Promoter polynucleotides, signal polypeptides, and uses thereof

The PR4 promoter and SP4 signal polypeptide facilitate high-level expression and secretion of foreign proteins in lactic acid bacteria, addressing the need for efficient protein production in microorganisms.

JP7766133B2Active Publication Date: 2025-11-07MEDY TOX INC
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
JP2024076612
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-12-29
Filing Date
2024-05-09
Publication Date
2025-11-07
Estimated Expiration
2038-11-08

AI Technical Summary

Technical Problem

There is a need for new promoters and signal polypeptides from lactic acid bacteria to achieve high levels of foreign product expression and secretion in microorganisms such as bacteria and yeasts, particularly for proteins like IL-10 and enzymes like amylase.

Method used

The use of a promoter with 85% or more sequence identity to SEQ ID NO:1 (PR4 promoter) and a signal polypeptide with 85% or more sequence identity to SEQ ID NO:2 (SP4 signal polypeptide) in recombinant polynucleotides and host cells, which are operably linked to express and secrete foreign proteins efficiently.

Benefits of technology

The PR4 promoter and SP4 signal polypeptide enable efficient expression and extracellular secretion of foreign proteins in lactic acid bacteria, enhancing production yields and secretion efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007766133000001
    Figure 0007766133000001
  • Figure 0007766133000002
    Figure 0007766133000002
  • Figure 0007766133000003
    Figure 0007766133000003
Patent Text Reader

Abstract

To provide a lactic acid bacterial strain that can efficiently express and / or extracellularly secrete a foreign protein.SOLUTION: Provided is Lactobacillus brevis LMT1-46 (KCTC 13423BP), in which a promoter with a specific nucleotide sequence and a signal polypeptide with a specific amino acid sequence are functional therein.SELECTED DRAWING: Figure 3
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] This application claims priority to Korean Patent Application No. 10-2017-0184819, filed with the Korean Intellectual Property Office on December 29, 2017, the disclosure of which is incorporated herein by reference in its entirety.

[0002] The present invention relates to a promoter polynucleotide, a signal polypeptide, and uses thereof. [Background technology]

[0003] Microorganisms such as bacteria, yeasts and molds are becoming increasingly important as hosts for recombinant expression. Bacteria such as Lactobacillus sp. or Streptococcus sp. are useful as delivery vehicles. Additionally, generally recognized as safe (GRAS) microorganisms may be administered to humans or animals.

[0004] In order to achieve high levels of foreign product expression in lactic acid bacteria, there is a need for new promoters and signal polypeptides isolated from lactic acid bacteria that are capable of expressing and secreting foreign products, particularly proteins, at high levels. Summary of the Invention [Problem to be solved by the invention]

[0005] One aspect provides an isolated promoter. Another aspect provides a recombinant polynucleotide comprising the promoter. Another aspect provides a host cell containing the recombinant polynucleotide. Another aspect provides a method of producing a product using the host cell. Another aspect provides isolated signal polypeptides and polynucleotides encoding same. Another aspect provides a recombinant polynucleotide comprising a polynucleotide encoding the isolated signal polypeptide. Another aspect provides a host cell containing a recombinant polynucleotide encoding the isolated signal polypeptide. Another aspect provides a method for producing a protein using a host cell containing a recombinant polynucleotide encoding the isolated signal polypeptide. [Means for solving the problem]

[0006] One aspect provides an isolated promoter comprising a polynucleotide having 85% or more sequence identity to the nucleotide sequence of SEQ ID NO:1 (hereinafter also referred to as the "PR4 promoter").

[0007] Another aspect provides a recombinant polynucleotide comprising the promoter. As used herein, the term "promoter" refers to a region on a nucleic acid molecule, particularly a DNA molecule, to which RNA polymerase binds and initiates transcription. A promoter is generally located upstream, i.e., 5', of the transcribed sequence regulated by the promoter. The promoter may also be a constitutive promoter. The promoter may also have 80% or more, 85% or more, 90% or more, 95% or more, 96% or more, 97% or more, 98% or more, 99% or more, or 100% sequence identity with the nucleotide sequence of SEQ ID NO: 1. The promoter may also have the nucleotide sequence of SEQ ID NO: 1.

[0008] The recombinant polynucleotide may also be a vector. As used herein, the term "vector" refers to a nucleic acid molecule capable of propagating another nucleic acid linked thereto. The term "vector" includes not only vectors inserted into the genome of a host cell into which it is introduced, but also vectors acting as self-replicating nucleic acid structures. An expression vector refers to a vector capable of directing the expression of a nucleic acid to which it is operably linked. The vector may be derived from a plasmid or a virus.

[0009] The vector may be a cloning vector or an expression vector. The expression vector may comprise a nucleotide sequence encoding a protein operably linked to the promoter.

[0010] The expression vector also includes the promoter and a first polynucleotide comprising a nucleotide sequence encoding a product, the first polynucleotide being operably linked to the promoter. The product may be anything that can be produced by expression of the first polynucleotide. The product may be a polypeptide or a nucleic acid. The polypeptide may be a cytokine such as IL-10 or an enzyme such as amylase. The nucleic acid may be DNA or RNA.

[0011] As used herein, the term "operably linked" refers to a linkage that allows transcription or translation to occur and produce a functional transcription or translation product.

[0012] The vector may further include one or more selected from the group consisting of a ribosomal binding site (RBS), a cloning site, a selection marker gene, a transcription terminator, and a translation initiation factor. The cloning site is also operably linked to the promoter. The cloning site is also a multiple cloning site.

[0013] The recombinant polynucleotide also has a second polynucleotide (hereinafter also referred to as "SP4 signal polypeptide") operably linked between the promoter and the first polynucleotide, the second polynucleotide encoding a signal polypeptide comprising an amino acid sequence having 85% or more sequence identity to the amino acid sequence of SEQ ID NO: 2. In this case, the first polynucleotide also encodes a polypeptide.

[0014] As used herein, the term "signal polypeptide" refers to a sequence present at the N-terminus of a secretory protein precursor but not present in the naturally occurring mature protein. The signal polypeptide may be cleaved from the protein precursor. Generally, a signal polypeptide is cleaved by a protease when secreted extracellularly. The protease is also generally referred to as a signal peptidase. The signal polypeptide may have 80% or more, 85% or more, 90% or more, 95% or more, 96% or more, 97% or more, 98% or more, 99% or more, or 100% identity with the amino acid sequence of SEQ ID NO: 2. The signal polypeptide has the activity of secreting the expression product of a gene fused in-frame with the nucleotide sequence encoding it extracellularly.

[0015] As used herein, "secretion" of a protein or polypeptide molecule includes transport of the protein or polypeptide molecule to the outside of the bacterial cell, the protein or polypeptide molecule being present in a completely free form in the culture medium, only a portion of the protein or polypeptide molecule being present outside the bacterial cell, and the protein or polypeptide molecule being present on the surface layer of the bacterial cell.

[0016] The signal polypeptide is derived from Lactobacillus paracasei and has secretion-promoting activity. The second polynucleotide has the nucleotide sequence of SEQ ID NO:3. Another aspect provides a host cell comprising the recombinant polynucleotide. The host cell may be a bacterial cell. The bacterial cell may be a Gram-positive bacterium. The bacterial cell may be a lactic acid bacterium or a bacterium belonging to the genus Escherichia. The lactic acid bacterium may be a bacterium belonging to the genera Lactobacillus, Lactococcus, Bifidobacteria, Streptococcus, Leuconostoc, Weissella, Pediococcus, or Enterococcus.

[0017] The recombinant polynucleotide may be introduced into the host cell by any conventional nucleic acid transfer method, including electroporation, transformation, transduction, or transfection.

[0018] Another aspect provides a method for producing a product or its metabolite, comprising culturing the host cell in a medium to produce a product and isolating the product or its metabolite from the culture. The product includes any product produced by expression of a first polynucleotide. The product may be a polypeptide or a nucleic acid. The polypeptide may be a cytokine such as IL-10 or an enzyme such as amylase. The nucleic acid may be DNA or RNA. The metabolic product may be a substance produced by the product exerting its activity in a cell. For example, if the product is an enzyme, the metabolic product may be a direct product produced by the exertion of the enzymatic activity or a substance produced by a metabolic pathway to which the enzyme belongs.

[0019] In the above method, the culturing step can be carried out by a general method known in the art depending on the host cell selected. The culture medium used for the culture may contain, individually or as a mixture, carbohydrates such as glucose, saccharose, lactose, fructose, maltose, and starch as a sugar source; oils and fats such as soybean oil, sunflower oil, castor oil, and coconut oil; fatty acids such as palmitic acid, stearic acid, and linolenic acid; and organic acids such as glycerol and acetic acid. The medium may contain, individually or as a mixture, peptone, yeast extract, meat broth, malt extract, corn steep liquor, soybean meal, and urea as a nitrogen source, or inorganic compounds such as ammonium sulfate, ammonium chloride, ammonium phosphate, ammonium carbonate, or ammonium nitrate. The medium may contain, as a phosphorus source, for example, potassium dihydrogen phosphate, dipotassium hydrogen phosphate, or a corresponding sodium-containing salt. The medium may also contain metal salts necessary for growth, such as magnesium sulfate or ferrous sulfate. Essential growth substances such as amino acids and vitamins, or appropriate precursors, may also be added to the culture during the cultivation process in an appropriate manner, for example, batchwise or continuously.

[0020] The cultivation may be carried out under aerobic conditions, microaerobic conditions, anaerobic conditions, or a combination thereof.

[0021] The method may further include a step of isolating the product from the culture. The isolation can be performed by selecting an appropriate method depending on the type of product selected. When the product is a protein, the isolation may include centrifuging the culture medium to remove cells and isolating the protein from the supernatant, or recovering and disrupting the cells to isolate the protein. The isolation may involve one or more of salting out, precipitation, chromatography, centrifugation, and filtration. The chromatography may be one or more of anion exchange, cation exchange, size exclusion, and affinity chromatography.

[0022] Another aspect provides an isolated signal polypeptide comprising an amino acid sequence having 85% or greater sequence identity to the amino acid sequence of SEQ ID NO: 2. The signal polypeptide may also have 80% or greater, 85% or greater, 90% or greater, 95% or greater, 96% or greater, 97% or greater, 98% or greater, 99% or greater, or 100% sequence identity to the amino acid sequence of SEQ ID NO: 2.

[0023] Another aspect provides a polynucleotide encoding the signal polypeptide. The polynucleotide encoding the signal polypeptide may have the nucleotide sequence of SEQ ID NO:3.

[0024] Another aspect provides an expression vector comprising a second polynucleotide encoding the signal polypeptide and a first polynucleotide encoding a protein, wherein the second polynucleotide is operably linked to the promoter and the first polynucleotide is fused in-frame with the second polynucleotide.

[0025] Another aspect provides a host cell comprising the expression vector. The host cell may be a bacterial cell. The bacterial cell may be a Gram-positive bacterium. The bacterial cell may be a lactic acid bacterium or a bacterium belonging to the genus Escherichia. The lactic acid bacterium may be a bacterium belonging to the genus Lactobacillus, Lactococcus, Bifidobacterium, Streptococcus, Leuconostoc, Weissella, Pediococcus, or Enterococcus.

[0026] The recombinant polynucleotide can be introduced into the host cell by conventional nucleic acid transfer methods, including electroporation, transformation, transduction, or transfection.

[0027] Another aspect provides a method of producing a protein comprising culturing the host cell in a culture medium to produce the protein, and isolating the protein from the culture.

[0028] In the above method, the culturing step can be carried out by a general method known in the art depending on the host cell selected. The culture medium used for the culture may contain, individually or as a mixture, carbohydrates such as glucose, saccharose, lactose, fructose, maltose, and starch as a sugar source; oils and fats such as soybean oil, sunflower oil, castor oil, and coconut oil; fatty acids such as palmitic acid, stearic acid, and linolenic acid; and organic acids such as glycerol and acetic acid. The medium may contain, individually or as a mixture, peptone, yeast extract, meat broth, malt extract, corn steep liquor, soybean meal, and urea as a nitrogen source, or inorganic compounds such as ammonium sulfate, ammonium chloride, ammonium phosphate, ammonium carbonate, or ammonium nitrate. The medium may contain, as a phosphorus source, for example, potassium dihydrogen phosphate, dipotassium hydrogen phosphate, or a corresponding sodium-containing salt. The medium may also contain metal salts necessary for growth, such as magnesium sulfate or ferrous sulfate. Essential growth substances such as amino acids and vitamins, or appropriate precursors, may also be added to the culture during the cultivation process in an appropriate manner, for example, batchwise or continuously.

[0029] The cultivation may be carried out under aerobic conditions, microaerobic conditions, anaerobic conditions, or a combination thereof.

[0030] The method may further include isolating the protein from the culture. The isolation may involve centrifuging the culture medium to remove cells and isolating the protein from the supernatant, or harvesting and disrupting the cells and isolating the protein. The isolation may involve one or more of salting out, precipitation, chromatography, centrifugation, and filtration. The chromatography may be one or more of anion exchange, cation exchange, size exclusion, and affinity chromatography. [Effects of the Invention]

[0031] The isolated promoters according to one aspect, and recombinant polynucleotides containing them, can be used for efficient expression of foreign genes.

[0032] In another aspect, the host cell containing the recombinant polynucleotide is capable of efficiently expressing the foreign gene.

[0033] According to another aspect, the method for producing a product using the host cell can be used to efficiently produce the product.

[0034] In another aspect, the isolated signal polypeptide, the polynucleotide encoding it, and the recombinant polynucleotide comprising the polynucleotide can also be used to secrete foreign proteins outside the cell. Host cells containing a recombinant polynucleotide that includes a polynucleotide encoding the isolated signal polypeptide according to another aspect can efficiently secrete the product of a foreign gene outside the cell.

[0035] According to another aspect, the method for producing a protein using the host cell can efficiently produce the protein. [Brief explanation of the drawings]

[0036] [Figure 1] FIG. 1 shows the structure of pMT48, a shuttle vector between E. coli and lactic acid bacteria. [Figure 2] FIG. 1 shows the structure of the pMT54-PR4-IL10-SP4 vector. [Figure 3] FIG. 1 shows the results of transforming the pMT54-PR4-IL10-SP4 vector into three types of lactic acid bacteria and examining the level of extracellular expression. [Figure 4] FIG. 1 shows the results of transforming the pMT54-PR4-amylase-SP4 vector into the LMT1-21 strain and examining the level of extracellular expression. [Figure 5]This is a graph showing the measurement of IL-10 mRNA levels in the pMT54-P11-IL10-SP4 vector and the pMT54-PR4-IL10-SP4 vector for comparison of promoter strength. [Figure 6] 1 is a graph measuring IL-10 secreted from LMT1-21 transformed with pMT54-PR4-IL10-SP4 and pMT54-PR4-IL10-USP45 for comparison of signal peptide strength. DETAILED DESCRIPTION OF THE INVENTION [Example]

[0037] The present invention will be described in more detail below through examples. However, these examples are for illustrative purposes only and the scope of the present invention is not limited by these examples. Example 1: Cloning of promoter and signal polypeptide and confirmation of their effects 1. Cloning of promoter and signal polypeptide The promoter and nucleotide sequences encoding the signal polypeptide were amplified by PCR. Specifically, a 593 kb amplification product was obtained by PCR using the genome of Lactobacillus paracasei LMT1-21 (accession number KCTC 13422BP) as a template and primers PS4_F / R (SEQ ID NOs: 4 and 5).

[0038] The amplified product was ligated to pMT54 vector digested with EcoRV and SalI via infusion cloning (Clontech). The vector was then transformed into Escherichia coli Top10 strain (Invitrogen) using the method of Sambrook et al. (Sambrook et al., Molecular cloning: A laboratory manual, 2nd edition, 1989). The transformed E. coli was then plated on an LB plate supplemented with 10 μg / ml chloramphenicol to obtain colonies. The pMT54 vector was recovered from the resulting colonies and analyzed for sequence. It was confirmed to contain the nucleotide sequence (SEQ ID NO: 3) encoding PR4 (SEQ ID NO: 1). Hereinafter, this vector will be referred to as the MT54-PR4-SP4 vector.

[0039] The pMT54 vector is a vector in which a multiple cloning site (SEQ ID NO: 6) has been introduced into the HindIII and XhoI enzyme sites of the pMT48 vector. The multiple cloning site not only contains multiple restriction enzyme recognition sites but also contains a tag with human influenza hemagglutinin (HA) to confirm expression of the target protein. The pMT48 vector is a vector in which the Rep gene (SEQ ID NO: 7), which is the replication origin sequence of the plasmid pLMT1-74, has been introduced into the EcoRI site of pUC19 (New England Biolabs). The pMT48 vector was constructed as follows.

[0040] First, a provisional plasmid, pLMT1-74, was isolated from the LMT1-74 strain (Leuconostoc mesenteroides KCTC 13164BP) isolated from kimchi using a Plasmid midi kit (Qiagen, Inc., Valencia, CA). The Rep gene (SEQ ID NO: 7), which is the replication origin sequence of the plasmid pLMT1-74, was amplified by PCR using the plasmid pLMT1-74 as a template and the oligonucleotides SEQ ID NOs: 8 and 9 as primers. The amplified product was digested with EcoRI and ligated with pUC19 digested with the same enzyme to obtain the pMT48 vector. Alternatively, the polynucleotide of SEQ ID NO: 7 could be chemically synthesized. The vector pUC19 has the nucleotide sequence of SEQ ID NO: 10.

[0041] Figure 1 shows the structure of the shuttle vector pMT48 between E. coli and lactic acid bacteria. In this vector, Rep has the nucleotide sequence of SEQ ID NO: 7 and is a partial sequence of the Rep origin sequence, which is the replication origin of the broad-spectrum lactic acid bacteria host vector pLMT1-74, and confers replication ability to lactic acid bacteria. E. coli ori is the DNA replication origin of E. coli and is the pUC19 ori, i.e., has the nucleotide sequence of SEQ ID NO: 11. CM is a gene encoding chloramphenicol acetyltransferase and is a chloramphenicol resistance gene.

[0042] 2. Cloning of target protein IL-10 (1) Experimental group vector construction: pMT54-PR4-IL10-SP4 vector The IL-10 gene (SEQ ID NO: 12) was synthesized by an external supplier (Macrogen Inc., Korea). The synthesized gene fragment and the pMT54-PR4-SP4 vector were treated with restriction enzymes SalI and XhoI to cleave the cloning site of the vector. The cleaved product was purified using a Gel Purification Kit (Bioneer) and then dephosphorylated using alkaline phosphatase. A mixture of 1 μl of the prepared vector DNA, 3 μl of the gene (IL-10), 0.5 μl of T4 DNA ligase (Takara), and 1 μl of buffer solution was added to 5.5 μl of distilled water to prepare a total reaction mixture of 10 μl. The reaction mixture was incubated at 16°C for 12 hours, and the gene was ligated into the cloning site of the vector. The resulting ligated product was transformed into E. coli Top10 using the same method as described above, and its sequence was confirmed. As a result, it was confirmed that the gene had been introduced, and the vector was named pMT54-PR4-IL10-SP4. Figure 2 shows the structure of the pMT54-PR4-IL10-SP4 vector. In Figure 2, the promoter, signal peptide, and target gene represent PR4, SP4, and IL-10, respectively. This vector is a shuttle vector between E. coli and LAB and contains an E. coli replication origin, a LAB replication origin (rep gene), and a chloramphenicol resistance gene. The promoter, signal peptide, target gene, HA tag, and His tag are ligated to the multiple cloning site.

[0043] (2) Preparation of control group 1 vector: pMT54-PR4-IL10-USP45 vector A vector was constructed in the same manner as the experimental vector, except that the polynucleotide SP4 encoding the signal polypeptide was replaced with the USP45 polynucleotide, in order to confirm the effect of other signal polypeptides in the same promoter on the extracellular secretion of IL-10 protein.

[0044] Specifically, the SP4-excluded portion of the vector was amplified by PCR using the pMT54-PR4-IL10-SP4 vector as a template and the oligonucleotides of SEQ ID NOs: 13 and 14 as primers. A polynucleotide encoding USP45 (SEQ ID NO: 15) was synthesized (Macrogen Inc., Korea). The amplified product and the polynucleotide encoding USP45 were ligated by infusion cloning and transformed into E. coli to clone the pMT54-PR4-IL10-USP45 vector. USP45 is a signal polypeptide from Lactococcus lactis that is known to play a role in secreting protein products such as homologous proteinase (PrtP) and alpha-amylase from Bacillus stearothermophilus (van Asseldonk M1, et al. Mol Gen Genet. 1993 Sep; 240 (3): 428-34).

[0045] (3) Preparation of control group 2 vector: pMT54-P11-IL10-SP4 vector A vector was constructed in the same manner as the experimental vector, except that the PR4 promoter was replaced with the P11 promoter. This was done to confirm the effect of other promoters on the expression of the IL-10 protein in the signal polypeptide. P11 is a synthetic promoter with strong transcription initiation activity in Lactobacillus plantarum (Lars Axelsson, Microbiology (2006), 152, 1011-019).

[0046] Specifically, the PR4-deleted portion of the vector was amplified by PCR using the pMT54-PR4-IL10-SP4 vector as a template and the oligonucleotides of SEQ ID NOs: 16 and 17 as primers. The P11 promoter (SEQ ID NO: 18) was synthesized (Macrogen Inc., Korea). The amplified product and the P11 promoter were ligated by infusion cloning and introduced into E. coli to clone the pMT54-P11-IL10-SP4 vector.

[0047] 3. Transformation and IL-10 Protein Expression (1) Confirmation of IL-10 protein expression by pMT54-PR4-IL10-SP4 vector The pMT54-PR4-IL10-SP4 vector and the pMT54-P11-IL10-SP4 vector were transformed into three strains of lactic acid bacteria: Lactobacillus paracasei KCTC 13422BP, Lactobacillus plantarum KCTC 13421BP, and Lactobacillus brevis KCTC 13423BP, all of which were isolated from kimchi. These strains are also called LMT1-21, LMT1-9, and LMT1-46, respectively.

[0048] Each strain was cultured in 50 mL of MRS medium (Difco Co., USA) at OD 600 After culturing until the pH reached 0.5, the cells were centrifuged at 7,000 rpm at 4°C for 10 minutes, and the cell pellet was washed twice with 25 mL of ice-cold EPS (EPS: 1 mM KHPO, 1 mM KHPO, pH 7.4, 1 mM MgCl, and 0.5 M sucrose).

[0049] After washing, the cells were resuspended in 1 mL of cold EPS to prepare competent cells for electroporation and stored in a -80°C deep freezer. 40 μL of competent cells and 1 μL of each vector DNA (1 μg / μL) were placed in a cuvette and left on ice for 5 minutes. An electric pulse was applied at 25 μF, 8 kV / cm, and 400 ohms, followed by immediate addition to 1 mL of MRS liquid medium and incubation at 37°C for 1 hour. The cultured cells were then plated onto MRS medium containing 10 μg / mL chloramphenicol and incubated at 37°C for 48 hours.

[0050] Figure 3 shows the results of transforming three types of lactic acid bacteria with the pMT54-PR4-IL10-SP4 vector and examining the level of extracellular expression. In Figure 3, the control group was a group in which the vector pMT54-P11-IL10-USP45 was used instead of pMT54-PR4-IL10-SP4.

[0051] As shown in Figure 3, the pMT54-PR4-IL10-SP4 vector induced extracellular expression of IL-10 protein in the three LAB strains, whereas no expression was observed in the control strain. This indicates that the PR4 promoter drives gene expression and the SP4 signal peptide secretes the expressed protein outside the cells.

[0052] (2) mRNA expression: Confirmation of promoter strength The pMT54-PR4-IL10-SP4 vector and the pMT54-P11-IL10-SP4 vector were transformed into Lactobacillus paracasei KCTC 13422BP (LMT1-21) lactic acid bacteria using the same method as in (1).

[0053] The resulting vector-transfected strain was statically cultured in MRS liquid medium at 37°C for 16 hours. One ml of the culture was centrifuged at 7,000 rpm for 5 minutes, and the supernatant was discarded to obtain a cell pellet. mRNA was extracted from the culture using an RNA prep kit (Macherey-Nagel, cat. no. 740955.50) according to the manufacturer's protocol. cDNA was synthesized using 100 ng of mRNA as a template. cDNA synthesis was performed using Bioneer's ROKEScript cycle RT premix. Using the synthesized cDNA as a template and oligonucleotides with SEQ ID NO: 20 and SEQ ID NO: 21 as primers, real-time (RT)-PCR was performed using SYBR premix (Takara, RR820B) according to the manufacturer's protocol.

[0054] Figure 5 shows the results of RT-PCR using cDNA derived from transformed cells as a template. As shown in Figure 5, IL-10 mRNA levels were significantly higher in the L. paracasei KCTC 13422BP strain transformed with the pMT54-PR4-IL10-SP4 vector than in the L. paracasei KCTC 13422BP strain transformed with the pMT54-P11-IL10-SP4 vector, i.e., the control vector. This indicates that the PR4 promoter drives transcription more strongly than the P11 promoter. The "2△△CT" on the Y axis of Figure 5 represents the analysis of relative transcription levels and indicates an increase in transcription level compared to the control.

[0055] (3) Protein expression: Confirmation of signal peptide strength The pMT54-PR4-IL10-SP4 vector and the pMT54-PR4-IL10-USP45 vector were transformed into Lactobacillus paracasei KCTC 13422BP (LMT1-21) lactic acid bacteria by the same method as in (1).

[0056] The resulting strains carrying each vector were statically cultured in MRS liquid medium at 37°C for 16 hours. The culture was inoculated into MRS liquid medium at a concentration of 3% (v / v) and then statically cultured at the same temperature for 8 hours. One ml of the culture was centrifuged at 7,000 rpm for 5 minutes, and the supernatant was collected. 1 ml of the supernatant was added with 100 μl of trichloroacetic acid and incubated at 4°C for 1 hour to concentrate the culture components. The reaction mixture was centrifuged at 13,000 rpm for 10 minutes at 4°C, and the pellet was washed once with 1 ml of cold acetone, dried at room temperature for 10 minutes, and then eluted with 100 μl of Tris-HCl buffer (pH 8.8).

[0057] The eluate was added with 4x loading buffer (Thermo) and 10x reducing agent (Thermo) and then subjected to SDS-PAGE gel electrophoresis. The gel was transferred to a nitrocellulose membrane using a Trans Blot semi-dry cell (Bio-Rad) and Western blotting was performed. Specifically, the membrane was blocked with TBST buffer containing 1% skim milk for 1 hour, incubated with an anti-HA antibody (Santa Cruz) at room temperature for 2 hours, washed three times with TBST for 5 minutes each, and then detected by ECL. In the pMT54-PR4-IL10-SP4 vector, the IL-10 gene is operably linked to the HA gene at its 3' end, allowing it to be expressed in an HA-tagged state.

[0058] Figure 6 shows the amount of IL-10 secreted from LMT1-21 transformed with pMT54-PR4-IL10-SP4 and pMT54-PR4-IL10-USP45 to compare the signal peptide strength. As shown in Figure 6, the SP4 signal peptide induced greater secretion of the expressed protein than the USP45 signal peptide.

[0059] Example 2: Expression of amylase gene using PR4 promoter and SP4 sequence The pMT54-PR4-amylase-SP4 vector was prepared using the same procedures as in Examples 1(2) and (3), except that the alpha-amylase gene (SEQ ID NO: 19) and primers F / R (SEQ ID NOs: 22 and 23) were used instead of the IL-10 gene. It was then transformed into L. Paracasei LMT1-21 to confirm the level of extracellular expression of alpha-amylase. The alpha-amylase gene was amplified using genomic DNA from Lactobacillus amylovorus (KCTC 3597).

[0060] The amylase activity of the transformed LMT1-21 strain was measured using an iodine test. First, the LMT1-21 strain carrying the pMT54-PR4-amylase-SP4 vector was statically cultured in MRS liquid medium at 37°C for 12 hours. The culture was then spread onto an MRS plate containing 0.5% soluble potato starch and 10 mg / L chloramphenicol in a small dot pattern. The plate was then incubated at 37°C for 12 hours to allow amylase to fully decompose the potato starch. Lugol's iodine solution (iodine-potassium iodide solution) was then evenly spread onto the MRS plate to allow it to react with the remaining potato starch. Lower amylase activity indicates a greater amount of remaining potato starch, resulting in a stronger iodine-potato starch reaction and a purple color. High amylase activity indicates less remaining potato starch around the cells, resulting in a transparent ring.

[0061] Figure 4 shows the results of transforming the pMT54-PR4-amylase-SP4 vector into the LMT1-21 strain and examining the level of extracellular expression. In Figure 4, the control vector is the same as the pMT54-PR4-amylase-SP4 vector, except that it uses the P11 promoter instead of PR4 and USP45 instead of SP4.

[0062] As shown in Figure 4, the experimental group using the pMT54-PR4-amylase-SP4 vector expressed alpha-amylase extracellularly in the LMT1-21 strain, resulting in the formation of a large clear ring, whereas the control group showed no expression and produced a small ring. This indicates that PR4 is activated to express the amylase gene and enhances its extracellular secretion by SP4.

[0063] It should be understood that the embodiments described herein are to be considered for illustrative purposes only, and not for limiting purposes, and the description of a feature or aspect within each embodiment should typically be considered applicable to other similar features or aspects of other embodiments.

[0064] Although one or more embodiments have been described with reference to the drawings, it will be understood by those skilled in the art that various changes in form and detail may be made therein without departing from the spirit and scope of the disclosure as defined in the following claims.

Claims

[Claim 1] Lactobacillus brevis LMT1-46 (KCTC 13423BP) in which a promoter having the nucleotide sequence of SEQ ID NO: 1; and a signal polypeptide having the amino acid sequence of SEQ ID NO: 2 are functional.

Citation Information

Patent Citations

  • Ketoreductase and its use

    JP2010517574A