analogue S-(<NUM>-aminoethyl)-L-cysteine and L-threonine, e.g. <NUM> S-(<NUM>-aminoethyl)-L-cysteine and <NUM> L-threonine, when compared to the wild form of the enzyme, which is contained in wild strains like for example ATCC13032, ATCC14067 and ATCC13869. The EC number for aspartokinase is EC <NUM>. Descriptions of polynucleotides of Corynebacterium glutamicum encoding a feedback resistant aspartokinase polypeptide variant are for example given in <CIT>, <CIT> and <CIT>. A summarizing list can be found inter alia in <CIT>. The symbol used in the art for a gene coding for an aspartokinase polypeptide is lysC. In case the gene codes for a feedback resistant polypeptide variant the art typically uses symbols like lysCfbr with fbr indicating feedback resistance.

glutamicum strain according to the present invention further comprises at least one copy of a gene lysC coding for a feedback resistant aspartokinase polypeptide variant.

Preferably, the feedback resistant aspartokinase polypeptide variant comprises the amino acid sequence according to SEQ ID NO: <NUM>. The amino acid sequence according to SEQ ID NO: <NUM> differs from the amino acid sequence of the wild type aspartokinase polypeptide (in ATCC <NUM>) in that the amino acid threonine (Thr) at position <NUM> is replaced by the amino acid isoleucine (Ile).

In a further embodiment the bacteria of the C. glutamicum strain according to the invention comprise in their chromosome a polynucleotide (gntR1) encoding an amino acid sequence of a polypeptide having gluconate repressor activity (GntR1), wherein the amino acid arginine at position <NUM> of the encoded amino acid sequence of SEQ ID NO:<NUM> is substituted by glutamic acid (Glu) and wherein the expression of the gene (gntR2) coding for the gluconate repressor protein GntR2 comprising SEQ ID NO: <NUM> is attenuated compared to the expression of the gntR2 gene of the wild-type gene. SEQ ID NO:<NUM> shows the amino acid sequence of the gluconate repressor protein GntR1 wherein the amino acid Arg in position <NUM> of the wildtype sequence shown in SEQ ID NO: <NUM> is replaced by the amino acid Glu (GntR1_R102E) and SEQ ID NO:<NUM> shows the DNA sequence of the gntR1 gene coding for the gluconate repressor protein GntR1 wherein the amino acid Arg in position <NUM> of the wildtype sequence shown in SEQ ID NO: <NUM> is replaced by the amino acid Glu (gntR1_R102E).

In a further embodiment of the present invention the gene (gntR2) coding for the gluconate repressor protein GntR2 comprising SEQ ID NO: <NUM> is deleted in the bacteria of the strain according to the present invention.

It was found that the C. glutamicum bacteria modified according to the invention excreted L-lysine, into a suitable medium under suitable fermentation conditions in an increased manner with respect to e.g. product yield (in g I-lysine/I medium or g L-lysine/g carbon source) as compared to the unmodified bacterium.

Therefore, the present invention also concerns a method for the fermentative production of an L-lysine comprising the steps of cultivating the C. glutamicum strain of the present invention and accumulating L-lysine in the medium to form an L-lysine containing fermentation broth.

The term L-lysine, where mentioned herein, in particular in the context of product formation, also comprises their ionic forms and salts, for example L-lysine mono hydrochloride or L-lysine sulfate.

The method according to the present invention may further comprise manufacturing an L-lysine containing product from said fermentation broth or isolating L-lysine from the L-lysine containing fermentation broth.

A fermentation broth means a medium in which a Corynebacterium glutamicum of the invention has been cultivated for a certain time and under certain conditions.

A suitable medium used for the production of L-lysine by a fermentative process contains a carbon source, a nitrogen source, a phosphorus source, inorganic ions and other organic compounds as required.

Suitable carbon sources include glucose, fructose, sucrose as well as the corresponding raw materials like starch hydrolysate, molasse or high fructose corn syrup.

As nitrogen source organic nitrogen-containing compounds such as peptones, meat extract, soybean hydrolysates or urea, or inorganic compounds such as ammonium sulphate, ammonium chloride, ammonium phosphate, ammonium carbonate, ammonium nitrate, ammonium gas or aqueous ammonia can be used.

As phosphorus source, phosphoric acid, potassium dihydrogen phosphate or dipotassium hydrogen phosphate or the corresponding sodium-containing salts can be used.

Inorganic ions like potassium, sodium, magnesium, calcium, iron and further trace elements etc. are supplied as salts of sulfuric acid, phosphoric acid or hydrochloric acid.

Other organic compounds essentially means growth factors like vitamins e. thiamine or biotin or L-amino acids e. L-homoserine.

The media components may be added to the culture in form of a single batch or be fed in during the cultivation in a suitable manner.

During the fermentative process the pH of the culture can be controlled by employing basic compounds such as sodium hydroxide, potassium hydroxide, ammonia or aqueous ammonia, or acidic compounds such as phosphoric acid or sulphuric acid in a suitable manner. The pH is generally adjusted to a value of from <NUM> to <NUM>, preferably <NUM> to <NUM>. To control foaming, it is possible to employ antifoam agents such as, for example, fatty acid polyglycol esters. To maintain the stability of plasmids, it is possible to add to the medium suitable selective substances such as, for example, antibiotics. The fermentative process is preferably carried out under aerobic conditions. In order to maintain these conditions, oxygen or oxygen-containing gas mixtures such as, for example air are introduced into the culture. The fermentative process is carried out, where appropriate, at elevated pressure, for example at an elevated pressure of <NUM> to <NUM> MPa. The temperature of the culture is normally from <NUM> to <NUM>, preferably from <NUM> to <NUM>. In a discontinuous process, the cultivation is continued until an amount of the L-lysine sufficient for being recovered has been formed. The cultivation is then completed. This aim is normally achieved within <NUM> hours to <NUM> hours. In continuous processes, longer cultivation times are possible.

Examples of suitable media and culture conditions can be found inter alia in<NPL>) and the patent documents <CIT>, <CIT>, <CIT>, <CIT> and <CIT>.

The fermentation broth is removed from the culture vessel or fermentation tank, collected where appropriate, and used for providing a product containing the L-lysine, in liquid or solid form. In the simplest case, the L-lysine -containing fermentation broth itself, which has been removed from the fermentation tank, constitutes the recovered product.

The fermentation broth can subsequently be subjected to partial to complete or virtually complete removal of the water, partial to complete or virtually complete removal of the biomass, the latter being optionally inactivated before removal, partial to complete or virtually complete removal of the organic by-products formed during the fermentative process, and partial to complete or virtually complete removal of the residual components of the medium employed or of the residual input materials which have not been consumed in the fermentative process.

Removal of water can be achieved inter alia by evaporation, using e.g. a falling film evaporator, by reverse osmosis or nanofiltration. The concentrates thus obtained can be further worked up by spray drying or spray granulation. It is likewise possible to dry the fermentation broth directly using spray drying or spray granulation.

Removal of the biomass can be achieved inter alia by centrifugation, filtration or decantation or a combination thereof.

Removal of the organic by-products or removal of residual components of the medium can be achieved inter alia by chromatography, e.g. ion exchange chromatography, treatment with activated carbon or crystallization. In case the organic by-products or residual components of the medium are present in the fermentation broth as solids they can also be removed by inter alia by centrifugation, filtration or decantation or a combination thereof.

General instructions on separation, purification and granulation methods can be found inter alia in the book of <NPL>), the book of<NPL>), the article "<NPL>) and the book of <NPL>).

A downstream processing scheme for L-lysine products can be found in the article "<NPL>et al. <CIT> teaches the manufacturing of a purified L-lysine product by ion exchange chromatography. <CIT> teaches the manufacturing of dry L-amino acid products, e. an L-lysine product, containing most of the constituents of the fermentation broth.

Thus, a concentration or purification of the L-lysine is achieved and a product having the desired content of said L-lysine is provided.

Finally, L-lysine may be isolated from the culture broth and crystallized in form of a salt, preferably in form of the hydrochloric acid salt of L-lysine.

Analysis of L-lysine to determine its concentration at one or more time(s) during the fermentation can take place by separating the L-lysine by means of ion exchange chromatography, preferably cation exchange chromatography, with subsequent post-column derivatization using ninhydrin, as described in <NPL>)). It is also possible to employ ortho-phthalaldehyde rather than ninhydrin for post-column derivatization. An overview article on ion exchange chromatography can be found in Pickering (LC. GC (<NPL>)). It is likewise possible to carry out a pre-column derivatization, for example using ortho-phthalaldehyde or phenyl isothiocyanate, and to fractionate the resulting amino acid derivates by reversed-phase chromatography (RP), preferably in the form of high-performance liquid chromatography (HPLC). A method of this type is described, for example, in <NPL>)). Detection is carried out photometrically (absorption, fluorescence). A review regarding amino acid analysis can be found inter alia in the textbook "<NPL>).

The molecular biology kits, primers and chemicals used and some details of the methods applied are briefly described herewith.

coli K-<NUM> strain S17-<NUM> was used as donor for conjugational transfer of plasmids based on pK18mobsacB from E. glutamicum. Strain S17-<NUM> is described by <NPL>). It is available from the American Type Culture Collection under the access number ATCC47055.

Chemically competent E. coli S17-<NUM> cells were made as follows: A preculture of <NUM> LB medium (<NUM> liquid medium per <NUM> Erlenmeyer flask with <NUM> baffles) was inoculated with <NUM>µl bacterial suspension of strain S17-<NUM> and the culture was incubated overnight for about <NUM> at <NUM> and <NUM> rpm. The main culture (<NUM> LB contained in a <NUM> Erlenmeyer flask with <NUM> baffles) was inoculated with <NUM>µl of the preculture and incubated up to an OD600 of <NUM>-<NUM> at <NUM>. The culture was centrifuged for <NUM>. at <NUM> and <NUM> rpm and the supernatant was discarded. The cell pellet was resuspended in <NUM> sterile, ice-cold <NUM> CaCl<NUM> solution and incubated on ice for <NUM>. After another centrifugation step, the pellet was resuspended in <NUM> ice-cold <NUM> CaCl<NUM> solution and the suspension incubated on ice for <NUM>. The cell suspension was then adjusted to a final concentration of <NUM> % glycerol (v/v) with <NUM> % (v/v) sterile ice-cold glycerol. The suspension was divided into <NUM>µl aliquots and stored at -<NUM>.

To transform S17-<NUM> cells, the protocol according to <NPL>) with a heat shock of <NUM> sec.

The pK18mobsacB plasmid system described by <NPL>) was used to integrate desired DNA fragments into the chromosome of C. glutamicum. A modified conjugation method of <NPL>) was used to transfer the respective plasmid into the desired C. glutamicum recipient strain.

Liquid cultures of the C. glutamicum strains were carried out in BHI medium at <NUM>. The heat shock was carried out at <NUM> for <NUM>. Transconjugants were selected by plating the conjugation batch on EM8 agar (Table <NUM>), which was supplemented with <NUM>/l kanamycin and <NUM>/l nalidixic acid. The EM8 agar plates were incubated for <NUM> at <NUM>.

Sterile toothpicks were used to transfer the transconjugants onto BHI agar, which was supplemented with <NUM>/l kanamycin and <NUM>/l nalidixic acid. The agar plates were incubated for <NUM> at <NUM>. The cultures of the respective transconjugants produced in this manner were then propagated further for <NUM> at <NUM> in <NUM> BHI medium contained in <NUM> Erlenmeyer flasks with <NUM> baffles. An aliquot was taken from the liquid culture suitably diluted and plated (typically <NUM> to <NUM>µl) on BHI agar which was supplemented with <NUM>% saccharose. The agar plates were incubated for <NUM> at <NUM>. The colonies growing on the saccharose containing agar plates were then examined for the phenotype kanamycin sensitivity. To do so a toothpick was used to remove cell material from the colony and to transfer it onto BHI agar containing <NUM>/l kanamycin and onto BHI agar containing <NUM>% saccharose. The agar plates were incubated for <NUM> at <NUM>. Clones that proved to be sensitive to kanamycin and resistant to saccharose were examined for integration of the desired DNA fragment by means of real-time PCR.

For long time storage of E. coli- and C. glutamicum strains glycerol stocks were prepared. Selected E. coli clones were cultivated in <NUM> LB medium supplemented with <NUM>/l glucose. Selected C. glutamicum clones were cultivated in two-fold concentrated BHI medium supplemented with <NUM>/l glucose. Cultures of plasmid containing E. coli strains were supplemented with <NUM>/l kanamycin. Cultures of plasmid containing C. glutamicum strains were supplemented with <NUM>/l kanamycin. The medium was contained in <NUM> Erlenmeyer flasks with <NUM> baffles. It was inoculated with a loop of cells taken from a colony and the culture incubated for about <NUM> at <NUM> and <NUM> rpm in the case of E. coli and <NUM> and <NUM> rpm in the case of C. glutamicum. After said incubation period <NUM> <NUM>% (v/v) sterile glycerol were added to the culture. The obtained glycerol containing cell suspension was then aliquoted in <NUM> portions and stored at -<NUM>.

The millilitre-scale cultivation system according to <NPL>) was used to investigate the performance of the C. glutamicum strains constructed. For this purpose, <NUM>-deepwell microplates (<NUM> well WDS plates) from EnzyScreen BV (Heemstede, Netherlands; Cat. CR1424), filled with <NUM> medium were used.

Precultures of the strains were done in <NUM> two-fold concentrated BHI medium. The medium was contained in a <NUM> Erlenmeyer flask with <NUM> baffles. It was inoculated with <NUM>µl of a glycerol stock culture and the culture incubated for <NUM> at <NUM> and <NUM> rpm.

After said incubation period the optical densities OD600 of the precultures were determined.

The main cultures were done by inoculating the <NUM> medium containing wells of the <NUM> Well WDS-Plate with an aliquot of the preculture to give an optical density OD600 of <NUM>.

As medium for the main culture CGXII medium described by <NPL>) was used. For convenience the composition of the CGXII medium is shown in table <NUM>.

These main cultures were incubated for approximately <NUM> at <NUM> and <NUM> rpm in an Infors HT Multitron standard incubator shaker from Infors GmbH (Bottmingen, Switzerland) until complete consumption of glucose.

The glucose concentration in the suspension was analysed with the blood glucose-meter OneTouch Vita® from LifeScan (Johnson & Johnson Medical GmbH, Neuss, Germany).

After cultivation the culture suspensions were transferred to a deep well microplate. A part of the culture suspension was suitably diluted to measure the OD600. Another part of the culture was centrifuged and the concentration of L-amino acids, in particular L-lysine, and residual glucose were analysed in the supernatant.

The concentration of L-lysine and other L-amino acids, e.g. L-valine, in the culture supernatants was determined by ion exchange chromatography using a SYKAM S433 amino acid analyser from SYKAM Vertriebs GmbH (Fürstenfeldbruck, Germany). As solid phase a column with spherical, polystyrene-based cation exchanger (Peek LCA N04/Na, dimension <NUM> x <NUM>) from SYKAM was used. Depending on the L-amino acid the separation takes place in an isocratic run using a mixture of buffers A and B for elution or by gradient elution using said buffers. As buffer A an aquous solution containing in <NUM> <NUM> trisodium citrate, <NUM> citric acid, <NUM> methanol, <NUM> <NUM> % HCl and <NUM> octanoic acid (final pH <NUM>) was used. As buffer B an aquous solution containing in <NUM> <NUM> trisodium citrate, <NUM> boric acidand <NUM> octanoic acid (final pH <NUM>) was used. The free amino acids were coloured with ninhydrin through post-column derivatization and detected photometrically at <NUM>.

A SANplus multi-channel continuous flow analyser from SKALAR analytic GmbH (Erkelenz, Germany) was used to determine the concentration of glucose in the supernatant. Glucose was detected with a coupled-enzyme assay (Hexokinase/ Glucose-<NUM>-Phosphate-Dehydrogenase) via NADH formation.

Strain DM1933 is an L-lysine producer derived from the C. glutamicum wild type strain ATCC <NUM> and has been described by <NPL>).

The nucleotide sequence of the chromosome of strain DM1933 was determined by Illumina whole-genome sequencing technology (Illumina Inc. , San Diego, CA, US). See e.g.<NPL>) and <NPL>).

It was found that the nucleotide sequence of the gntR1 coding sequence (locus_tag NCgl2440) and gntR2 (locus_tag NCgl1650) of strain DM1933 including the nucleotide sequences upstream and downstream thereof are identical to that of ATCC13032 shown in SEQ ID NO:<NUM> and SEQ ID NO:<NUM>, respectively.

DM1933 contains in its chromosome a variant of the aspartokinase gene encoding a feedback resistant aspartokinase polypeptide. Said feedback resistant aspartokinase polypeptide has the amino acid sequence of SEQ ID NO:<NUM> of the sequence listing. The amino acid sequence according to SEQ ID NO: <NUM> differs from the aspartokinase polypeptide amino acid sequence of the C. glutamicum wild type (ATCC <NUM>) in that the amino acid threonine (Thr) at position <NUM> is replaced by isoleucine (Ile). In <CIT> the abbreviation "lysC T311I" is used to indicate this exchange. <NPL>) use the abbreviation "lysC(T311I)".

Plasmid pK18mobsacB_gntR1_R102E was constructed to enable incorporation of the mutation causing the amino acid exchange R102E into the nucleotide sequence of the gntR1 coding sequence of strain DM1933. The plasmid is based on the mobilizable vector pK18mobsacB described by <NPL>). For the construction of pK18mobsacB_gntR1_R102E the gntR1_R102E polynucleotide according to SEQ ID NO:<NUM> was synthesized and subcloned into pK18mobsacB by GeneArt (ThermoFisher Scientific (Waltham, USA)).

To assemble the plasmid pK18mobsacB_gntR1_R102E the following steps were done by GeneArt: The two polynucleotides i.e. the vector pK18mobsacB and the polynucleotide gntR1_R102E were both treated with Sall and BamHI, ligated and the ligation mixture used to transform E. DNA of plasmid pK18mobsacB_gntR1_R102E was isolated from a transformant and the polynucleotide gntR1_R102E created within pK18mobsacB was analyzed by Sanger sequencing.

The plasmid pK18mobsacB_gntR1_R102E obtained in example <NUM> was used to incorporate the mutation leading to the amino acid exchange R102E into the chromosome of the L-lysine producer DM1933.

Chemically competent cells of E. coli strain S17-<NUM> were transformed with plasmid DNA of pK18mobsacB_gntR1_R102E. The modified conjugation method of <NPL>) as described in materials and methods was used for conjugal transfer into the strain DM1933 and for selection of transconjugant clones by virtue of their saccharose resistance and kanamycin sensitivity phenotype.

Transconjugant clones in which the gntR1 mutation was introduced were selected according to chromosome sequence analysis, subsequently. The strain in which the gntR1_R102E mutation was introduced was called DM1933_gntR1_R102E. A glycerol stock culture of the transconjugant clone was prepared and used as starting material for further investigations.

Thus, the gntR1 gene of strain DM1933 was mutated with the effect that the amino acid arginine at position <NUM> of the amino acid sequence of the encoded GntR1 polypeptide was replaced by glutamic acid.

Plasmid pK18mobsacB_gntR1_R102C was constructed to enable incorporation of the mutation causing the amino acid exchange R102C into the nucleotide sequence of the gntR1 coding sequence of strain DM1933. The plasmid is based on the mobilizable vector pK18mobsacB described by <NPL>). For the construction of pK18mobsacB_gntR1_R102C the gntR1_R102C polynucleotide according to SEQ ID NO:<NUM> was synthesized and subcloned into pK18mobsacB by GeneArt (ThermoFisher Scientific (Waltham, USA)).

To assemble the plasmid pK18mobsacB_gntR1_R102C the following steps were done by GeneArt: The two polynucleotides i.e. the vector pK18mobsacB and the polynucleotide gntR1_R102C were both treated with Sall and BamHI, ligated and the ligation mixture used to transform E. DNA of plasmid pK18mobsacB_gntR1_R102C was isolated from a transformant and the polynucleotide gntR1_R102C created within pK18mobsacB was analyzed by Sanger sequencing.

The plasmid pK18mobsacB_gntR1_R102C obtained in example <NUM> was used to incorporate the mutation leading to the amino acid exchange R102C into the chromosome of the L-lysine producer DM1933.

Chemically competent cells of E. coli strain S17-<NUM> were transformed with plasmid DNA of pK18mobsacB_gntR1_R102C. The modified conjugation method of <NPL>) as described in materials and methods was used for conjugal transfer into the strain DM1933 and for selection of transconjugant clones by virtue of their saccharose resistance and kanamycin sensitivity phenotype.

Transconjugant clones in which the gntR1 mutation was introduced were selected according to chromosome sequence analysis, subsequently. The strain in which the gntR1_R102C mutation was introduced was called DM1933_gntR1_R102C. A glycerol stock culture of the transconjugant clone was prepared and used as starting material for further investigations.

Thus, the gntR1 gene of strain DM1933 was mutated with the effect that the amino acid arginine at position <NUM> of the amino acid sequence of the encoded GntR1 polypeptide was replaced by cysteine.

Plasmid pK18mobsacB_delta_gntR2 was constructed to enable incorporation of a deletion comprising the gntR2 coding sequence and the adjoining stop codon into the chromosome of the desired C. glutamicum strains.

For this purpose, a polynucleotide called delta_gntR2 comprising the upstream sequence (<NUM>'-flanking sequence) and the downstream sequence (<NUM>'-flanking sequence) of the coding sequence of gntR2 was synthesized according to SEQ ID NO:<NUM> and further called delta_gntR2.

The plasmid is based on the mobilizable vector pK18mobsacB described by <NPL>). For the construction of pK18mobsacB_delta_gntR2 the synthesized polynucleotide delta_gntR2 was subcloned into pK18mobsacB by GeneArt (ThermoFisher Scientific (Waltham, USA)).

To assemble the plasmid pK18mobsacB_delta_gntR2 the following steps were done by GeneArt: The two polynucleotides i.e. the vector pK18mobsacB and the polynucleotide delta_gntR2 were both treated with EcoRI and SbfI, ligated and the ligation mixture used to transform E. DNA of plasmid pK18mobsacB_delta_gntR2 was isolated from a transformant and the polynucleotide delta_gntR2 created within pK18mobsacB was analyzed by Sanger sequencing.

The plasmid pK18mobsacB_delta_gntR2 obtained in example <NUM> was used to incorporate the deletion of the complete gntR2 coding sequence and the adjoining stop codon into the chromosome of the strains DM1933, DM1933_gntR1_R102C and DM1933_gntR1_R102E.

Chemically competent cells of E. coli strain S17-<NUM> were transformed with plasmid DNA of pK18mobsacB_delta_gntR2. The modified conjugation method of <NPL>) as described in materials and methods was used for conjugal transfer into the strains DM1933, DM1933_gntR1_R102C and DM1933_gntR1_R102E and for selection of transconjugant clones by virtue of their saccharose resistance and kanamycin sensitivity phenotype.

Transconjugant clones in which the gntR2 deletion were introduced were selected according to chromosome sequence analysis, subsequently. The strains in which the gntR2 deletion were introduced were called DM1933_delta_gntR2, DM1933_gntR1_R102C_delta_gntR2 and strain DM1933_gntR1_R102E_delta_gntR2 respectively. A glycerol stock culture of the transconjugant clones were prepared and used as starting material for further investigations.

Strains DM1933 (reference), DM1933 strains carrying gntR1 mutations and DM1933 strains carrying the gntR2 gene deletion obtained in examples <NUM>, <NUM> and <NUM> were analyzed for their ability to produce L-lysine from glucose by batch cultivation using the cultivation system according to Wouter Duetz.

As medium CGXII containing <NUM>/l glucose as carbon source and <NUM>,<NUM>/l CSL was used. The cultures were incubated for <NUM> until complete consumption of glucose as confirmed by glucose analysis using blood glucose-meter and the concentrations of L-lysine and the optical density OD660 were determined. The result of the experiment is presented in table <NUM>.

Data represent mean values of eight independent cultivations.

The experiment shows that L-lysine production was increased in strain DM1933_gntR1_R102E as compared to the parental strain DM1933 and confirmed this effect with respect to strain DM1933_gntR1_R102C carrying the gntR1_R102C mutation (cf.

The experiment further shows that L-lysine production was also increased in strain DM1933_delta gntR2 as compared to the parental strain DM1933.

Claim 1:
A C. glutamicum strain having an increased ability to produce L-lysine compared with the ability of the wildtype strain and comprising a gene coding for the gluconate repressor protein GntR1 comprising the amino acid sequence of SEQ ID NO: <NUM> wherein the amino acid Arg in position <NUM> is replaced by the amino acid Glu and wherein the activity of the gluconate repressor protein GntR2 comprising SEQ ID NO: <NUM> is attenuated compared to the activity of the GntR2 repressor protein of the wild-type strain, wherein the attenuation of the activity of the gluconate repressor protein GntR2 is achieved by
deletion of all or part of a gene encoding the polypeptide,
modification of the expression control region to reduce the expression of the gene encoding the polypeptide,
modification of the gene sequence encoding the polypeptide such that the activity of the polypeptide is eliminated or attenuated (e.g., deletion of one or more nucleobases on the nucleotide sequence of the polypeptide gene to encode a polypeptide that has been modified such that the activity of the polypeptide is eliminated or attenuated;
modification of the nucleotide sequence encoding the initiation codon or <NUM>'-UTR region of the gene transcript encoding the polypeptide,
introduction of an antisense oligonucleotide (e. g. antisense RNA) that complementarily binds to the transcript of the gene encoding the polypeptide,
addition of a sequence complementary to a Shine-Dalgarno sequence in front of a Shine-Dalgarno sequence of a gene encoding a polypeptide to form a secondary structure that cannot be attached to a ribosome, or
addition of a promoter transcribed in the opposite direction to the <NUM>' end of the open reading frame (ORF) of the gene sequence encoding the polypeptide (Reverse transcription engineering, RTE) or
a combination of two or more of these measures.