Hydrogenophilus transformants producing protocatechuic acid

A Hydrogenophilus bacterium transformant using a 3-dehydroshikimate dehydratase gene produces protocatechuic acid from carbon dioxide, solving the inefficiencies of sugar-based methods and chemical synthesis, thereby reducing environmental impact and ensuring stable supply.

JP7756469B2Active Publication Date: 2025-10-20UTILIZATION OF CARBON DIOXIDE INST CO LTD
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Patent Information

Application Number
JP2025524074
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-06-01
Filing Date
2024-05-24
Publication Date
2025-10-20
Estimated Expiration
2044-05-24

AI Technical Summary

Technical Problem

Current methods for producing protocatechuic acid rely on high-cost sugars as carbon sources, disrupting food and feed supplies and posing environmental burdens, while chemical synthesis from petroleum feedstocks is environmentally undesirable.

Method used

A Hydrogenophilus bacterium transformant is developed by introducing a 3-dehydroshikimate dehydratase gene from Corynebacterium glutamicum or Pseudomonas thermotolerans, enabling the bacterium to produce protocatechuic acid using carbon dioxide as a sole carbon source.

Benefits of technology

This method efficiently produces protocatechuic acid on an industrial scale, addressing global warming by fixing carbon dioxide and ensuring a stable supply of the compound without interfering with food and feed supplies or the environment.

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Abstract

A transformant obtained by introducing the 3-dehydroshikimic acid dehydratase gene of (a), (b), (c), (d), or (e) into a bacteria of genus Hydrogenophilus can efficiently produce protocatechuic acid using carbon dioxide as a sole carbon source. (a) DNA that includes the base sequence of SEQ ID NO:1 or 3. (b) DNA that includes a base sequence that has at least 90% homology with SEQ ID NO:1 or 3 and codes for a polypeptide that has 3-dehydroshikimic acid dehydratase activity. (c) DNA that codes for a polypeptide that includes the amino acid sequence of SEQ ID NO:2 or 4. (d) DNA that codes for a polypeptide that includes an amino acid sequence that has at least 90% homology with SEQ ID NO:2 or 4 and has 3-dehydroshikimic acid dehydratase activity. (e) DNA that codes for a polypeptide that includes an amino acid sequence that results from deleting, substituting, inserting, or adding 1–60 amino acids to the amino acid sequence of SEQ ID NO:2 or 4 and has 3-dehydroshikimic acid dehydratase activity.
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Description

[Technical Field]

[0001] The present invention relates to a transformant of a bacterium belonging to the genus Hydrogenophilus having the ability to produce protocatechuic acid, and a method for producing protocatechuic acid using the transformant. [Background technology]

[0002] The Paris Agreement, adopted in 2015, calls for rapid reductions in global greenhouse gas emissions. The Sixth Assessment Report of the Intergovernmental Panel on Climate Change (IPCC), published in 2023, points out that "if greenhouse gas emissions continue to rise, there is a very high possibility that global average temperatures will rise by more than 1.5°C above pre-industrial levels between 2021 and 2040, and that this could exceed 1.5°C even if emissions are kept low." The report also estimates that a 2°C rise in temperature would result in distinctly different climate changes in different regions of the world compared to a 1.5°C rise. It also calls for achieving carbon neutrality, meaning that net anthropogenic CO2 emissions worldwide must be reduced by approximately 45% by 2030 compared to 2010 levels and reach zero by around 2050. In accordance with this report, drastically reducing greenhouse gas emissions, such as carbon dioxide and methane, has become a global challenge, and there is an increasing need for technological development to achieve this.

[0003] The materials currently supplied by the chemical industry are essential for maintaining the current global standard of science, culture, and living standards, and a stable and continuous supply is required. However, the majority of chemical production worldwide is based on petroleum-based raw materials, which increases greenhouse gas emissions. Therefore, chemical production methods must shift from traditional methods that consume large amounts of petroleum resources to carbon recycling methods that effectively utilize carbon resources. To this end, research and development into biorefineries that use microbial fermentation to produce green chemicals from biomass is being actively pursued around the world. However, converting biomass into sugars, which are the feedstock for microbial fermentation, requires complex processes and is expensive. Furthermore, using biomass that can be used as food or feed for chemical production hinders the stable supply of food and feed. Furthermore, the large-scale consumption of biomass for chemical production can actually lead to environmental damage.

[0004] In research into carbon recycling, which reduces fossil fuel consumption and greenhouse gas emissions, gases such as carbon dioxide, methane, and carbon monoxide are attracting attention as highly sustainable carbon raw materials. If these atmospheric gases could be fixed by microorganisms and used industrially, it would contribute greatly to carbon recycling and lead to the achievement of the goal of carbon neutrality. Therefore, there is growing interest in technologies that use microorganisms that grow on these gases to produce valuable chemicals and biofuels. In particular, there is great expectation for fixing and effectively utilizing carbon dioxide, which contributes significantly to global warming.

[0005] Protocatechuic acid is a useful compound that can be used as an ingredient or raw material for pharmaceuticals, cosmetics, pesticides, animal feed, and fragrances. Furthermore, as a polyphenol with antioxidant properties, it is a useful ingredient in functional foods. It is also useful as a precursor for the bio- or chemical conversion of useful chemicals such as catechol and cis-cis-muconic acid, and as a raw material for high-performance polymers. Protocatechuic acid has been conventionally produced by extraction from natural sources such as medicinal plants and chemical synthesis from petroleum feedstocks. However, extraction from natural sources is costly due to low yields, and chemical synthesis from petroleum feedstocks places a heavy burden on the environment.

[0006] To transition from a society dependent on petroleum, which is likely to run out in the future, to a sustainable society, the production of protocatechuic acid by microbial fermentation using renewable non-edible biomass resources has attracted attention. However, as mentioned above, the use of biomass requires complex processes, poses a number of problems, including the disruption of stable food and feed supplies and the large environmental impact. Therefore, there is a need for a practical method for producing protocatechuic acid using microorganisms in a simpler process that does not interfere with the stable supply of food and feed, does not place a burden on the environment, and in particular, a practical method for producing protocatechuic acid by fixing carbon dioxide.

[0007] In many microorganisms, protocatechuate is produced from 3-dehydroshikimate by the catalytic action of 3-dehydroshikimate dehydratase in the shikimate pathway, which is involved in the synthesis of aromatic amino acids, etc. Protocatechuate can also be produced from 4-hydroxybenzoate by the catalytic action of 4-hydroxybenzoate hydroxylase.

[0008] As a technique for producing protocatechuic acid by fermentation using a genetically modified microorganism, Patent Document 1 discloses a method for producing protocatechuic acid by introducing a gene (qsuB gene) for 3-dehydroshikimate dehydratase, which produces protocatechuic acid from 3-dehydroshikimic acid, into Escherichia coli or Klebsiella bacteria and using glucose as a carbon source.

[0009] Furthermore, Patent Document 2 and Non-Patent Document 1 disclose a method for producing protocatechuate using glucose as a carbon source by introducing the 3-dehydroshikimate dehydratase (qsuB) gene, the chorismate-pyruvate lyase (ubiC) gene, and the 4-hydroxybenzoate hydroxylase (pobA) gene into a bacterium of the genus Corynebacterium. Chorismate-pyruvate lyase is an enzyme that catalyzes the conversion of chorismate to 4-hydroxybenzoate, and 4-hydroxybenzoate hydroxylase is an enzyme that catalyzes the conversion of 4-hydroxybenzoate to protocatechuate. In the methods described in these documents, various types of genes derived from bacteria such as Corynebacterium glutamicum are used as the 3-dehydroshikimate dehydratase gene, a gene derived from Providencia rustigianii is used as the chorismate-pyruvate lyase gene, and a gene derived from Corynebacterium glutamicum is used as the 4-hydroxybenzoate hydroxylase gene. Furthermore, Non-Patent Document 2 teaches a method for producing protocatechuic acid by introducing the qsuB gene derived from Corynebacterium glutamicum into Corynebacterium glutamicum and using glucose and D-xylose as carbon sources.

[0010] However, these methods involve growing microorganisms using sugars, which are carbon sources with high production costs, to produce protocatechuic acid, and are not methods for producing protocatechuic acid using carbon dioxide as a carbon source. [Prior art documents] [Patent documents]

[0011] [Patent Document 1] U.S. Patent No. 5,272,073 [Patent Document 2] Re-table 2017 / 169399 [Non-patent literature]

[0012] [Non-Patent Document 1] Metab Eng., 65:232-242(2021) [Non-patent document 2] Biotechnol Bioeng., 118(11):4414-4427(2021) Summary of the Invention [Problem to be solved by the invention]

[0013] An objective of the present invention is to provide a Hydrogenophilus bacterium transformant (in other words, a transformed Hydrogenophilus bacterium) that can efficiently produce protocatechuic acid using carbon dioxide as a sole carbon source, and a method for efficiently producing protocatechuic acid using this transformant. [Means for solving the problem]

[0014] The present inventors focused on bacteria of the genus Hydrogenophilus as a microorganism capable of fixing carbon dioxide on an industrial scale, with the aim of avoiding the use of high-cost raw materials such as sugars and contributing to global warming countermeasures. Hydrogenophilus bacteria grow by using hydrogen as an energy source to produce organic substances from carbon dioxide. While such bacteria generally grow very slowly, Hydrogenophilus bacteria grow rapidly and have a significantly higher carbon dioxide fixation capacity than plants or photosynthetic bacteria. Hydrogenophilus bacteria do not have the enzyme required to produce protocatechuic acid as a metabolic intermediate. Therefore, in order to impart the ability to produce protocatechuic acid on an industrial scale to Hydrogenophilus bacteria, it is necessary to introduce a gene encoding an enzyme that catalyzes the reaction that produces protocatechuic acid.

[0015] The present inventors have found that even heterologous genes that are expressed in bacteria other than those of the genus Hydrogenophilus are often not expressed or expressed insufficiently in bacteria of the genus Hydrogenophilus. Therefore, it is generally not useful to use genes that can be introduced into other bacteria to produce substances in bacteria of the genus Hydrogenophilus for the purpose of substance production.

[0016] Under these circumstances, the present inventors investigated genes predicted to be 3-dehydroshikimate dehydratase genes present in the genomes of other microorganisms in order to obtain a 3-dehydroshikimate dehydratase gene that can be expressed in Hydrogenophilus bacteria. They found that the 3-dehydroshikimate dehydratase genes of Corynebacterium glutamicum and Pseudomonas thermotolerans can express functional 3-dehydroshikimate dehydratase in Hydrogenophilus bacteria. They also found that transformants obtained by introducing these genes into Hydrogenophilus bacteria can efficiently produce protocatechuic acid using carbon dioxide as the sole carbon source.

[0017] The present invention has been completed based on the above findings, and provides the following transformant and method for producing protocatechuic acid. [1] A transformant (transformed bacterium) obtained by introducing the following 3-dehydroshikimate dehydratase gene (a), (b), (c), (d), or (e) into a bacterium belonging to the genus Hydrogenophilus: (a) DNA containing the base sequence of SEQ ID NO: 1 or 3 (b) DNA containing a nucleotide sequence having 90% or more identity to SEQ ID NO: 1 or 3 and encoding a polypeptide having 3-dehydroshikimate dehydratase activity. (c) DNA encoding a polypeptide comprising the amino acid sequence of SEQ ID NO: 2 or 4 (d) DNA encoding a polypeptide having 90% or more identity to SEQ ID NO: 2 or 4 and having 3-dehydroshikimate dehydratase activity. (e) DNA encoding a polypeptide having 3-dehydroshikimate dehydratase activity, which contains an amino acid sequence of SEQ ID NO: 2 or 4 in which 1 to 60 amino acids are deleted, substituted, inserted, or added. [2] The transformant according to [1], wherein the bacterium of the genus Hydrogenophilus is Hydrogenophilus thermorteolus. [3] A method for producing protocatechuic acid, comprising a step of culturing the transformant according to [1] or [2] using carbon dioxide as substantially the only carbon source. [Effects of the Invention]

[0018] Measures to curb the increase in carbon dioxide include reducing carbon dioxide emissions and fixing emitted carbon dioxide. To reduce carbon dioxide emissions, energy sources such as solar, wind, and geothermal energy are being used in place of fossil fuels. However, in reality, the use of these types of energy sources has not been enough to sufficiently curb the increase in carbon dioxide. Therefore, it is necessary to promote the fixation or resource recovery of emitted carbon dioxide. Carbon dioxide can be fixed physically or chemically, but if it is fixed using living organisms, it can be used to produce organic matter that can be used as food, feed, fuel, etc. In other words, carbon dioxide itself can be directly converted into a valuable resource. This can solve both the two problems of global warming caused by increased carbon dioxide and the difficulty in securing food, feed, and fuel. It can also produce chemical products that are in demand while suppressing global warming caused by increased carbon dioxide.

[0019] Protocatechuic acid is an aromatic compound of industrial importance. However, protocatechuic acid extracted from natural sources is expensive due to its low yield. Furthermore, chemical synthesis from petroleum feedstocks is undesirable from an environmental perspective. In contrast, the production of protocatechuic acid using carbon dioxide-fixing microorganisms can simultaneously address global warming caused by increased carbon dioxide emissions and ensure the industrial supply of protocatechuic acid.

[0020] Bacteria that can grow using carbon dioxide as their sole carbon source, utilizing the chemical energy generated by the reaction of hydrogen and oxygen, can produce chemical products using a mixture of oxygen, hydrogen, and carbon dioxide as raw materials, making it possible to efficiently organicize carbon dioxide and to cultivate them in simple culture media. While such bacteria generally grow slowly, hydrogen-producing bacteria, the Hydrogenophilus genus, have an exceptionally fast growth rate. The Mitsubishi Research Institute Bulletin No. 34 1999 evaluated Hydrogenophilus bacteria, saying, "Their growth rate is so high that it cannot be compared to the carbon dioxide fixation ability of plants, and clearly demonstrates the high carbon dioxide fixation ability of microorganisms."

[0021] According to the present invention, by introducing a specific 3-dehydroshikimate dehydratase gene into a bacterium belonging to the genus Hydrogenophilus, 3-dehydroshikimate dehydratase that functions in the bacterium can be expressed, enabling protocatechuic acid to be produced on an industrial scale. As described above, among organisms capable of fixing carbon dioxide, Hydrogenophilus bacteria have particularly excellent carbon dioxide fixation ability. Therefore, the present invention has opened up the way to produce protocatechuic acid on an industrial scale using carbon dioxide. DETAILED DESCRIPTION OF THE INVENTION

[0022] The present invention will be described in detail below. (1) Transformants capable of producing protocatechuic acid The transformant of the present invention is a transformant obtained by introducing the 3-dehydroshikimate dehydratase gene (hereinafter sometimes abbreviated as "qsuB gene") of Corynebacterium glutamicum or Pseudomonas thermotolerans, or a homolog thereof, into a host Hydrogenophilus bacterium. That is, the transformant of the present invention is a Hydrogenophilus bacterium transformant having an exogenous qsuB gene such as the qsuB gene of Corynebacterium glutamicum or Pseudomonas thermotolerans, or a homolog thereof.

[0023] The qsuB gene used in the present invention does not need to have been identified as a qsuB gene, but may be a DNA encoding a polypeptide having 3-dehydroshikimate dehydratase activity, which refers to the enzyme activity of producing protocatechuic acid from 3-dehydroshikimic acid. Furthermore, in the present invention, the qsuB gene may be DNA of a qsuB gene isolated from a bacterium that exists in nature, or may be DNA artificially synthesized using techniques known to those skilled in the art.

[0024] The transformant of the present invention may be any bacterium of the genus Hydrogenophilus in which the qusB gene of Corynebacterium glutamicum, the qsuB gene of Pseudomonas thermotolerans, or a homolog thereof has been introduced, and includes transformants in which two or more of these genes have been introduced into a bacterium of the genus Hydrogenophilus, and transformants in which other genes have been introduced into a bacterium of the genus Hydrogenophilus in addition to these genes.

[0025] 3-Dehydroshikimate dehydratase gene (qsuB gene) In the present invention, DNA containing the nucleotide sequence of SEQ ID NO: 1 or 3 (particularly, DNA consisting of the nucleotide sequence of SEQ ID NO: 1 or 3) can be used as the qsuB gene. SEQ ID NO: 1 is the nucleotide sequence of the qsuB gene of Corynebacterium glutamicum, and SEQ ID NO: 3 is the nucleotide sequence of the qsuB gene of Pseudomonas thermotolerans. In the present invention, DNA can also be used that contains a base sequence that has 90% or more, preferably 95% or more, preferably 98% or more, and preferably 99% or more identity to SEQ ID NO: 1 or 3 (particularly, that consists of a base sequence that has 90% or more, preferably 95% or more, preferably 98% or more, and preferably 99% or more identity to SEQ ID NO: 1 or 3) and that encodes a polypeptide that has 3-dehydroshikimate dehydratase activity.

[0026] Furthermore, in the present invention, DNA encoding a polypeptide containing the amino acid sequence of SEQ ID NO: 2 or 4 (particularly, a polypeptide consisting of the amino acid sequence of SEQ ID NO: 2 or 4) can be used as the qsuB gene. SEQ ID NO: 2 is the amino acid sequence of 3-dehydroshikimate dehydratase from Corynebacterium glutamicum, and SEQ ID NO: 4 is the amino acid sequence of 3-dehydroshikimate dehydratase from Pseudomonas thermotolerans.

[0027] In addition, DNA can also be used that contains an amino acid sequence that has 90% or more, particularly 95% or more, particularly 98% or more, and particularly 99% or more identity to SEQ ID NO: 2 or 4 (particularly, consisting of an amino acid sequence that has 90% or more, particularly 95% or more, particularly 98% or more, and particularly 99% or more identity to SEQ ID NO: 2 or 4) and encodes a polypeptide that has 3-dehydroshikimate dehydratase activity. Furthermore, DNAs that include an amino acid sequence in which 1 to 60, 1 to 30, 1 to 10, 1 to 5, 1 to 4, 1 to 3, 1 to 2, or 1 amino acid has been deleted, substituted, inserted, or added in the amino acid sequence of SEQ ID NO: 2 or 4 (particularly, an amino acid sequence in which 1 to 60, 1 to 30, 1 to 10, 1 to 5, 1 to 4, 1 to 3, 1 to 2, or 1 amino acid has been deleted, substituted, inserted, or added in the amino acid sequence of SEQ ID NO: 2 or 4) and that encode a polypeptide that has 3-dehydroshikimate dehydratase activity can also be used.

[0028] A DNA sequence encoding a protein containing the amino acid sequence of SEQ ID NO: 2 or 4 may have various base substitutions in the coding region, taking into account codon degeneracy or codons preferred in Hydrogenophilus bacteria, as long as the amino acid sequence of the protein expressed from the coding region is not changed.

[0029] In the present invention, the identities of base sequences and amino acid sequences are values ​​calculated using GENETYX ver. 17 (GENETYX).

[0030] In the present invention, whether a test polypeptide has 3-dehydroshikimate dehydratase activity is confirmed by reacting the test polypeptide with 3-dehydroshikimic acid and detecting the produced protocatechuic acid by high-performance liquid chromatography.

[0031] In the present invention, a DNA that contains a nucleotide sequence that is 90% to less than 100% identical to the nucleotide sequence of a certain DNA and that encodes a polypeptide with the same type of activity is referred to as a "homolog" of that DNA. A polypeptide that contains an amino acid sequence that is 90% to less than 100% identical to the amino acid sequence of a certain polypeptide and has the same type of activity is referred to as a homolog of that polypeptide. A DNA that contains an amino acid sequence in which 1 to 60 amino acids are deleted, substituted, inserted, or added to the amino acid sequence of a certain polypeptide and encodes a polypeptide with the same type of activity is referred to as a homolog of that DNA.

[0032] Hydrogenophilus bacteria Examples of Hydrogenophilus bacteria include Hydrogenophilus thermoluteolus, Hydrogenophilus halorhabdus, Hydrogenophilus denitrificans, Hydrogenophilus hirschii, Hydrogenophilus islandicus, Hydrogenophilus thiooxidans, Hydrogenophilus sp. Mar3, and Hydrogenophilus sp. Z1038. Among these, Hydrogenophilus thermoluteolus is preferred because it has the highest growth rate and carbon dioxide fixation ability of any carbon dioxide fixation microorganism. Hydrogenophilus bacteria can be easily isolated from all over the world. A preferred strain of Hydrogenophilus thermorteolus is the TH-1 (NBRC 14978) strain. The TH-1 (NBRC 14978) strain exhibits the highest growth rate of any carbon-fixing microorganism [Agricultural and Biological Chemistry, 41, 685-690 (1977)] (doubling in one hour). The NBRC 14978 strain has been deposited internationally under the Budapest Treaty and is publicly available.

[0033] In the present invention, the host Hydrogenophilus bacterium may be a bacterium isolated from nature, or may be a bacterium isolated from nature that has been genetically modified. The modification may be carried out for the purpose of enabling high expression of the introduced 3-dehydroshikimate dehydratase gene. Such modification can be achieved by removing (curing) endogenous plasmids in Hydrogenophilus bacteria. Techniques for removing endogenous plasmids are well known, and include methods that utilize plasmid incompatibility, such as using chemicals such as novobiocin, SDS, acriflavine, or ethidium bromide, destabilizing the endogenous plasmid by introducing a plasmid with the same origin of replication as the endogenous plasmid, or destabilizing the endogenous plasmid by disrupting factors involved in the plasmid partition system.

[0034] Method for preparing transformants A method for introducing the qsuB gene into a bacterium belonging to the genus Hydrogenophilus to obtain a transformant is described below. The qsuB gene can be introduced into Hydrogenophilus bacteria using a general method for introducing foreign genes into bacteria. The qsuB gene may be introduced directly into Hydrogenophilus bacteria, or a transformation vector (e.g., a plasmid vector, a viral vector, a cosmid, a fosmid, a BAC, a YAC, etc.) incorporating the qsuB gene may be introduced into Hydrogenophilus bacteria. The vector used for transformation may contain DNA capable of autonomously replicating in Hydrogenophilus bacteria. Examples of such vectors include broad-host-range vectors such as pRK415 (GenBank: EF437940.1), pBHR1 (GenBank: Y14439.1), pMMB67EH (ATCC 37622), pCAR1 (NCBI Reference Sequence: NC_004444.1), pC194 (NCBI Reference Sequence: NC_002013.1), pK18mobsacB (GenBank: FJ437239.1), and pUB110 (NCBI Reference Sequence: NC_001384.1), as well as genetically modified versions of these vectors (e.g., pCAMO-6). Among these, pCAMO-6 is preferred. pCAMO-6 can be prepared by those skilled in the art according to the Examples. Examples of promoters contained in the vector include the tac promoter, lac promoter, trc promoter, and each of the Oxford Genetics OXB1, OXB11 to OXB20 promoters. Examples of terminators contained in the vector include the rrnB T1T2 terminator of the Escherichia coli rRNA operon, the bacteriophage λt0 transcription terminator, and the T7 terminator. The qsuB gene can be introduced (transformed) into a bacterium of the genus Hydrogenophilus using a common method, such as the calcium chloride method, calcium phosphate method, rubidium chloride method, or electric pulse method (electroporation method).

[0035] (2) Method for producing protocatechuic acid The present invention provides a method for producing protocatechuic acid using the transformant of the present invention described above. This method includes a step of culturing the transformant of the present invention in an inorganic or organic medium while supplying a carbon dioxide-containing gas, preferably a mixed gas containing hydrogen, oxygen, and carbon dioxide. The gas supplied is preferably a mixed gas consisting of hydrogen, oxygen, and carbon dioxide, but other gases may be mixed in as long as protocatechuic acid can be efficiently produced.

[0036] Hydrogenophilus bacteria can grow using hydrogen as an energy source and carbon dioxide as the sole carbon source, and therefore, when protocatechuic acid is produced by culturing the transformant of the present invention using substantially only carbon dioxide as a carbon source (particularly, using only carbon dioxide), carbon dioxide can be efficiently fixed. Therefore, in the method of the present invention, it is preferable to use an inorganic medium that does not contain carbon sources such as organic matter or carbonates, i.e., to culture using substantially only carbon dioxide as a carbon source (particularly, using carbon dioxide as the only carbon source). In the present invention, "using carbon dioxide as the sole carbon source" includes cases where unavoidable amounts of other carbon sources are mixed in.

[0037] The pH of the medium used for the culture is preferably 6.2 to 8, more preferably 6.4 to 7.4, and even more preferably 6.6 to 7. Within this range, the growth of the bacteria and the solubility of the mixed gas in the medium are high, and protocatechuic acid can be produced with high efficiency. In the case of batch culture, the mixed gas can be sealed in a sealed culture vessel and cultured statically or by shaking, and in the case of continuous culture, the mixed gas can be continuously supplied to a sealed culture vessel while cultured by shaking, or the transformant can be cultured in a sealed culture vessel while introducing the mixed gas into the medium by bubbling. Shaking culture is preferred because it improves the dissolution of the mixed gas into the medium. The volume ratio of hydrogen, oxygen, and carbon dioxide in the feed gas (hydrogen:oxygen:carbon dioxide) is preferably 1.75 to 7.5:1:0.25 to 3, more preferably 5 to 7.5:1:1 to 2, and even more preferably 6.25 to 7.5:1:1.5. Within this range, the growth of the bacteria is favorable, and protocatechuic acid can be produced efficiently. The supply rate of the mixed gas or raw material gas may be 10 to 60 L / hour, preferably 10 to 40 L / hour, and more preferably 10 to 20 L / hour per L of medium. Within this range, the growth of the transformant is favorable, protocatechuic acid can be produced efficiently, and waste of the mixed gas is reduced. The culture temperature is preferably 35 to 55° C., more preferably 37 to 52° C., and even more preferably 50 to 52° C. Within this range, the transformant grows well and protocatechuic acid can be produced efficiently. By culturing as described above, protocatechuic acid or a salt thereof is produced in the culture medium. [Example]

[0038] The present invention will now be described with reference to examples, but the technical scope of the present invention is not limited to the following examples.

[0039] (1) Construction of the plasmid vector (pCAMO-6) The construction method of the plasmid vector pCAMO-6 used for introducing the qsuB gene is described below. (1-1) Preparation of tac promoter DNA fragment PCR was performed using the following pair of primers to amplify the tac promoter DNA fragment, using the plasmid pMAL-c5X (New England Biolabs) as a template: PCR was performed in a Thermo Fisher Scientific 2720 Thermal Cycler using KOD FX Neo (Toyobo Co., Ltd.) as a reaction reagent. Primers for amplifying the tac promoter (a-1) 5'-TTTTATAA CCCGGG CCATCGACTGCACGGTGCACC-3' (SEQ ID NO: 5) (b-1) 5'-TGCTAGCACTGTTTCCTGTGTGAAATTGTTATCCG-3' (SEQ ID NO: 6) The primer (a-1) has an SmaI restriction enzyme site added thereto as shown by the underline. The reaction mixture prepared above was subjected to electrophoresis using 1% agarose gel, and a DNA fragment of approximately 0.3 kbp corresponding to the tac promoter was detected.

[0040] (1-2) Preparation of DNA fragments from the multicloning region To prepare the DNA fragment of the multicloning region, PCR was performed using the following pairs of primers to generate the first and second halves. PCR was performed using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as reaction reagents in a standard manner. This method does not use template DNA; instead, the 3' ends of each pair of primers anneal and extend to form double-stranded DNA. Primer for preparing the first half of the multicloning region (a-2) 5'-ggaaacagtgctagcagatctggaggagaaaggcatat-3' (SEQ ID NO: 7) (b-2) 5'-CAGTGCGGCCGCAAGCTTGTCGACGGAGCTCGAATTCGGATCCGATATCAGCATATGCGTTTCTCCTCCAGA-3' (SEQ ID NO: 8) The 3'-terminal base sequences of primers (a-2) and (b-2) are complementary to each other. Primer for preparing the latter half of the multicloning region (a-3)5'-ACAAGCTTGCGGCCGCACTGCAGCACCATCACCACCATCATTGATAAGATCCGGCTGCTAACAAAGCCCGAAAGGAAGCT-3' (SEQ ID NO: 9) (b-3) 5'-TATTTGAATCGAGTTATTGCTCAGCGGTGGCAGCAGCCAACTCAGCTTCCTTTCGGGCTTTGT-3' (SEQ ID NO: 10) The 3'-terminal base sequences of primers (a-3) and (b-3) are complementary to each other. The reaction mixture was subjected to electrophoresis on a 1% agarose gel, and approximately 0.1 kbp DNA fragments corresponding to the first and second halves of the multicloning region were detected. Each DNA fragment was excised from the agarose gel, and the DNA was recovered from the gel by freezing and thawing.

[0041] Overlap extension PCR was performed using the recovered DNA fragments corresponding to the first and second halves of the multicloning region as templates. The 5'-terminal base sequences of primers (b-2) and (a-3) used to amplify the template DNA fragments were complementary to each other. For overlap extension PCR, a combination of primers (a-2) and (b-3) was used to prepare DNA for the multicloning region. PCR was performed according to standard procedures using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as the reaction reagent. The resulting reaction mixture was subjected to electrophoresis using 1% agarose gel, and a DNA fragment of approximately 0.2 kbp corresponding to the multicloning region was detected.

[0042] (1-3) Preparation of a DNA fragment containing the rrnB terminator and the replication origin of pUC19 PCR was performed using the following pair of primers to amplify the DNA fragment of the rrnB terminator, using the plasmid pMAL-c5X (New England Biolabs) as a template. Primers for amplifying the rrnB terminator (a-4) 5'-TAACTCGATTCAAATAAAACGAAAGGCTCAGTCGA-3' (SEQ ID NO: 11) (b-4) 5'-CCTAGATCCGCGGAGTTTGTAGAAACGCAAAAAGG-3' (SEQ ID NO: 12) Furthermore, PCR was carried out using the following pair of primers to amplify a DNA fragment of the DNA replication origin region using the plasmid pUC19 as a template. Primers for amplifying the DNA replication origin of pUC19 (a-5) 5'-ACAAACTCCGCGGATCTAGGTGAAGATCCTTTTTG-3' (SEQ ID NO: 13) (b-5) 5'-CGTCCGCGGCCAGCAAAAGGCCAGGAACCGTAAAA-3' (SEQ ID NO: 14) PCR was carried out by a conventional method using a "DNA Thermal Cycler" manufactured by Life Technologies and KOD FX Neo (manufactured by Toyobo Co., Ltd.) as a reaction reagent. The resulting reaction mixture was subjected to electrophoresis on a 1% agarose gel, and a DNA fragment of approximately 0.3 kbp was detected for the rrnB terminator and approximately 0.8 kbp for the DNA replication origin of pUC19. Each DNA fragment was excised from the agarose gel, and the DNA was recovered from the gel by freezing and thawing.

[0043] Overlap extension PCR was performed using the recovered rrnB terminator and a DNA fragment corresponding to the DNA replication origin of pUC19 as templates. The 5'-terminal sequences of primers (b-4) and (a-5) used to amplify these template DNA fragments are complementary to each other. For overlap extension PCR, a combination of primers (a-4) and (b-5) was used to generate a DNA fragment linking the rrnB terminator and the replication origin of pUC19. PCR was performed according to standard procedures using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as reaction reagents. The resulting reaction mixture was subjected to electrophoresis using 1% agarose gel, and a DNA fragment of approximately 1.0 kbp corresponding to the DNA in which the rrnB terminator and the replication origin of pUC19 were linked was detected.

[0044] (1-4) Preparation of neomycin / kanamycin resistance gene DNA fragment PCR was performed by standard methods using the plasmid pK18mobsacB (GenBank: FJ437239.1) [Gene, 145, 69-73 (1994)], which contains the neomycin / kanamycin resistance gene (hereinafter sometimes referred to as "nptII") sequence, as a template. To amplify a DNA fragment containing the nptII gene sequence, PCR was performed using the following pair of primers. PCR was performed by standard methods using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as a reaction reagent. Primers for amplifying the nptII gene (a-6) 5'-TTGCTGGCCGCGGACGTAGAAAGCCTGTCCGCAGA-3' (SEQ ID NO: 15) (b-6)5'-GG CCCGGG TTATAAAAGCCAGTCATTAGGCCTATC-3' (SEQ ID NO: 16) The primer (b-6) has an SmaI restriction enzyme site added thereto as shown by the underline. The resulting reaction mixture was subjected to electrophoresis using 1% agarose gel, and a DNA fragment of approximately 1.0 kbp corresponding to the nptII gene was detected.

[0045] (1-5) Construction of circular plasmid Regarding the DNA fragments prepared in (1-1) to (1-4) above, the end of DNA fragment (1-1) has a 16-bp homologous sequence to the ends of DNA fragments (1-4) and (1-2), the end of DNA fragment (1-2) has a 16-bp homologous sequence to the ends of DNA fragments (1-1) and (1-3), the end of DNA fragment (1-3) has a 16-bp homologous sequence to the ends of DNA fragments (1-2) and (1-4), and the end of DNA fragment (1-4) has a 16-bp homologous sequence to the ends of DNA fragments (1-3) and (1-1). Therefore, the DNA fragments (1-1), (1-2), (1-3), and (1-4) can be ligated to form a circular DNA by Gibson assembly. To ligate the DNA fragments prepared in (1-1) to (1-4) into a circular DNA, Gibson assembly was performed using Gibson Assembly Master Mix (New England Biolabs). The resulting reaction mixture was used to transform Escherichia coli JM109 by the calcium chloride method and plated on LB solid medium containing 50 μg / mL kanamycin. The strain grown on the medium was cultured in liquid culture by standard methods, and plasmid DNA was extracted from the culture medium and reacted with the restriction enzyme SmaI. Electrophoresis of this reaction mixture on a 1% agarose gel revealed a DNA fragment of approximately 2.3 kbp, corresponding to the size of the single DNA fragment prepared in (1-1) to (1-4), confirming that they had been ligated. This circular plasmid DNA, which replicates in E. coli, was designated pCAMO-1.

[0046] (1-6) Construction of plasmid vector (pCAMO-4) Hydrogenophilus thermorteolus strain TH-1 was inoculated into a test tube containing 5 mL of liquid medium A (3.0 g of (NH4)2SO4, 1.0 g of KH2PO4, 2.0 g of K2HPO4, 0.25 g of NaCl, 0.014 g of FeSO4·7H2O, 0.5 g of MgSO4·7H2O, 0.03 g of CaCl2, 4.0 mg of MoO3, 28 mg of ZnSO4·7H2O, 2.0 mg of CuSO4·5H2O, 4.0 mg of H3BO3, 4.0 mg of MnSO4·5H2O, and 4.0 mg of CoCl2·6H2O dissolved in 1 L of distilled water (pH 7.0)) using a platinum loop. The test tube was then filled with a 7.5:1:1.5 H2:O2:CO2 gas mixture and cultured at 50°C. The endogenous plasmid pTH1 [Microbiol Resour Announcement. 2018 Aug 16;7(6)] was extracted from the culture medium using the standard alkaline SDS method. The prepared pTH-1 of about 66 kbp was cleaved with restriction enzymes ScaI and PvuII, and the plasmid pCAMO-1 was cleaved with restriction enzyme SmaI, and the two were ligated together using T4 DNA (Takara Bio Inc.).

[0047] The resulting ligation solution was used to transform the Hydrogenophilus thermorteolus TH-1 strain (NBRC 14978) by electroporation. The transformants were grown on solid medium A containing 50 μg / mL kanamycin [(NH4)2SO4 3.0 g, KH2PO4 1.0 g, K2HPO4 2.0 g, NaCl 0.25 g, FeSO4 7H2O 0.014 g, MgSO4 7H2O 0.5 g, CaCl2 0.03 g, MoO3 4.0 mg, ZnSO4 7H2O 28 mg, CuSO4 5H2O 2.0 mg, H3BO3 4.0 mg, MnSO4 5H2O 4.0 mg, CoCl2 6H2O 4.0 mg, and 15 g of agar dissolved in 1 L of distilled water (pH 7.0). 7.0)] and cultured at 50°C for 60 hours in a chamber filled with a mixed gas of H2:O2:CO2 = 7.5:1:1.5. The seven strains grown on solid medium A were inoculated using a platinum loop into test tubes containing 5 mL of liquid medium A containing 50 μg / mL kanamycin. The test tubes were then filled with a gas mixture of H2:O2:CO2 = 7.5:1:1.5 and cultured with shaking at 50°C. Plasmid DNA was extracted from the culture medium and subjected to electrophoresis on a 1% agarose gel. This confirmed that all seven strains contained the same plasmid DNA of approximately 5.5 kbp.

[0048] Using the extracted plasmid as a template, PCR was performed using the following pair of primers, which correspond to both sides of the SmaI restriction enzyme site of pCAMO-1, to amplify the DNA fragment of the endogenous plasmid pTH1 inserted into the SmaI restriction enzyme site of pCAMO-1. PCR was performed by standard methods using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as a reaction reagent. Primers for amplifying the inserted pTH1 DNA fragment (a-7) 5'-AATTGTCAGATAGGCCTAATGACTGGCTTTTATAA-3' (SEQ ID NO: 17) (b-7) 5'-TGACGCCAGAAGCATTGGTGCACCGTGCAGTCGAT-3' (SEQ ID NO: 18) The resulting reaction mixture was subjected to electrophoresis using a 1% agarose gel, and a DNA fragment of approximately 3.2 kbp was detected. In other words, the resulting plasmid has a 3.2 kbp DNA fragment, which is a part of pTH1, inserted into the SmaI restriction enzyme site of the pCAMO-1 plasmid. Because this 3.2 kbp DNA fragment contains a replication origin that functions in Hydrogenophilus thermorteolus cells, the resulting plasmid replicates in Hydrogenophilus thermorteolus cells. The constructed plasmid was designated pCAMO-4.

[0049] (1-7) Construction of plasmid vector (pCAMO-5) A mixture of equimolar amounts of the following pair of oligonucleotides was slowly cooled from 98°C to 20°C to prepare a double-stranded DNA fragment to which the oligonucleotides were annealed. Both ends of this DNA fragment were equivalent to the protruding ends obtained by cleavage with the restriction enzymes BglII and NdeI. This DNA fragment and a fragment obtained by cleaving pCAMO-4 with the restriction enzymes BglII and NdeI were ligated together using T4 DNA ligase (Takara Bio Inc.). (a-8) 5'-GATCTGGAGGAGAAACGCA-3' (SEQ ID NO: 19) (b-8) 5'-TATGCGTTTCTCCTCCA-3' (SEQ ID NO: 20) The constructed plasmid was designated pCAMO-5.

[0050] (1-8) Construction of plasmid vector (pCAMO-6) PCR was performed using the endogenous plasmid pTH-1 as a template and the following pair of primers to amplify a DNA fragment of the mazF gene encoding the plasmid stabilization factor: PCR was performed by standard methods using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as a reaction reagent. Primers for amplifying the mazF gene (a-9) 5'-GAGGCCATCTAGGCCATGAGTAAGTCTGACGGAAC-3' (SEQ ID NO: 21) (b-9) 5'-ATCCGGCACCCATATCTGAACCGGACGCAAACCCG-3' (SEQ ID NO: 22)

[0051] PCR was performed using the endogenous plasmid pTH-1 as a template and the following pair of primers to amplify a DNA fragment of the mazE gene encoding the plasmid stabilization factor: PCR was performed by standard methods using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as a reaction reagent. Primers for amplifying the mazE gene (a-10) 5'-TTCAGATATGGGTGCCGGATACCCGCCGCCCGGGC-3' (SEQ ID NO: 23) (b-10) 5'-AAGGCCTTCATGGCCTTATTTCGCGATTCCCAAGA-3' (SEQ ID NO: 24)

[0052] The 3' end of the mazF DNA fragment shares a 20-bp homologous sequence with the 5' end of the mazE DNA fragment. Therefore, the mazF and mazE DNA fragments can be ligated by PCR. The DNA fragments prepared above were mixed, and the ligated DNA fragment was amplified using primers (a-9) and (b-10) as a template. PCR was performed by standard methods using a Life Technologies DNA Thermal Cycler and KOD FX Neo (Toyobo Co., Ltd.) as the reaction reagent. The resulting reaction mixture was subjected to electrophoresis using 1% agarose gel, and a DNA fragment of approximately 0.7 kbp corresponding to the DNA formed by ligating the mazF and mazE DNA fragments was detected.

[0053] The prepared DNA fragment of about 0.7 kbp was cleaved with the restriction enzyme SfiI, and the plasmid pCAMO-5 was cleaved with the restriction enzyme SfiI, and the fragments were ligated together using T4 DNA ligase (Takara Bio Inc.). The constructed plasmid was designated pCAMO-6.

[0054] (2) Construction of an expression plasmid for the qsuB gene The qsuB gene expression plasmid was constructed by seamless cloning, a method of cloning the target DNA into a vector using recombination between homologous sequences. DNA fragments of the qsuB genes from the following bacteria were amplified by PCR. Corynebacterium glutamicum (SEQ ID NO: 1) Pseudomonas thermotolerans (SEQ ID NO: 3)

[0055] The following primers were used for PCR: PCR was performed by standard methods using a DNA Thermal Cycler manufactured by Life Technologies and KOD One PCR Master Mix (manufactured by Toyobo Co., Ltd.) as a reaction reagent. Primers for amplifying the qsuB gene of Corynebacterium glutamicum (a-11) 5'-CTGGAGGAGAAACGCATATGCGTACATCCATTGCCACTGTTTG-3' (SEQ ID NO: 25) (b-11) 5'-CGACGGAGCTCGAATTCCTAGTTTGGGATTCCCCGCTCGAGGTC-3' (SEQ ID NO: 26) Primers (a-11) and (b-11) contain sequences homologous to the vector pCAMO-6. Primers for amplifying the qsuB gene of Pseudomonas thermotolerans (a-12) 5'-CTGGAGGAGAAACGCATATGCAGCGTTCGATCGCCACCGTCTC-3' (SEQ ID NO: 27) (b-12) 5'-CGACGGAGCTCGAATTCTCAGAGCCTGGGCTGACGAGCGGCGC-3' (SEQ ID NO: 28) Each of the primers (a-12) and (b-12) contains a sequence homologous to the vector pCAMO-6. The resulting reaction mixture was subjected to electrophoresis using 1% agarose gel, and a DNA fragment of approximately 1.9 kbp was detected for the 3-dehydroshikimate dehydratase gene derived from each strain. A DNA fragment corresponding to the qsuB gene was excised from the agarose gel, and a DNA fragment of the 3-dehydroshikimate dehydratase gene was recovered from the agarose gel using a GEL / PCR Purification Mini Kit (FAVORGEN).

[0056] To perform seamless cloning, the plasmid vector pCAMO-6 was amplified by PCR. The following primers were used for PCR. PCR was performed using a Life Technologies DNA Thermal Cycler and KOD One PCR Master Mix (Toyobo Co., Ltd.) as the reaction reagent, according to standard procedures. Primers used for amplification of the plasmid vector pCAMO-6 (a-13) 5'-GAATTCGAGCTCCGTCGACA-3' (SEQ ID NO: 29) (b-13) 5'-ATGCGTTTCTCCTCCAGATC-3' (SEQ ID NO: 30) The DNA fragment corresponding to the vector gene was excised from the agarose gel, and the DNA fragment of the vector gene was recovered from the agarose gel using a GEL / PCR Purification Mini Kit (FAVORGEN).

[0057] The DNA fragment of the vector pCAMO-6 synthesized above and the DNA fragment of the qsuB gene were ligated together using recombinase extracted from the Escherichia coli JM109 strain. The resulting reaction mixture was used to transform Escherichia coli JM109 strain by the heat shock method, and the transformed transformant was plated on LB medium containing 50 μg / mL of kanamycin and cultured at 37° C. for 24 hours. Each strain growing on LB medium was inoculated using a platinum loop into a test tube containing 5 mL of LB liquid medium containing 50 μg / mL of kanamycin, and cultured with shaking at 37°C. Plasmid DNA was extracted from the culture medium. The sequence of the qsuB gene inserted into each plasmid was analyzed by the Sanger method at Eurofins Genomics, and it was confirmed to match the sequence in the database.

[0058] (3) Transformants of Hydrogenophilus thermorteolus (3-1) Gene transfer The resulting plasmid was used to transform the Hydrogenophilus thermorteolus TH-1 strain by electroporation. The transformants were then plated onto LB solid medium containing 50 μg / mL kanamycin and cultured at 52°C for 24 hours. Each strain grown on LB solid medium was inoculated onto LB solid medium containing 50 μg / mL kanamycin using a platinum loop and cultured at 52°C for 24 hours. Amplification of the insert fragment of each plasmid was confirmed for each strain grown on LB solid medium by PCR. PCR was performed using a Life Technologies DNA Thermal Cycler and KOD One PCR Master Mix (Toyobo Co., Ltd.) as the reaction reagent, according to standard procedures. As a result, amplification of a DNA fragment of approximately 1.9 kbp corresponding to the qsuB gene was confirmed. The plasmids containing the qsuB gene derived from each bacterium and the Hydrogenophilus thermorteolus TH-1 transformants transformed with these plasmids were named as shown in Table 1.

[0059] (3-2) Formation of protocatechuic acid The qsuB gene-introduced strain prepared as described above was inoculated into liquid medium A containing 50 μg / mL kanamycin using a platinum loop. A gas mixture of H2:O2:CO2 = 7.5:1:1.5 was supplied during the culture, and the strain was cultured with shaking at 52°C for 72 hours. A strain in which the empty vector pCAMO-6 had been introduced into the TH-1 strain was also cultured in the same manner. After the culture, the culture supernatant was obtained by centrifugation (4°C, 5,000 g, 10 minutes). The concentration of protocatechuic acid in the culture supernatant was measured using high-performance liquid chromatography (Shimadzu Corporation) under the following conditions. Mobile phase A: 0.1% phosphoric acid water Mobile phase B: 50% acetonitrile Flow rate: 1mL / min Column: CAPCELLPAK MGII, 5.0 μm, 4.6 mm ID x 150 mm Column temperature: 40℃ PDA temperature: 40℃ PDA: 200-300nm Reference wavelength: 210nm As a result, as shown in Table 1, 0.033 mM protocatechuic acid was detected in the culture supernatant of the QsuB01 strain, into which the qsuB gene of Corynebacterium glutamicum had been introduced. 1.9 mM protocatechuic acid was detected in the QsuB02 strain, into which the 3-dehydroshikimate dehydratase gene of Pseudomonas thermotolerans had been introduced. It was demonstrated that the strains into which the qsuB genes of Corynebacterium glutamicum and Pseudomonas thermotolerans had been introduced were capable of producing protocatechuic acid, unlike strains into which the qsuB gene had not been introduced.

[0060] [Table 1]

[0061] The nucleotide sequence of the qsuB gene of Corynebacterium glutamicum and that of the qsuB gene of Pseudomonas thermotolerans are significantly different, with only about 42% identity between the two. As such, the nucleotide sequences of foreign genes capable of expressing proteins that function in bacteria of the genus Hydrogenophilus do not show any consistent tendency, making it difficult even for those skilled in the art to predict. Furthermore, as described in Patent Document 2, the qsuB gene of Corynebacterium glutamicum enhances protocatechuic acid production when introduced into microorganisms other than those of the genus Hydrogenophilus, but in the genus Hydrogenophilus, the qsuB gene of Pseudomonas thermotolerans produced protocatechuic acid much more efficiently than the qsuB gene of Corynebacterium glutamicum. The expression efficiency of functional 3-dehydroshikimate dehydratase is not parallel between other microorganisms and those of Hydrogenophilus bacteria. Therefore, it is not easy to search for a qsuB gene that is expressed in Hydrogenophilus bacteria and is effective in producing protocatechuic acid.

[0062] The transformants of the Hydrogenophilus bacteria of the present invention can be prepared by referring to the description in the Examples. In addition, the other strains described herein are either internationally deposited under the Budapest Treaty, are held by an institution from which they can be obtained without conditions, are commercially available, or can be prepared by those skilled in the art based on the present specification and are publicly available. [Industrial Applicability]

[0063] The transformant of the present invention can produce protocatechuic acid with high efficiency using carbon dioxide as the sole carbon source, and therefore contributes to the industrial production of protocatechuic acid and chemical products using protocatechuic acid as a raw material with high efficiency while resolving global warming caused by increased carbon dioxide.

Claims

1. A transformant obtained by introducing the following 3-dehydroshikimate dehydratase gene (a), (b), (c), (d), or (e) into a bacterium belonging to the genus Hydrogenophilus: (a) DNA containing the base sequence of SEQ ID NO: 1 or 3 (b) DNA containing a nucleotide sequence having 90% or more identity with SEQ ID NO: 1 or 3 and encoding a polypeptide having 3-dehydroshikimate dehydratase activity. (c) DNA encoding a polypeptide comprising the amino acid sequence of SEQ ID NO: 2 or 4 (d) DNA encoding a polypeptide having 90% or more identity to SEQ ID NO: 2 or 4 and having 3-dehydroshikimate dehydratase activity. (e) DNA encoding a polypeptide having 3-dehydroshikimate dehydratase activity, which contains an amino acid sequence of SEQ ID NO: 2 or 4 in which 1 to 60 amino acids have been deleted, substituted, inserted, or added.

2. 2. The transformant according to claim 1, wherein the bacterium of the genus Hydrogenophilus is Hydrogenophilus thermorteolus.

3. A method for producing protocatechuic acid, comprising a step of culturing the transformant according to claim 1 or 2 using carbon dioxide as substantially the only carbon source.

Citation Information

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