• Title/Summary/Keyword: Apase promoter

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Elucidation of Function and Isolation of Trans-acting Factors Regulating the Basal Level Expression of Eukaryotic Genes (진핵세포 유전자의 기초대사 발현을 조절하는 trans 작용인자의 기능해석과 새로운 인자의 분리)

  • 황용일
    • Microbiology and Biotechnology Letters
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    • v.19 no.1
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    • pp.37-44
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    • 1991
  • - I aimed to isolate trans-acting factors involved in the basal expression level of eukaryotic genes. One of the yeast histidine biosynthetic gene, HIS5 was taken as a model for this study. HIS5 gene has a substantial basal level in amino acid rich medium and is derepressed if starved for any single amino acid. The derepression is mediated by cis-acting DNA sequences 5'-TGACTC-3' found in 5' non-transcribed region of the gene and trans-acting factors including GCN4 as positive factor and its negative factor GCDI 7, and GCNZ as a negative factor of GCD17. I first investigated the role of these trans-acting factors in HIS5 basal expression level by using HIS5-pH05 fusion in which expression of pH05 gene encoding inorganic phosphate-repressible acid phosphatase (APase) is regulated by HIS5 promoter. Strain with gcn2 or gcn4 mutation showed 3 to 4 fold lower APase activity than wild type. The level of APase activity was similar in gcn2 and gcn4 mutants. Trans-acting factors involved in basal level were identified by isolating 14 mutants showing increased expression of HISSPH05 fusion from gcn4 background. All the mutants carry a single nuclear recessive mutation and fall into four complementation groups, designated as bell (basal expression level), be12, be23 and be14.

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Construction of an Expression Vector System with the GAP Promoter in Saccharomyces cerevisiae (효모, Saccharomyces cervisiae의 GAP 유전자를 이용한 발현 벡터계의 개발)

  • 황요일;서애란;심상국;정동효
    • Microbiology and Biotechnology Letters
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    • v.19 no.6
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    • pp.568-574
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    • 1991
  • The cloned glyceraldehyde-3-phosphate dehydrogenase (GAP) gene of Saccharomyces cereviszae (Holland et al., 1983) has been characterized. Based on the communication, we have also cloned 2.1 kb CAP DNA fragment and modified this fragment as a portable promoter. Two yeast expression vectors, one is YCp type vector being maintained at low copy number (1 or 2) and the other is YEp type vector at high copy number, have been constructed with the GAP promoter and the PH05' gene as a reporter. Our plasrnids were introduc,ed into S. cerevisiae HY-1, which has been improved. The $Trp^+$ transformants expressed APase activity efficiently and showed high level of PH05' transcripts.

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Transformation of Brassica napus with Acid Phosphatase Gene (Acid Phosphatase 유전자 도입에 의한 유채의 형질 전환)

  • Lee, Hyo-Shin;Son, Dae-Young;Jo, Jin-Ki
    • Journal of The Korean Society of Grassland and Forage Science
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    • v.17 no.3
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    • pp.285-292
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    • 1997
  • This study was conducted to obtain the transgenic Brnssica napus plants with tobacco Apase gene using the binary vector system of Agrobacteriurn fumefociens. The results obtained were summarized as follows: A repressible acid phosphatase gene of Saccharon~yces cerevisiae, pho105 was used for screening of tobacco Apase cDNA. In order to identify Apase gene in tobacco genome, Southern blot analysis was pcrformed and the Apase gcnc may be present as a single copy, or at most two or three copies, in tobacco genome. To isolate the tobacco Apase gene, tobacco cDNA library was constructed using purifed mRNA from -Pi treated tobacco root and the plaque forming unit of the library was 2.8 x $10^5$ pfu/m${\ell}$, therefore the library might cover all expressed mRNAs. Using pho5 as a probe. tobacco Apase cDNA was cloned, and restriction mapping and Southern blot analysis of cDNA insert were revealed that the 3.6 kb cDNA contained tobacco acid phosphatase cDNA. Plasmid pGA695 -tcAPl was constructed by subcloning tobacco Apase cDNA into the Hind site of pGA695 with 35s promoter which can be expressed constitutively in plants. The Brassica napus cotyledonary petioles were cocultivated with the ,4 grobacteriunz and transferred to the selection medium. The transformed and regenerated plants were transplanted to soil medium. Southern blot analysis was done on the transformed plants, and it was confirmed that a foregin gene was stably integrated into the genonies of B. nnpus plants.

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Cloning, Expression, and Characterization of a Hyperalkaline Phosphatase from the Thermophilic Bacterium Thermus sp. T351

  • Choi Jeong-Jin;Park Jong-Woo;Shim Hye-Kyung;Lee Suk-Chan;Kwon Moo-Sik;Yang Joo-Sung;Hwang Heon;Kwon Suk-Tae
    • Journal of Microbiology and Biotechnology
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    • v.16 no.2
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    • pp.272-279
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    • 2006
  • The gene encoding Thermus sp. T351 alkaline phosphatase (T351 APase) was cloned and sequenced. The gene consisted of 1,503 bp coding for a protein with 500 amino acid residues including a signal peptide. The deduced amino acid sequence of T351 APase showed relatively low similarity to other Thermus APases. The T351 APase gene was expressed under the control of the T7lac promoter on the expression vector pET-22b(+) in Escherichia coli BL21 (DE3). The expressed enzyme was purified by heat treatment, and $UNO^{TM}$ Q and $HiTrap^{TM}$ Heparin HP column chromatographies. The purified enzyme exhibited high activity at extremely alkaline pHs, reaching a maximum at pH 12.0. The optimum temperature of the enzyme was $80^{\circ}C$, and the half-life at $85^{\circ}C$ was approximately 103 min. The enzyme activity was found to be dependent on metal ions: the addition of $Mg^{2+}$ and $CO^{2+}$ increased the activity, whereas EDTA inhibited it. With p-nitrophenyl phosphate as the substrate, T351 APase had a Michaelis constant ($K_{m}$) of $3.9{\times}10^{-5}M$. The enzyme catalyzed the hydrolysis of a wide variety of phosphorylated compounds.

The Production of HBsAg in the Recombinant Yeast Cells (재조합 효모 세포내에서의 간염백신 생산)

  • Park, Cha-Yong;Lee, Hei-Chan
    • Microbiology and Biotechnology Letters
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    • v.14 no.6
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    • pp.455-460
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    • 1986
  • Dane particle was prepared from the plasma of chronic HBsAg carrier with high levels of HBsAg activity. DNA extracted front Dane particle core after a DNA polymerase reaction with $\alpha$-($^{32}$P) dNTP, was identified as HBV DNA by liquid scintillation counter and agarose gel electrophoresis-G.M. counting. To produce Hepatitis B surface antigen for use as a vaccine against Hepatitis B virus infection, yeast strains harboring recombinant plasmid with Apase promoter was used. Recombinant plasmid was construced from pHBV 130 and pAN 82, transformed into E coli, and then transferred into yeast strains. HBsAg was produced by derepression in Burkholder minimal medium with controlled inorganic phosphate concentration. The kinetics of HBsAg production was also investigated. Total HBsAg activity increased rapidly between 3 and 6 hours after transfer to phosphate-free medium and reached a maximum at around 9th hour. The transfer into phosphate-free medium after 6 hours in high phosphate cell growth medium gave maximum activity.

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