• 제목/요약/키워드: tobacco transformation

검색결과 109건 처리시간 0.027초

인공합성 Phosphinothricin Acetyltransferase 유전자에 의한 Basta 내성 연초식물체의 개발 (Development of Basta Resistant Tobacco Using Artificial Phosphinothricin Acetyltransferase Gene)

  • 양덕춘
    • 한국자원식물학회지
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    • 제11권2호
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    • pp.188-194
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    • 1998
  • This experiment was conducted to introduce phosphinothricin acetyl -transferase(PAT) gene, resistant to basta and non-selective herbidide, into tobacco(Nicotiana tabacum cv.BY4). For shoot formation,tobacco leaf disks were placed on the MS medium supplemented with 2.0mg/L BA and 0.1mg/L NAA. In this medium condition, tobacco leaf disces were cocultivated with A. tumefaciens MP90 containing NPT IIand PAT resistant to kanamycin and Basta, respectively. Shoots were obtained in the medium containing antibiotics, and those were transferred to rooting medium supplemented with 0.1mg/L NAA and antibiotics. The plants obtaining roots were transplanted into soil. Phenotype of transgenic tobacco plant was mostly as normal plant. However, about 5% was abnormal plant, which did not set seeds. PCR analysis and southern blot were performed to determine transformation. As the results, it was confirmed that PAT gene was stably integrated into tobacco genome.When herbicide, basta, was sprayed to the plants confirmed by PCR, the transgenic plants showed normal growth, whereas normal plants died. Therefore, the result of this experiment show that tobacco transformation for the resistance to basta, non-selective herbicide, was successful because PAT gene was stably integrated into tobacco.

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담배식물체에 PMT(Putrescine N-Methyltransferase) antisense RNA유전자 도입 (Introduction of PMT(Putrescine N-Methyltransferase) Antisense RNA to Tobacco Plants)

  • 김선원;박성원;이정헌;이청호;류명현;복진영;김도훈;최순용
    • 한국연초학회지
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    • 제25권1호
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    • pp.12-19
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    • 2003
  • Transgenic tobacco plants were selected by using the transformation of putrescine N-methyltransferase(PMT) gene, the key enzyme in diverting polyamine metabolism towards the biosynthesis of nicotine. PMT was fused in reverse orientation to the CaMV 35S promoter of the plant expression vector pBTEX(pPAB3) to produce tobacco plants of low nicotine content. To compare nicotine content, only pBTEX vector and PMT gene which was fused in forward orientation to the CaMV 35S promoter(pPAB2) were also transformed to the leaf tobacco plants(Nicotiana tabacum cv. NC82 and N. tabacum cv. Br2l). The presence of sense- and antisense-PMT gene, and pBTEX vector in the transgenic plant was confirmed by genomic PCR.

Expansin 유전자를 이용한 담배의 형질전환 (Tobacco Transformation Using Expansin Genes)

  • 최동수;김호방;김정회;신주식;석영선;정찬문;이이
    • 한국연초학회지
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    • 제27권2호
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    • pp.153-162
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    • 2005
  • Tobacco (Nicotiana tabacum L.) cells were transformed with rice expansin genes, OsEXPA4, OsEXPB3, OsEXPB4, and OsEXPB6, to elucidate the function of the genes in tobacco cells. The transformation increased the mass of the callus by $36\%-65 \%$, and the cell length by $12\%-28\%$. The cell width was decreased by $3\%$ for OsEXPB3, not changed for OsEXPB4, increased by $25\%\;and\;20\%$ for OsEXPA4 and OsEXPB6, respectively. From database search, seven expansin genes were found and six of them belong to EXPA group and one of them belongs to EXPB group. EXLA and EXLB were not found. All tobacco expansin genes were evenly distributed in the phylogenetic tree of rice and Arabidopsis expansin genes.

새로운 선발 마커 D-아미노산 산화효소 유전자를 이용한 식물 형질전환 (D-amino Acid Oxidase (DAO) Gene as a Novel Selection Marker for Plant Transformation)

  • 임선형;우희종;이시명;진용문;조현석
    • Journal of Plant Biotechnology
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    • 제34권1호
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    • pp.31-36
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    • 2007
  • Though higher plants car not metabolize D-amino acid, many prokaryotes and eukaryotes have the D-amino acid metabolism. Therefore, we transformed tobacco plants with D-amino acid oxidase (DAO), which can metabolize D-amino acid, and confirmed that transgenic tobacco plants might metabolize D-amino acid. Transgenic tobacco plants were survived a high concentration of D-serine, however non-transgenic plants were not grown on D-serine medium. From Southern and Northern blot analysis, transgenic tobacco plants selected on D-serine medium were confirmed by insert and expression of transgene. $T_{1}$ tobacco seeds derived $T_{0}$ tobacco plants selfing were grown on D-serine medium and showed normal phenotype compared to wild tobacco plants. Transgenic tobacco plants displayed the metabolic capability of D-serine. Therefore, we suggested that DAO is useful selectable marker gene for plant transformation.

담배 속 식물의 다양한 활용방안 모색 (Usage of Tobacco Plants for Various Purposes)

  • 엄유리;이문순;이이;석영선
    • 한국연초학회지
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    • 제33권1호
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    • pp.8-15
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    • 2011
  • Genus Nicotiana has 76 species including N. tabacum. These plants are used not only as a material for cigarette manufacturing but also as ornamental plant, medicinal plant, poisonous substance plant, and bug repellent plant. N. tabacum is used as a main material for cigarette manufacturing with N. rustica. N. sylvestris and N. alata is used as ornamental plants because of their beautiful flowers and N. rustica is used for bug repellent or pesticide because of its high concentration of nicotine. N. glauca, a tree tobacco, is used for bio-fuel production. N. tabacum is used as a popular model plant system for degeneration, regeneration, and transformation. N. benthamiana is also used as a model system for foreign gene expression by agroinfiltration. The transformation ability of tobacco plant is a good target for molecular farming. Hepatitis B virus envelop protein, E. coli heat-labile enterotoxin, diabetes autoantigen, and cholera toxin B subunit were produced using tobacco plants. Secondary metabolites of tobacco include nicotine, anabasine, nornicotine, anatabine, cembranoid, solanesol, linoleic acid, rutin, lignin and sistosterol, and they are used for various medicine productions which cannot be produced by organic synthesis for their complicated structures. In conclusion, we have to understand the applicability of tobacco plant in detail and study to enlarge the usage of the plants.

Stable Expression of TMV Resistance and Responses to Major Tobacco Diseases in the Fifth Generation of TMV CP Transgenic Tobacco

  • Park, Seong-Weon;Lee, Ki-Won;Lee, Cheong-Ho;Kim, Sang-Seock;Park, Eun-Kyung;Choi, Soon-Yong
    • 한국연초학회지
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    • 제20권1호
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    • pp.66-70
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    • 1998
  • TMV resistant lines (TRLs) originated from the Blo plant of Nicotiana tabacum cv. NC82 transformed with TMV coat protein cDNA which initially showed delayed disease symptom were selected for increased resistance in each subsequent generation. The result of field experiment of the transgenic tobacco lines in the fifth generation for TMV resistance and their response to other tobacco diseases (black shank, bacterial wilt, and powdery mildew) is described in this report. When fifteen TRLs of the fifth generation were tested for TMV resistance by mechanically inoculating the individual plants, over 95 percent of the plants of 6 lines showed complete resistance even 8 weeks after the inoculation. Average frequency of the resistant plants in TRLs of the fifth generation 8 weeks after the inoculation was 87%. Stable insertion and expression of TMV coat protein cDNA in the fifth generation of the transgenic tobacco plant were confirmed by PCR and immunoblot hybridization, respectively. All TRLs were resistant to the black shank but were susceptible to the bacterial wilt disease and the powdery mildew to the same degree as non-transgenic NC82 was. Therefore, it was indicated that the phenotypes related at least to disease resistance were not changed in the transgenic tobacco. Key words : TMV CP cDNA, TMV resistant tobacco plant, transformation.

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연초의 형질전환을 위한 새로운 표지유전자로서 Mouse Adenosine Deaminase 유전자의 이용가능성 (Adenosine Deaminase Gene: Possible Selectable Marker for Tobacco Transformation)

  • 양덕춘;한성수;윤의수
    • 식물조직배양학회지
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    • 제22권4호
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    • pp.235-240
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    • 1995
  • 식물세포의 형질전환을 위한 새로운 표지유전자의 개발은 식물유전공학의 중요한 관건이 되고 있다. 본 실험은 독성 adenosine 유도체인 9-$\beta$-D-arabinofuranosyl adenine (Ara-A)과 cordycepin등에 저항을 나타내는 adenosine deaminase (ADA) 유전자를 새로운 식물세포의 형질전환용 표지유전자로 사용코자 수행하였다. 정상식물체에서는 치사하는 농도인 Ara-A 100 $\mu$M과 cordycepin 50 $\mu$M이 함유된 선발배지에서 ADA 유전자에 의하여 형질전환된 연초식물체는 생존이 가능하였으며 성공적으로 형질전환체를 선발할 수 있었다. 또한 형질전환된 연초식물체에서 획득한 종자도 동일한 선발배지에서 ADA 유전자가 유전된 종자와 유전되지 않은 종자를 쉽게 구별할 수 있었다. 이런 결과는 동물유전자인ADA 유전자를 연초조직의 새로운 형질전환용 표지유전자로 사용할 수 있음을 시사한다.

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Expression of a Functional Anti-Cucumber Mosaic Virus Single-Chain Variable Fragment Antibody in Tobacco Plants (Nacotiana tabacum)

  • Heng Chua Kek;Khalid Norzulaani;Othman Retina Yasmin
    • Journal of Plant Biotechnology
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    • 제8권1호
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    • pp.9-14
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    • 2006
  • As an alternative method to produce low cost reagents for immunodiagnosis and protect the plants from viral disease, a gene encoding a single chain variable fragment(scFv) recombinant antibody targeted to the coat protein of cucumber mosaic virus (CMV) was expressed in Nacotiana tabacum. The source of the scFv recombinant antibody gene was from spleen tissue of an immunized mouse. The gene was initially cloned into the pCANTAB5E phagemid and expressed in E. coli. In the following study, the antibody gene was subcloned into the plant expression vector, pCAMBIA-1301 and introduced into tobacco leaf tissue via Agrobacterium tumefacients mediated transformation. After transformation, 56 out of 58 plants were shown to carry the desired anti-CMV scFv gene by PCR analysis. Overall, only 12.5% of the 56 putative transgenic plants were found to express the antibody to a detectable level.

감자 바이러스 Y 비전이성 외피단백질 cDNA의 형질전환에 의한 바이러스 저항성 연초품종 개발 (Development of Potato Virus Y Resistant Tobacco Plant by Transformation of the Untranslatable Viral Coat Protein Encoding cDNA)

  • 이청호;이영기;강신웅;박성원;김상석;박은경
    • 한국연초학회지
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    • 제19권2호
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    • pp.117-123
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    • 1997
  • Viral coat protein (CP) encoding cDNA with artificial start and stop codons was synthesized by reverse-transcriptase polymerase chain reaction (RT-PCR) from the Korean isolate of potato virus Y-vein nectrosis strain (pVY-VN). To make PVY CP cDNA to untranslatable form, three stop codons were inserted near the start codon by "megaprimer-PCR" method. The untranslatable CP cDNA was subcloned to plant expression vector and transferred to N. tabacum cv. NC82 by Agrobacterium-mediated transformation. Highly resistant plants to PVY infection were screened, based on symptom development after mechanical virus inoculation. By genomic PCR and Southern blot analysis, one or more copies of the untranslatable CP gene were found in all transformants. From northern blot analysis, highly resistant transgenic lines had very low level of CP transcript but susceptible lines had high level, suggesting resistance to PVY infection should be related to RNA-mediated mechanism.mechanism.

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Effect of Aminoglycoside Antibiotics on in-Vitro Morphogenesis from Cultured Cells of Chrysanthemum and Tobacco

  • Teixeira da Silva, Jaime A.;Fukai, Seiichi
    • Journal of Plant Biotechnology
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    • 제6권1호
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    • pp.25-37
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    • 2004
  • Successful genetic transformation of plants requires non-chimeric selection of transformed tissues and their subsequent regeneration. With rare exceptions, most transformation protocols still rely heavily on antibiotics for selecting transgenic cells that contain an antibiotic-degrading selectable marker gene. Here, the morphogenic capacity of in-vitro explants of chrysanthemnum and tobacco stems and leaves (control and transgenic) changed with the addition of aminoglycoside antibiotics (AAs), In a test of 6 AAs, phytotoxicity occurred at concentrations of 10 to 25 and 50 to 100$\mu\textrm{g}$ $mL^{-1}$ in chrysanthemum and tobacco explants, respectively. Light conditions as well as explant source and size also had significant effects. The use of transverse thin cell layers (tTCLs), in conjunction with high initial AA selection levels, supported the greatest regeneration of transgenic material (adventitious shoots or callus) and the lowest number of escapes. Flow-cytometric analyses revealed no endodu-plication in chrysanthemum, even at high AA levels. However, this phenomenon was observed in tobacco calli(8C or more), even at low AA concentrations (i.e., 5 to 10 $\mu\textrm{g}$ mL$^{-1}$ ).