• 제목/요약/키워드: piggyBac

검색결과 12건 처리시간 0.029초

말라리아 매개 모기 Anopheles stephensi에서 트랜스포존 piggyBac을 이용한 Pax6 발현 (Transposon piggyBac mediated Ipax6 Expression in Malaria Vector Anopheles stephensi)

  • 구혜영
    • 한국발생생물학회지:발생과생식
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    • 제8권1호
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    • pp.19-25
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    • 2004
  • Pax6는 진화적으로 잘 보존된 homeobox유전자 그룹의 하나로 배 발생기 동안 시공간적으로 제한되어 발현된다. 이 실험은 말라리아 매개모기인 Anopheles stephemi에서의 Pax6 발현을 서로 다른 분자환경 조건에서 조사해 보기 위해 트랜스포존의 하나인 piggyBac과 Pax6에 결합하는 3xp3-EGFP를 사용한 생식세포 형질전환 방법을 사용하였다. 4개의 형질 전환 계열이 만들어졌고 형질전환율은 6.7%였으며, 도입 유전자는 여러 세대에 걸쳐 안정적으로 발현되었다. 4계열은 3가지의 공간적 발현 형태를 보였으며 이는 트랜스포존 삽입 위치에 따른 enhancing혹은 silencing의 결과로 예상된다. 이 결과를 통해 트랜스포존 piggyBac을 사용한 형질전환 시스템은 일반적인 보고자 유전자 발현 실험에서 다양한 형태의 공간적 발현 결과를 유도하는 매우 효율적인 방법으로 사용될 수 있으리라 예상된다

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락토페린 유전자도입 piggyBac 벡터에 의한 누에 형질전환 (Germ Line Transformation of the Silkworm, Bombyx mori L. with a piggyBac Vector Harboring the Human Lactoferrin Gene)

  • 김용순;손봉희;김기영;정이연;김미자;강필돈
    • 한국잠사곤충학회지
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    • 제49권2호
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    • pp.37-42
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    • 2007
  • 락토페린 cDNA 유전자를 도입시킨 누에 형질전환 실험을 수행한 결과, 다음과 같은 결과를 얻을 수 있었다. 1. 사람 GI-101 세포주의 mRNA로부터 클로닝 된 락토페린 cDNA 유전자의 개시코돈 ATG와 종결코돈 TAA를 포함하는 open reading frame(2,136 bp) 영역을 확인하였다. 2. Sf9 배양세포의 조추출물 시료에 의한 Western blot 분석 결과, 락토페린으로 추정되는 약 80kDa의 단백질 발현을 확인하였다. 3. 누에 형질전환에 높은 전이효율과 활성을 나타내는 트랜스포존을 이용한 전이벡터 pPIGA3GFP를 개조하여 락토페린 cDNA를 삽입시킨 전이벡터 pPT-HLf를 구축하였다. 4. DNA 미량 주사법에 의한 누에 형질전환 개체의 발현 비율은 약 6.7% 정도를 나타냈다. 5. 형질전환 누에(G0) 동일한 세대간 교배 및 처리하지 않은 성충간의 역교배에 의한 차세대(G1) 개체로부터 락토페린 유전자와 동일한 크기의 2.1 kb DNA 단편을 확인 할 수 있었으며, 형질전환 G1 세대의 조추출물 시료에 의한 Western blot 분석 결과, 표준 락토페린 항체와 반응하는 약 80 kDa의 단백질 발현을 확인할 수 있었다.

비바이러스 In Ovo 직접주입법에 의한 메추리 형질전환 시스템 (Non-Viral Transgenesis via Direct In Ovo Lipofection in Quail)

  • 박태섭;한재용
    • 한국가금학회지
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    • 제42권3호
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    • pp.239-245
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    • 2015
  • Transgenic animals have been widely used for developmental biology studies, as disease models, and even in industry such as transgenic bioreactor animals. For transgenic birds, quail has the great advantages of small body size, short generation time, and frequent egg production. To date, retroviral or lentiviral transduction has been used to generate transgenic quail for various purposes. However, the efficiency of transgenic offspring production with these methods is relatively low and viral vector usage has safety issues. Unfortunately, non-viral transgenesis has not been established in quail due to a deficiency of stem cell and germ cell culture systems. In this study, we established a direct in ovo lipofection method that could be used to create transgenic quail without germline-competent cells or viruses. To optimize the injection stage during embryo development, the liposome complex (containing piggyBacCMV-GFP and transposase plasmids) was introduced into an embryonic blood vessel at 50 hr, 55 hr or 60 hr. GFP expression was detected in various tissues (heart, kidney, liver and stomach) on day 12 of incubation under a fluorescence microscope. Additionally, GFP-positive cells were detected in the recipient embryonic gonads. In conclusion, the direct in ovo lipofection method with the piggyBac transposon could be an efficient and useful tool for generating transgenic quail.

The innate immune response transcription factor Bombyx mori Relish1 induces high-level antimicrobial peptides in silkworm

  • Kim, Seong-Wan;Kim, Seong-Ryul;Goo, Tae-Won;Choi, Kwang-Ho
    • International Journal of Industrial Entomology and Biomaterials
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    • 제37권2호
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    • pp.49-54
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    • 2018
  • To artificially enhance antimicrobial peptide expression in Bombyx mori, we constructed genetically engineered silkworms overexpressing Rel family transcription factor. The truncated BmRelish1 (BmRelish1t) gene contained a Rel homolog domain (RHD), nuclear localization signal (NLS), acidic and hydrophobic amino acid (AHAA)-rich region, and death domain (DD), but no ankyrin-repeat (ANK) domain. The BmRelish1t gene was controlled by B. mori cytoplasmic actin 3 promoter in the PiggyBac transposon vector. Chromosome analysis of G1 generations of a transgenic silkworm with EGFP expression confirmed stable insertion of BmRelish1t. BmRelish1t gene overexpression in transgenic silkworms resulted in higher mRNA expression levels of B. mori antimicrobial peptides such as lebocin(~20.5-fold), moricin(~8.7-fold), and nuecin(~17.4-fold) than those in normal silkworms.

Gene-editing techniques and their applications in livestock and beyond

  • Tae Sub Park
    • Animal Bioscience
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    • 제36권2_spc호
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    • pp.333-338
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    • 2023
  • Genetic modification enables modification of target genes or genome structure in livestock and experimental animals. These technologies have not only advanced bioscience but also improved agricultural productivity. To introduce a foreign transgene, the piggyBac transposon element/transposase system could be used for production of transgenic animals and specific target protein-expressing animal cells. In addition, the clustered regularly interspaced short palindromic repeat-CRISPR associated protein 9 (CRISPR-Cas9) system have been utilized to generate chickens with knockout of G0/G1 switch gene 2 (G0S2) and myostatin, which are related to lipid deposition and muscle growth, respectively. These experimental chickens could be the invaluable genetic resources to investigate the regulatory pathways and mechanisms of improvement of economic traits such as fat quantity and growth. The gene-edited animals could also be applicable to the livestock industry.

인간 유래 Stem Cell Factor (hSCF) 재조합단백질이 발현되는 누에형질전환체 제작 (Construction of Transgenic Silkworms Expressing Human Stem Cell Factor (hSCF))

  • 김성완;윤은영;김성렬;박승원;강석우;권오유;구태원
    • 생명과학회지
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    • 제21권12호
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    • pp.1726-1731
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    • 2011
  • 본 연구의 목적은 누에형질전환체를 이용하여 재조합단백질 대량생산 시스템을 개발하는 것으로서, 본 실험에서는 hSCF유전자를 이용하여 누에에서 재조합단백질을 생산하였다. 실험에 사용된 piggyBac 전이벡터는 hSCF 유전자의 발현 조절을 위해 초파리 유래의 dHsp70 promoter를 사용하였고, EGFP marker유전자는 3xP3 promoter로 발현을 조절하였다. 총 1,020 개의 누에알에 microinjection 하여 G1 세대에서 22 bloods의 형질전환체를 선발하였고, 선발된 누에형질전환체는 초기배 단계의 눈과 신경조직, 유충과 번데기 그리고 성충의 눈에서 GFP 형광을 관찰 할 수 있었다. hSCF 재조합단백질의 발현은 Western blot 분석으로 확인 할 수 있었고, inverse PCR 분석을 통해서 누에 게놈에 전이벡터가 삽입된 것을 확인할 수 있었다. 지금까지의 실험 결과에서 hSCF 재조합 단백질이 누에에서 생산될 수 있음을 확인 할 수 있었다. 비록 누에에서 생산된 hSCF 재조합단백질의 생리활성에 대한 실험이 추후에 요구되지만, 이러한 실험결과는 piggyBac 전이벡터와 microinjection 법으로 누에에서 고부가가치의 재조합단백질을 대량생산 할 수 있음을 보여 주었다고 할 수 있겠다. 따라서 누에를 유용물질 생산을 위한 생체반응기로서 활용할 수 있을 것으로 기대된다.

hEPO 유전자의 유선조직 특이적 발현에 대한 In Vitro 검정 (In Vitro Assay of Mammary Gland Tissue Specific hEPO Gene Expression)

  • 구본철;권모선;김태완
    • Reproductive and Developmental Biology
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    • 제40권1호
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    • pp.7-13
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    • 2016
  • Effectiveness of transgene transfer into genome is crucially concerned in mass production of the bio-pharmaceuticals using genetically modified transgenic animals as a bioreactor. Recently, the mammary gland has been considered as a potential bioreactor for the mass production of the bio-pharmaceuticals, which appears to be capable of appropriate post-translational modifications of recombinant proteins. The mammary gland tissue specific vector system may be helpful in solving serious physiological disturbance problems which have been a major obstacle in successful production of transgenic animals. In this study, to minimize physiological disturbance caused by constitutive over-expression of the exogenous gene, we constructed new retrovirus vector system designed for mammary gland-specific expression of the hEPO gene. Using piggyBac vector system, we designed to express hEPO gene under the control of mammary gland tissue specific and lactogenic hormonal inducible goat ${\beta}$-casein or mouse Whey Acidic Protein (mWAP) promoter. Inducible expression of the hEPO gene was confirmed using RT-PCR and ELISA in the mouse mammary gland cells treated with lactogenic hormone. We expect the vector system may optimize production efficiency of transgenic animal and reduce the risk of global expression of transgene.

Efficient transgene expression system using a cumate-inducible promoter and Cre-loxP recombination in avian cells

  • Park, Tae Sub;Kim, Si Won;Lee, Jeong Hyo
    • Asian-Australasian Journal of Animal Sciences
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    • 제30권6호
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    • pp.886-892
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    • 2017
  • Objective: Transgenic technology is widely used for industrial applications and basic research. Systems that allow for genetic modification play a crucial role in biotechnology for a number of purposes, including the functional analysis of specific genes and the production of exogenous proteins. In this study, we examined and verified the cumate-inducible transgene expression system in chicken DF1 and quail QM7 cells, as well as loxP element-mediated transgene recombination using Cre recombinase in DF1 cells. Methods: After stable transfer of the transgene with piggyBac transposon and transposase, transgene expression was induced by an appropriate concentration of cumate. Additionally, we showed that the transgene can be replaced with additional transgenes by co-transfection with the Cre recombinase expression vector. Results: In the cumate-GFP DF1 and QM7 cells, green fluorescent protein (GFP) expression was repressed in the off state in the absence of cumate, and the GFP transgene expression was successfully induced in the presence of cumate. In the cumate-MyoD DF1 cells, MyoD transgene expression was induced by cumate, and the genes controlled by MyoD were upregulated according to the number of days in culture. Additionally, for the translocation experiments, a stable enhanced green fluorescent protein (eGFP)-expressing DF1 cell line transfected with the loxP66-eGFP-loxP71 vector was established, and DsRed-positive and eGFP-negative cells were observed after 14 days of co-transfection with the DsRed transgene and Cre recombinase indicating that the eGFP transgene was excised, and the DsRed transgene was replaced by Cre recombination. Conclusion: Transgene induction or replacement cassette systems in avian cells can be applied in functional genomics studies of specific genes and adapted further for efficient generation of transgenic poultry to modulate target gene expression.