• Title/Summary/Keyword: 식물 형질전환

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Quality and Sensory Characteristics of Transgenic Perilla (Perilla frutescens) Overexpressing Rot 3 gene (형질전환 들깨잎의 품질 및 관능적 특성)

  • Lee, Hyeon-Suk;Kim, Kyung-Tae;Sohn, Jae-Keun;Kim, Kyung-Min
    • Journal of Plant Biotechnology
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    • v.33 no.2
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    • pp.111-115
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    • 2006
  • This study was carried out to establish genetic transformation of Rot 3 gene into perilla plants and to evaluate aromatic compounds, brightness, anthocyanin contents and leaf index in Rot 3 overexpressing transgenic lines. Rot 3 transmitted successfully from T$_1$ to T$_2$ generation showing stable gene expression. It revealed that there was no difference between transgenic and non-transgenic plants in major agronomic characteristics of progeny analysis. There was not much difference in aromatic compounds and leaf brightness did not showed variations between transgenic and non-transgenic, but leaf index was distinguished, respectively.

Transformation of PAT gene into Lettuce (Lactuca sativa L.) using Agrobacterium tumefaciens (Agrobacterium tumefaciens를 이용한 상추 (Lactuca sativa L.)의 PAT유전자 형질전환)

  • 류정아;김창길;이현숙;최경배;양덕춘
    • Korean Journal of Plant Tissue Culture
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    • v.28 no.4
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    • pp.197-200
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    • 2001
  • Agrobacterium tumefaciens MP90 harboring PAT (phosphinothricin acetyltransferase) and NPTII-GUS gene were used for the genetic transformation of lettuce (Lactuca Sativa L.). Shoot regeneration from cotyledon explants were obtained from the MS medium supplemented with 0.1 mg.L$^{-1}$ NAA, 1.0 mg.L$^{-1}$ 2ip, 50 mg.L$^{-1}$ kanamycin and 500 mg.L$^{-1}$ carbenicillin after cocultivation with A. tumefaciens for 2 days. Kanamycin resistance test of transgenic plants indicated that the NPTII gene was integrated into the lettuce genome and was stably expressed. PCR and northern blot analysis indicated that bialaphos resistance gene (PAT) was stably integrated into the lettuce genome. The transgenic plant sprayed with Basta (1500x) remained healthy with continuous growth, while the control group exhibited fatality.

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유전자총 및 Agrobacterium을 이용한 Bentgrass의 형질전환

  • 임용우;김기용;정영수
    • Proceedings of the Korean Society of Grassland Science Conference
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    • 1999.06a
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    • pp.74-74
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    • 1999
  • Bentgrass의 형질전환식물 생산을 위하여 유전자총 (Gene-gun) 및 Agrobacterium기법을 이용하여 형질전환을 시도한 결과를 요약하면 다음과 같다. 1. 캘러스의 유도 및 증식 : Bentgrass (Agrostis palustris)의 종자를 MS-5 배지 (MS 기본배지, 2,4-D 5mg/L, casein hydrolysate 2g 포함)에 치상하여 캘러스를 유도하였다. 유도된 캘러스는 증식을 위하여 MS-3 배지 (MS기본배지, 2,4-D 3mg/L, casein hydrolysate 2g 포함)에서 2주 간격으로 subculture 하였다.(중략)

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Increment of fructan biosynthesis in rice by transformation of 1-sst and 1-fft genes isolated from jerusalem artichoke (Helianthus tuberosus L.) (돼지감자 유래 1-sst와 1-fft 유전자의 형질전환 발현에 의한 벼의 fructan 생합성 증진)

  • Kang, Kwon-Kyoo;Song, Beom-Heon;Lee, Gyong-A;Lee, Hye-Jung;Park, Jin-Ha;Jung, Yu-Jin;Cho, Yong-Gu
    • Journal of Plant Biotechnology
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    • v.37 no.1
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    • pp.102-109
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    • 2010
  • Fructan has been found to accumulate in various tissues during periods when light levels increased carbon fixation where low temperatures reduced growth rates while photosynthesis continued. In this study, we have cloned 1-sucrose:sucrose fructosyl transferase(1-sst) and 1-fructan: fructan fructosyl transferase (1-fft, a key enzyme for the synthesis of fuctan) from Jerusalem Artichoke (Helianthus tuberosus L.). The recombinant vector with 1-sst and 1-fft has been constructed under the control of 35S promoter of KJGV-B2 vector and transgenic plants obtained by Agrobacterium tumefaciens LBA4404. PCR analysis carried out on the putative transgenic plants for amplification of the coding region of specific gene (1-sst, 1-fft), and HPT genes. Transgenic lines carrying of 1-sst and 1-fft were confirmed for integration into the rice genome using Southern blot hybridization and RT-PCR. The transgenic plants in $T_2$ generation were selected and expression pattern analysis revealed that 1-sst and 1-fft were stable. This analysis confirmed the presence of low-molecular-weight fructan in the seedling of the transgenic rices. Therefore, cold tolerance and carbohydrate metabolism will be possible to develop resistant plants using the transgenic rice.

CaM-5, a soybean calmodulin, is required for disease resistance against both a bacterial and fungal pathogen in tomato, Lycopersicum esculentum (대두 calmoduine유전자 SCaM-5를 발현하는 형질전환 토마토의 병 저항성 검정)

  • Lee, Hyo-Jung;Baek, Dong-Won;Lee, Ok-Sun;Lee, Ji-Young;Kim, Dong-Giun;Chung, Woo-Sik;Yun, Jae-Gil;Lee, Sin-Woo;Kwak, Sang-Soo;Nam, Jae-Seung;Kim, Doh-Hoon;Yun, Dae-Jin
    • Journal of Plant Biotechnology
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    • v.33 no.2
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    • pp.93-97
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    • 2006
  • The calmodulin as a Ca$^{2+}$-binding protein mediates cellular Ca$^{2+}$ signals in response to a wide array of stimuli in higher eukaryotes. Plants produce numerous calmodulin isoforms that exhibit differential gene expression patterns and sense different Ca$^{2+}$ signals. SCaM-5 is a soybean calmodulin that is involved in plant defense signaling. Here, we constructed a SCaM-5 CDNA under control of CaMV 35S promoter and transformed it into tomato (Lycopersicon esculentum). The constitutive over-expression of SCaM-5 in tomato plants exhibited a high levels of pathogenesis-related (PR) gene expression, and conferred an enhanced resistance to two fungal pathogen (Phytophthora capsici, Fusarium oxysporum), and a bacterial pathogen, Pseudomonas syringae pv. tomato DC3000. Thus, this results collectively suggest that SCaM-5 plays an important role in plant defense of tomato.

Visible and Fast Assay System for Tobacco Transformant Introduced with Adenosine Deaminase Marker Gene (Adenosine Deaminase 표지유전자로 형질전환된 연초의 신속한 Assay 방법)

  • 양덕춘;김용환;임학태;방극수;배창휴
    • Korean Journal of Plant Tissue Culture
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    • v.28 no.3
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    • pp.165-171
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    • 2001
  • New visible and fast assay system have been developed for tobacco transformant introduced with adenosine deaminase (ADA) marker gene, which converts cytotoxic adenosine analogues to non-toxic inosine analogues and ammonia. Ammonia was changed to blue color in the solution of phenol-nitoprusside and alkaline-hypochlorite. It was possible to detect activity of ADA visibly on the holes of 96 well plate using tiny explant of transgenic tobacco leaves within 1 hour incubation time. As substrates of ADA enzyme from transgenic plant on the plate, a number of adenosine analogues such as 9-D-arabinofuranosyl adenine, cordycepin, 2'-deoxyadenosine, adenosine and xylofuranosyl adenine were possible for detection of ADA activity. Optimal condition of substrate for ADA enzyme was each 10 mM and pH 7.5 in adenosine solution. Especially, transgenic plant did not convert adenosine to inosine and ammonia in the presence of ADA inhibitor deoxycoformycin, which means that ammonia produced from transgenic plant is due to expression of ADA gene. Now, we show that this detection system can be easily, sensitively, fast and cheaply as well as visibly assayed in vitro as GUS gene system with very small size of transformant explant.

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Transformation of Taraxacum mongolicum Hand by Agrobacterium tumefaciens (Agrobacterium tumefaciens 에 의한 민들레의 형질전환)

  • 여상언;노광수
    • KSBB Journal
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    • v.16 no.5
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    • pp.480-485
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    • 2001
  • Genetic transformation in dandelion(Taraxacum mongolicum Hand). was studied. We used for transformation by Agrobacterium tumefaciens strian LBA4404 harboring a binary vector pBI121 carrying the CaMV 35S promoter-GUS gene fusion used as a reporter gene and NOS promoter-NPTII gene as a positive selection marker. To obtain transformed plants, leaf explants of dandelion were cocultured with Agrobacterium tumefaciens LBA4404 for 10 mins, then transferred to MS medium containing 1 $\mu$M IAA, 1$\mu$M BA, 100$\mu$g/ML carbenicillin and 50 $\mu$g/ML kanarmycin sulfate. After two weeks of subculture of the explants, Kanamycin-resistant shoots were formed on explants survived. When subjected to GUS histochemical assay, all of the regenerants showed the GUS-positive responses. Plantlets were be be transformed to soil for further growth.

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Regeneration of Fertile Transgenic Rice Plane from a Korean Cultivar, Nakdongbyeo (한국 재배종 낙동벼에서 임성 형질전환식물체의 재분화)

  • Soo In LEE;Hyun Jin CHUN;Chae Oh LIM;Jeong Dong BAHK;Moo Je CHO
    • Korean Journal of Plant Tissue Culture
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    • v.22 no.3
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    • pp.175-182
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    • 1995
  • Rice is one of the most successful monocot in regenerating fertile and genetically stable transgenic plants. However there is no report of a rice line developed in Korea that can be used for regeneration of fertile and genetically stable transformants. In this paper we first demonstrate that a Korean variety Nakdongbyeo, is suitable to obtain transgenic rice plants. Protoplasts from embryogenic suspension cultures were co-transformed with HPT (hygromycin phosphotransferase) and GUS ($\beta$-glucuronidase) genes in separate plasmids in the presence of PEG (polyethylene glycol). In 5 independent experiment, the average frequency of calli showing hygromycin resistance were 1.73%. Plantlets were regenerated from the Hy $g^{R}$ calli. The average efficiency of plantlet regeneration was apprbximately 27%. Based on the GUS activities of hygromycin resistant calli, ca.35% of the resistant calli carried active GUS genes. The R0 transgenic plantlets were grown to maturity and Rl seeds were obtained. By examining the in siぉ activity of GUS in Rl seeds and seedlings, we confirmed that the GUS transgene driven by a CaMV 35S (cauliflower mosaic virus) promoter showed proper expression patterns. We also confirmed Mendelian segregation of the HPT transgene in the Rl generation.n.

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Agrobacterium- mediated Genetic Transformation and Plant Regeneration of Sweetpotato (Ipomoea batatas) (Agrobacterium 매개에 의한 고구마 형질전환 및 식물체 재분화)

  • Lim, Soon;Yang, Kyoung-Sil;Kwon, Suk-Yoon;Paek, Kee-Yoeup;Kwak, Sang-Soo;Lee, Haeng-Soon
    • Journal of Plant Biotechnology
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    • v.31 no.4
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    • pp.267-271
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    • 2004
  • Transformed sweetpotato (Ipomoea batatas (L.) Lam. cv. Yulmi) plants were developed from embryogenic calli following Agrobacterium tumefaciens-mediated transformation. A. tumefaciens strain EHA105/pCAMBIA2301 harboring genes for intron $\beta$-glucuronidase (GUS) and kanamycin resistance. Transient expression of GUS gene was found to be higher when embryogenic calli were co-cultivated with Agrobacterium for 2 days. The co-cultured embryogenic calli transferred to selective MS medium containing 1mg/L 2,4-D, 100mg/L kanamycin, and 400mg/L claforan. These embryogenic calli were subcultured to the same selection medium at 4 weeks interval. Kanamycin-resistant calli transferred to hormone-free MS medium with kanamycin gave rise to somatic embryos and then converted into plantlets in the same medium. Southern blot analysis confirmed that the GUS gene was inserted into the genome of the sweetpotato plants. A histochemical assay revealed that the GUS gene was preferentially expressed in the leaf, petiole, and vascular tissue and tip of root.

Transgene structures of marker-free transgenic Bt rice plants (무선발 형질전환 Bt벼의 도입유전자 구조 분석)

  • Woo, Hee-Jong;Lee, Seung Bum;Lim, Myung-Ho;Gwon, Sun-Jong;Lee, Jin-Hyoung;Shin, Kong-Sik;Cho, Hyun-Suk
    • Journal of Plant Biotechnology
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    • v.40 no.3
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    • pp.135-140
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    • 2013
  • A less simple approach developed for generation of marker-free transgenic plants is to select transformants without the use of selective marker genes. Some results about development of marker-free transgenic plants were obtained using a non-selective approach in several crops such as rice, potato and tobacco. However, the study did not provide evidence on detailed characterization of introduced gene on genome, a critical step for confirming the stable integration and transmission of a foreign gene. In this study, we evaluated structure and integration sites of transgene (mCry1Ac) in the transgenic Bt rice plants which were made via conventional Agrobacterium-mediated transformation by non-selective method. Structure and integration sites of transgene in these transgenic plants had similar fashion as those recovered under selection.