• Title/Summary/Keyword: plasmid vector

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Expression of Human KCNE1 Gene in Zebrafish (Zebrafish에서 인간 KCNE1 유전자 발현에 관한 연구)

  • Park, Hyeon Jeong;Yoo, Min
    • Journal of Life Science
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    • v.27 no.5
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    • pp.524-529
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    • 2017
  • This study was aimed to produce a transgenic zebrafish expressing the human KCNE1 gene. Initially, the entire CDS of the human KCNE1 gene was amplified from a human genomic DNA sample by polymerase chain reaction using a primer set engineered with restriction enzyme sites (EcoRI, BamHI) at the 5' end of each primer. The resultant 402 bp KCNE1 amplicon flanked by EcoR1 and BamH1 was obtained and subsequently cloned into a plasmid vector pPB-CMVp-EF1-GreenPuro. The integrity of the cloned CDS sequence was confirmed by DNA sequencing analysis. Next, the recombinant vector containing the human KCNE1 (pPB-CMVp-hKCNE1-EF1-GreenPuro) was introduced into fertilized eggs of zebrafish by microinjection. Successful expression of the recombinant vector in the eggs was confirmed by the expression of the fluorescence protein encoded in the vector. Finally, in order to assure that the stable expression of the human KCNE1 gene occurred in the transgenic animal, RNAs were extracted from the animal and the presence of KCNE1 transcripts was confirmed by RT-PCT as well as DNA sequencing analysis. The study provides a methodology to construct a useful transgenic animal model applicable to the development of diagnostic technologies for gene therapy of LQTS (Long QT Syndrome) as well as tools for cloning of useful genes in fish.

Enhanced p53 Gene Transfer to Human Ovarian Cancer Cells using Cationic Nonviral Vector. DOC

  • Choi, Eun-Jeong;Choi, Sung-Hee;Park, Jeong-Sook;Ahn, Woong-Shick;Kim, Chong-Kook
    • Proceedings of the PSK Conference
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    • 2002.10a
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    • pp.427.2-428
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    • 2002
  • Previously we formulated new cationic liposomes, DDC, composed of DOTAP. DOPE, and cholesterol (Chol) in 1 : 0.7 : 0.3 molar ratios, and showed that DDC efficiently deliver the plasmid DNA into ovarian cancer cell lines. Here, wild type p53 DNA was transfected into ovarian cancer cells, using the DOC as a nonviral vector and the expression and activity of p53 gene were evaluated in vitro and in vivo. The complexes of plasmid DNA (pp53-EGFP) and DDC were transfected into OVCAR-3 cells. The gene expression was determined by RT -PCR and western blot analysis. (omitted)

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Design of Bacterial Vector Systems for the Production of Recombinant Proteins in Escherichia coli

  • Mergulhao;Filipe J.M.;Gabriel A. Monteiro;Joaquim M.S. Cabral;M. Angela Taipa
    • Journal of Microbiology and Biotechnology
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    • v.14 no.1
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    • pp.1-14
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    • 2004
  • More than twenty years have passed since the approval of the first recombinant DNA product for therapeutic use (recombinant human insulin, 1982). However, the biotechnology industry is still facing a shortage of manufacturing capacity due to the increasing demand of therapeutic proteins. This demand has prompted the search for a growing number of biological production systems but, nevertheless, the Gram-negative bacterium Escherichia coli remains one of the most attractive production hosts. This review highlights the most important features and developments of plasmid vector design, emphasizing the different reported strategies for improving the expression and secretion of heterologous proteins using the cellular machinery of E. coli.

Transgenic Tobacco Plants Introduced with cDNA of Cucumber Mosaic Virus Satellite RNA (오이 모자이크 바이러스 위성RNA의 cDNA가 도입된 형질전환 담배의 육성)

  • 이상용;홍은주;최장경
    • Korean Journal Plant Pathology
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    • v.11 no.1
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    • pp.80-86
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    • 1995
  • The cDNA of CMV-As satellite RNA was introduced into tobacco plants (Nicotiana tabacum cv. Samsun NN) using a binary Ti plasmid vector system of Agrobacterium tumefaciens. The cDNA of satellite RNA introduced into tobacco plants was detected by polymerase chain reaction (PCR) and molecular hybridization analyses. Symptom development was distinctly suppressed in the transgenic tobacco plants when inoculated with CMV-Co. CMV concentration in the transgenic tobacco plants was decreased to 1/40 of non-transgenic tobacco plants. The kanamycin resistance gene of the transgenic tobacco plants was also detected in the progeny.

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Yeast Cloning Vectors and their Application to the Development of Starch-fermenting Yeast (효모 Cloning Vector와 전분발효 효모의 개발)

  • Kim, Keun
    • Applied Biological Chemistry
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    • v.31 no.3
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    • pp.267-273
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    • 1988
  • Transformed, hybrid strains of the yeast Saccharomyces capable of simultaneous secretion of both glucoamylase and ${\alpha}-amylase$ have been produced. These strains can carry out direct, one-step assimilation of starch with conversion efficiency greater than 93% during a 5 day growth period. One of the transformants converts 92.8% of available starch into reducing sugars in only 2 days. Glucoamylase secretion by these strains results from expression of one or more chromosomal STA genes derived from Saccharomyces diastaticus. The strains were transformed by a plasmid(pMS12) containing mouse salivary ${\alpha}-amylase$ cDNA in an expression vector containing yeast alcohol dehydrogenase promoter and a segment of yeast $2{\mu}$ plasmid. The major starch hydrolysis product produced by crude amylases found in culture broths is glucose, indicating that ${\alpha}-amylase$ and glucoamylase act cooperatively.

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Exprission of cellulomonas biazotea cellobiase gene in E. coli (Cellulomonas biazotea cellobiase gene의 대장균에의 형질발현)

  • 박영길;연창석;최영길
    • Korean Journal of Microbiology
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    • v.26 no.1
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    • pp.6-12
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    • 1988
  • Cellobiase ($\beta$-glucosidase) is an enzyme of the cellulase system in cellulolytic microor-ganisms. The chromosomal DNA fragment which include cellobiase gene of Cellulomonas biazotea was cloned in Eschericia coli via plasmid pBR 322 vector. Restriction enzyme Sal I was used to obtain adequate size of fragments from C. biazotea. chromosomal DNA. The transformant of E. coli HB101 with recombinant plasmid pBG101 showed cellobiase activity, which is not ordinary in E. coli HB101. The enzyme activity of the transformant was as of 20% lower than that of C. biazotea.

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Transformation of an Alkalin Protease Overproducer, Vibrio metschnikovii Strain RH530, and Improvement of Plasmid Stability by the par Locus

  • Chung, So-Sun;Shin, Yong-Uk;Kim, Hee-Jin;JIn, Chee-Hong;Lee, Hyune-Hwan
    • Journal of Microbiology and Biotechnology
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    • v.11 no.2
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    • pp.222-228
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    • 2001
  • Vibrio metschnikovii strain RH530 is a non-pathogenic, industrially-important alkaline protease producer which has been isolated from wastewater. In this paper, we report on the transformation of this strain by using the method of electroporation. A field strength of $7.5\;kVcm^{-1}$ and $25\;{\mu}F$, and using a 0.2-cm cuvette, appeared to be the optimal conditions for electroporation of the cells with the recombinant pSBCm plasmid carrying the vapK alkaline protease gene and the ColE1 replicon. Cells were subjected to osmotic shock in order to remove extracelluar DNase, and adding 200 mM of sucrose to electroporation buffer cells showed an increased transformation efficiency. Maximum efficiency of transformation was obtained at an early exponential growth phase. Using all of the conditions mentioned above, we routinely obtained a transformation efficiency of more than $10^4{({\mu}g\;plasmid\;DNA)}^{-1}$. The stability of the plasmid pSBCm in V. metschnikovii RH530 was 25% after 18h of growth (27 generations) in the medium without antibiotic selection. The insertion of the par locus to the pSBCm increased the stability of the plasmid up to 42% without selective pressure. The increase in plasmid stability was accompanied by the increase in the productivity of alkaline protease in the recombinant V. metschnikovii strain RH530. Determining optimal conditions for the transformation of the industrially-important, nonpathogenic Vibrio strain, and the improvement of plasmid stability by introducing the par locus into the high copy number plasmid vector, will allow the development of procedures involved in the genetic manipulation of this strain, particularly for its use in the production of industrial enzymes such as alkaline protease.

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Transfer of R plasmids of Bacterial Isolates and Their Cloned R Genes in Natural Wastewater Environments (I) -Cloning of $Km^rCm^r$Gene- (하폐수의 자연환경에서 R plasmid와 재조합 유전자의 전이특성( I ) -$Km^rCm^r$유전자의 클로닝-)

  • 김치경;이성기
    • Microbiology and Biotechnology Letters
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    • v.17 no.5
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    • pp.447-453
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    • 1989
  • In order to study the transfer of antibiotics resistance genes of the genetically cloned bacteria in water environments, DK1 strain, which is resistant to kanamycin (Km), chloramphenicol (Cm), streptomycin (Sm), and sulfadiazine (Su), was selected from the Gram-negative bacterial isolates from wastewater. One of 4 plasmids harboured in the DK1 strain was found to possess Km$^{${\gamma}$}$Cm$^{${\gamma}$}$ gene and be about 68 kb in size, and it was designated as pDK101. The plasmid of pDK101 was also found to have 16, 32, and 6 restriction sites for EcoRI. .PstI, and SalI, respectively. From the digestion fragments of pDK101 plasmid and pKT230 used as a vector by EcoRI restriction endonuclease, pDT309 and pDT529 were constructed as chimeric plasmids which possess Km$^{${\gamma}$}$Cm$^{${\gamma}$}$ gene and are 30.9 and 52.9 kb in size, respectively. When the chimeric plasmids were trasformed into E. coli C600 or E. coli HB101, transformants of DKC601, DKC602, DKH102, and DKH103 were obtained as cloned bacterial cells. The Km$^{${\gamma}$}$Cm$^{${\gamma}$}$ genes were well expressed in those cloned cells and the chimeric plasmids were clearly detected in the cloned cells of DKC601 and DKH103.

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Structural and Functional Stability of the Genetic Recombinant Plasmid pCU103 in Different Water Environments

  • Kim, Chi-Kyung;Kwak, Myoung-Ja;Lee, Sung-Gie
    • Journal of Microbiology
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    • v.34 no.3
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    • pp.241-247
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    • 1996
  • The stability of the genetically engineered microorganisms and their recombinant plasmids released in natural environments has been regarded as one of the molecular ecological topics. In this study, the recombinant plasmids pCU103 in which the pcbCD genes involved in biodegradation of biphenyl and 4-chlorobiphenyl were cloned in pBluescript SK(+) vector, were examined for their structural and functional stability in different waters at 15 $^{\circ}C$ by the methods of electrophoresis, Southern hybridization, quantification with fluorescent dye, and transformation. The recombinant plamids maintained their stabilities for about 30 days in sterilized distilled water (SDW), 15 days in autoclaved creek water (AW), 25 days in filtered and autoclaved non-sterile creek water (FAW), 4 days in Luria-Bertani (LB) broth, and less than one day in filtered non-sterile creek water (FW). The covalently closed circular (CCC) form of the plasmid was decreased and open circular (OC) form was increased as a function of incubation time, and then linear (L) form was produced to be ultimately degraded out. The degradation rates of the plasmid were proportionally correlated to trophic level of the water, and the biological factor such as DNases was found to be one of the most critical factors affecting structural and functional stability of the plasmid in non-sterile natural water.

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Rice Transformation by DNA Imbibition and Construction of Plant Vector (DNA imbibition을 이용한 벼의 형질전환과 vector 개발)

  • 유준희;남홍길정구흥
    • KSBB Journal
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    • v.8 no.2
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    • pp.104-109
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    • 1993
  • A vector for plant transformation which had two reporter genes(Gus and Hpt genes) in a single plasmid was constructed. After rice embryos imbibed DNA solution, DNA uptake and gene expression in rice were monitored. Main expression sites of the Gus gene were meristem of root and coleoptiles. There was no difference in Hpt gene expression between a single Hpt vector and the constructed vector in viability of rice in the hygromycin medium after DNA imbibition, The genomic DNA and total RNA extracted from rice transformant survived in the hygromycin medium were subjected to PCR and RT PCR analysis, respectively. As a result, we found the existence of the Hpt gene and its expression in rice.

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