• Title/Summary/Keyword: recombinant B. subtilis

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Cloning and Strong Expression of a Bacillus subtilis WL-3 Mannanase Gene in B. subtilis

  • Yoon, Ki-Hong;Lim, Byung-Lak
    • Journal of Microbiology and Biotechnology
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    • v.17 no.10
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    • pp.1688-1694
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    • 2007
  • A gene encoding the mannanase of Bacillus subtilis WL-3, which had been isolated from Korean soybean paste, was cloned into Escherichia coli and the nucleotide sequence of a 2.7-kb DNA fragment containing the mannanase gene was subsequently determined. The mannanase gene, designated manA, consisted of 1,080 nucleotides encoding a polypeptide of 360 amino acid residues. The deduced amino acid sequence was highly homologous to those of mannanases belonging to glycosyl hydrolase family 26. The manA gene was strongly expressed in B. subtilis 168 by cloning the gene downstream of a strong B. subtilis promoter of plasmid $pJ27{\Delta}88U$. In flask cultures, the production of mannanase by recombinant B. subtilis 168 reached maximum levels of 300 units/ml and 450 units/ml in LB medium and LB medium containing 0.3% locust bean gum, respectively. Based on the zymogram ofthe mannanase, it was found that the mannanase produced by recombinant B. subtilis could be maintained stably without proteolytic degradation during the culture time.

Production and Properties of a Bacillus subtilis Mannanase from Recombinant Lactobacillus paracasei (재조합 Lactobacillus paracasei로부터 Bacillus subtilis의 Mannanase 생산과 효소특성)

  • Yoon, Ki-Hong
    • Microbiology and Biotechnology Letters
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    • v.40 no.3
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    • pp.186-189
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    • 2012
  • A gene coding for mannanase (manA) from Bacillus subtilis was introduced into a shuttle vector pGK12 between Escherichia coli, B. subtilis and Lactobacillus paracasei. As a result of transferring the resultant plasmid, designated pGK12M3, into three different strains, the manA gene was found to be expressed in L. paracasei as well as in B. subtilis and E. coli. In a 4 L fermentor culture, the production of mannanase by recombinant L. paracasei (pGK12M3) reached a maximum level of 5.4 units/ml in an MRS medium with a fixed pH 6.5. Based on the zymogram of mannanase, it is assumed that mannanase produced by recombinant L. paracasei is not maintained stably with proteolytic degradation. The optimal temperature and thermostability of mannanase produced by recombinant L. paracasei were also found to be different from those of enzymes produced by B. subtilis.

Novel sinIR promoter for Bacillus subtilis DB104 recombinant protein expression system

  • Ji-Su Jun;Min-Joo Kim;KwangWon Hong
    • Journal of Applied Biological Chemistry
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    • v.66
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    • pp.128-137
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    • 2023
  • Transcriptome analysis revealed that the sinR gene encoding a transition-state regulator of Bacillus pumilus, genetically close to B. subtilis, was expressed at high levels during growth. The sinR gene is the second gene of the sinIR operon consisting of three promoters and two structural genes in B. subtilis. This study used the sinIR promoter of B. subtilis DB104 to construct a recombinant protein expression system. First, the expression ability depending on the number of sinIR promoter was investigated using enhanced green fluorescent protein (eGFP). The expression level of eGFP was slightly higher when using two promoters (Psin2) than using original promoters. The Psin2 promoter was further engineered by modifying the repressor binding site and -35 and -10 regions. Shine-Dalgarno (SD) sequence of the sinI gene was modified to the consensus sequence. Finally, combining the engineered Psin2 promoter with the modified SD sequence increased the expression level of eGFP by about 13.4-fold over the original promoter. Our results suggest that the optimized sinIR promoter could be used as a novel tool for recombinant protein expression in B. subtilis.

Properties of Promoters Transferred to the Donor Strain, Alkali-tolerant Bacillus sp. YA-14. (공여 균주인 알카리 내성 Bacillus속에 도입된 Promoter 의 특성)

  • 유주현;구본탁;정용준
    • Microbiology and Biotechnology Letters
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    • v.17 no.3
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    • pp.188-192
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    • 1989
  • The promoters from akali-tolerant Bacillus sp. YA-14 chromosomal DMA cloned in B. subtilis using pPL703 were stably transferred to the donor strain. In alkali-tolerant Bacillus sp., the promoters revealed similiar properties with in B. subtilis but were preyed to be more efficient than in B. subtilis comparing with pPL708. Alkali-tolerant Bacillus sp. harboring the recombinant plasmid, p-l2Bl, was abnormally more inducible with chloramphenicol than B. subtilis haying the plasmid. Therefore the host-vector system using this recombinant plasmid and alkali-tolerant Bacillus sp. was expected to be more available.

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Molecular Cloning of $\beta$-Galactosidase from Bacillus subtilis HP-4

  • Kim, Jeong-Ho;Lee, Jae-Chang;Huh, Jeong-Won;Chung, Ki-Chul
    • Journal of Microbiology and Biotechnology
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    • v.1 no.4
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    • pp.227-231
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    • 1991
  • A gene coding for a $\beta$-galactosidase of Bacillus subtilis HP-4 was cloned in E. coli JM109 by inserting HindIII digested fragment of B. subtilis HP-4 chromosomal DNA into the site of pBR322 and selecting recombinant transformant showing blue color on X-gal plate. The recombinant plasmid, named pBG109, was found to contain the 1.4 Kbp HindIII fragment originated from B. subtilis HP-4 chromosomal DNA by Southern hybridization. The cloned gene was stably maintained and expressed in E. coli JM109 and the pBG109 encoded $\beta$-galactosidase had the same enzymatic properties as those of $\beta$-galactosidase produced by B. subtilis HP-4.

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Construction of Bacillus subtilis strain engineered for expression of porcine β-defensin-2/cecropin P1 fusion antimicrobial peptides and its growth-promoting effect and antimicrobial activity

  • Xu, Jian;Zhong, Fei;Zhang, Yonghong;Zhang, Jianlou;Huo, Shanshan;Lin, Hongyu;Wang, Liyue;Cui, Dan;Li, Xiujin
    • Asian-Australasian Journal of Animal Sciences
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    • v.30 no.4
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    • pp.576-584
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    • 2017
  • Objective: To generate recombinant Bacillus subtilis (B. subtilis) engineered for expression of porcine ${\beta}-defensin-2$ (pBD-2) and cecropin P1 (CP1) fusion antimicrobial peptide and investigate their anti-bacterial activity in vitro and their growth-promoting and disease resisting activity in vivo. Methods: The pBD-2 and CP1 fused gene was synthesized using the main codons of B. subtilis and inserted into plasmid pMK4 vector to construct their expression vector. The fusion peptide-expressing B. subtilis was constructed by transformation with the vector. The expressed fusion peptide was detected with Western blot. The antimicrobial activity of the expressed fusion peptide and the recovered pBD-2 and CP1 by enterokinase digestion in vitro was analyzed by the bacterial growth-inhibitory activity assay. To analyze the engineered B. subtilis on growth promotion and disease resistance, the weaned piglets were fed with basic diet supplemented with the recombinant B. subtilis. Then the piglets were challenged by enteropathogenic Escherichia coli (E. coli). The weight gain and diarrhea incidence of piglets were measured after challenge. Results: The recombinant B. subtilis engineered for expression of pBD-2/CP1 fusion peptide was successfully constructed using the main codons of the B. subtilis. Both expressed pBD-2/CP1 fusion peptide and their individual peptides recovered from parental fusion peptide by enterokinase digestion possessed the antimicrobial activities to a variety of the bacteria, including gram-negative bacteria (E. coli, Salmonella typhimurium, and Haemophilus parasuis) and grampositive bacteria (Staphylococcus aureus). Supplementing the engineered B. subtilis to the pig feed could significantly promote the piglet growth and reduced diarrhea incidence of the piglets. Conclusion: The generated B. subtilis strain can efficiently express pBD-2/CP1 fusion antimicrobial peptide, the recovered pBD-2 and CP1 peptides possess potent antimicrobial activities to a variety of bacterial species in vitro. Supplementation of the engineered B. subtilis in pig feed obviously promote piglet growth and resistance to the colibacillosis.

Expression of a Bacillus subtilis Mannanase Gene in Corynebacterium lactofementum (Corynebacterium lactofermentum에서 Bacillus subtilis의 Mannanase 유전자 발현)

  • Yoon, Ki-Hong
    • Microbiology and Biotechnology Letters
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    • v.37 no.4
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    • pp.405-407
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    • 2009
  • A Bacillus subtilis mannanase gene was subcloned into an Escherichia coli- Corynebacterium lactofermentum shuttle vector pHE83, and the resultant plasmid pHE83M was transferred into an endogenous plasmid-free strain of C. lactofermentum. Mannanase produced by the recombinant C. lactofermentum (pHE83M) was secreted extracellulary at the level of 86%, and the remaining activity of mannanase was detected in the cell-free extract. The maximum mannanase productivity of the recombinant strain reached 8.1 unit/mL in the culture filtrate of LB medium. According to the zymogram of mannanase on SDS-PAGE, it was found that the mannanase produced by the recombinant C. lactofermentum could be maintained stably with a migration identical to the mannanase produced by the parental strain, B. subtilis WL-3.

Cloning and Expression of Inulin Fructotransferase Gene of Arthrobacter sp. A-6 in Escherichia coli and Bacillus subtilis

  • Kim, Hwa-Young;Kim, Chan-Wha;Choi, Yong-Jin
    • Journal of Microbiology and Biotechnology
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    • v.10 no.2
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    • pp.275-280
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    • 2000
  • The inulin fructotransferse (depolymerizing) (IFTase, EC 2.4.1.93) gene of Arthrobacter sp. A-6 was cloned and expressed in Escherichia coli and Bacillus subtilis. The IFTase gene consisted of an ORF of 1.311 nucleotides encoding a polypeptide of 436 amino acids containing a signal peptide of 31 amino acids in the N-terminus. The molecular mass of the IFTase based on the nucleotide sequence was calculated to be 46.116 Da. The recombinant E. coli $DH5{\alpha}$ cells expressing the Arthrobacter sp. A-6 IFTase gene produced most of the IFTase intracelularly. In contrast, the recombinant B. subtilis DB 104 carrying the IFTas gene on a B. subtilis-E. Coli expression vector secreted the IFTase into the culture fluid efficiently.

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Transformation of Bacillus subtilis Protoplast by Recombinant Plasmid DNA (재조합 Plasmid DNA에 의한 Bacillus subtilis의 형질전환)

  • Kim, Sang-Dal;John Spizizen
    • Microbiology and Biotechnology Letters
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    • v.13 no.4
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    • pp.345-348
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    • 1985
  • Recombinant chimeric plasmid constructed with Xba I digested pUBl10 and -pE194 was transformed by polyethylene glycol induced protoplast transformation system into Bacillus subtilis BR 151 on the mannitol regeneration media, and two genes of antibiotics resistance were expressed simultaneously in the transfromant. Transformation frequency of the recombinant plasmid was 6.5 $\times$ 10$^{-5}$ on the mannitol regeneration agar plate containing neomycin and erythromycin. The replication of recombinant plasmid in the recipient cells was confirmed by the alkaline extraction method and agarose gel electrophoresis.

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Secretion of Bacillus subtilis Endo-1,4-$\beta$-D-Glucanase in Yeast Using Promoter and Signal Sequence of Glucoamylase Gene (Glucoamylase 유전자의 promoter 와 분비신호서열을 이용한 Bacillus subtilis Endo-1-4$\beta$-D-Glucanase 의 효모에서 분비)

  • 안종석;강대욱;황인규;박승환;박무영;민태익
    • Korean Journal of Microbiology
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    • v.30 no.5
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    • pp.403-409
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    • 1992
  • For the development of a glucanolytic yeast strain. the seceretion of endo-1.4-$\beta$-D-glucanase (CMCase) of Bacillus subtilis was performed in yeast using glucoamylase gene (STA1) of Saccharomyces diastaticus. A 1.7 kb-DNA fragment of STA1 gene containing authentic promoter, signal sequence, threonine serine-rich (TS) region and N-terminal region (98 amino acids) of mature glucoamylase was ligated to YEp 24. E. coli-yeast shuttle vector. And then. CMCase structural gene of B. subtilis was fused in frame with the 1.7 kb-DNA fragment of STA1 gene, resulting in recombinant plasmid pYES('24. Yeast transformant harboring pYESC24 had no CMCase activity. So. we deleted TS region and N-terminal region of mature glucoamylase existing between signal sequence and CMCase structural gene in pYESC24. consequently constructed recombinant plasmid pYESC11. The yeast transformed with the newly constructed recombinant plasmid pYESC11 efficiently secreted CMCase to extracellular medium. After 4 days culture. total CMCase activity of this transformant was 44.7 units/ml and over 93% of total CMCase activity was detected in culture supernatant.

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