• 제목/요약/키워드: Engineered nuclease

검색결과 8건 처리시간 0.02초

식물에서의 상동재조합을 이용한 효율적인 진타겟팅 시스템 (An efficient gene targeting system using homologous recombination in plants)

  • 권용익;이효연
    • Journal of Plant Biotechnology
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    • 제42권3호
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    • pp.154-160
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    • 2015
  • The plant breeding technology was developed with genetic engineering. Many researchers and breeders have turned from traditional breeding to molecular breeding. Genetically modified organisms (GMO) were developed via molecular breeding technology. Currently, molecular breeding technologies facilitate efficient plant breeding without introducing foreign genes, in virtue by of gene editing technology. Gene targeting (GT) via homologous recombination (HR) is one of the best gene editing methods available to modify specific DNA sequences in genomes. GT utilizes DNA repair pathways. Thus, DNA repair systems are controlled to enhance HR processing. Engineered sequence specific endonucleases were applied to improve GT efficiency. Engineered sequence specific endonucleases like the zinc finger nuclease (ZFN), TAL effector nuclease (TALEN), and CRISPR-Cas9 create DNA double-strand breaks (DSB) that can stimulate HR at a target site. RecQl4, Exo1 and Rad51 are effectors that enhance DSB repair via the HR pathway. This review focuses on recent developments in engineered sequence specific endonucleases and ways to improve the efficiency of GT via HR effectors in plants.

Generation of knockout mouse models of cyclin-dependent kinase inhibitors by engineered nuclease-mediated genome editing

  • Park, Bo Min;Roh, Jae-il;Lee, Jaehoon;Lee, Han-Woong
    • Laboraroty Animal Research
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    • 제34권4호
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    • pp.264-269
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    • 2018
  • Cell cycle dysfunction can cause severe diseases, including neurodegenerative disease and cancer. Mutations in cyclin-dependent kinase inhibitors controlling the G1 phase of the cell cycle are prevalent in various cancers. Mice lacking the tumor suppressors $p16^{Ink4a}$ (Cdkn2a, cyclin-dependent kinase inhibitor 2a), $p19^{Arf}$ (an alternative reading frame product of Cdkn2a,), and $p27^{Kip1}$ (Cdkn1b, cyclin-dependent kinase inhibitor 1b) result in malignant progression of epithelial cancers, sarcomas, and melanomas, respectively. Here, we generated knockout mouse models for each of these three cyclin-dependent kinase inhibitors using engineered nucleases. The $p16^{Ink4a}$ and $p19^{Arf}$ knockout mice were generated via transcription activator-like effector nucleases (TALENs), and $p27^{Kip1}$ knockout mice via clustered regularly interspaced short palindromic repeats/CRISPR-associated nuclease 9 (CRISPR/Cas9). These gene editing technologies were targeted to the first exon of each gene, to induce frameshifts producing premature termination codons. Unlike preexisting embryonic stem cell-based knockout mice, our mouse models are free from selectable markers or other external gene insertions, permitting more precise study of cell cycle-related diseases without confounding influences of foreign DNA.

랫드 배아 조작 효율 향상을 위한 배양 조건 (Culture Conditions for Improving Manipulation Efficiency of Rat Embryo)

  • 이지민
    • 한국환경과학회지
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    • 제32권3호
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    • pp.173-179
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    • 2023
  • Rats are one of the most widely used animals in biomedical sciences because their metabolism and physiology are comparable to humans. In recent years, gene-targeted models have been developed using various animal species utilizing engineered nucleases such as clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated gene (Cas). It has recently become possible to efficiently transfect CRISPR/Cas into embryos via electroporation. However, electroporation can damage fertilized eggs; therefore, it is important to determine the optimal embryo culture conditions. A standardized approach for routine and reproducible rat transgenesis will render rat models more accessible for research. We performed experiments to obtain rat embryos with efficient superovulation and synchronization, and to investigate the appropriate medium conditions for pronuclear stage embryos subjected to electroporation stimulation for the introduction of engineered nuclease.

Production of Knockout Mice using CRISPR/Cas9 in FVB Strain

  • Bae, Hee Sook;Lee, Soo Jin;Koo, Ok Jae
    • 한국수정란이식학회지
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    • 제30권4호
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    • pp.299-303
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    • 2015
  • KO mice provide an excellent tool to determine roles of specific genes in biomedical filed. Traditionally, knockout mice were generated by homologous recombination in embryonic stem cells. Recently, engineered nucleases, such as zinc finger nuclease, transcription activator-like effector nuclease and clustered regularly interspaced short palindromic repeats (CRISPR), were used to produce knockout mice. This new technology is useful because of high efficiency and ability to generate biallelic mutation in founder mice. Until now, most of knockout mice produced using engineered nucleases were C57BL/6 strain. In the present study we used CRISPR-Cas9 system to generate knockout mice in FVB strain. We designed and synthesized single guide RNA (sgRNA) of CRISPR system for targeting gene, Abtb2. Mouse zygote were obtained from superovulated FVB female mice at 8-10 weeks of age. The sgRNA was injected into pronuclear of the mouse zygote with recombinant Cas9 protein. The microinjected zygotes were cultured for an additional day and only cleaved embryos were selected. The selected embryos were surgically transferred to oviduct of surrogate mother and offsprings were obtained. Genomic DNA were isolated from the offsprings and the target sequence was amplified using PCR. In T7E1 assay, 46.7% among the offsprings were founded as mutants. The PCR products were purified and sequences were analyzed. Most of the mutations were founded as deletion of few sequences at the target site, however, not identical among the each offspring. In conclusion, we found that CRISPR system is very efficient to generate knockout mice in FVB strain.

Current status and future of gene engineering in livestock

  • Dong-Hyeok Kwon;Gyeong-Min Gim;Soo-Young Yum;Goo Jang
    • BMB Reports
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    • 제57권1호
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    • pp.50-59
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    • 2024
  • The application of gene engineering in livestock is necessary for various reasons, such as increasing productivity and producing disease resistance and biomedicine models. Overall, gene engineering provides benefits to the agricultural and research aspects, and humans. In particular, productivity can be increased by producing livestock with enhanced growth and improved feed conversion efficiency. In addition, the application of the disease resistance models prevents the spread of infectious diseases, which reduces the need for treatment, such as the use of antibiotics; consequently, it promotes the overall health of the herd and reduces unexpected economic losses. The application of biomedicine could be a valuable tool for understanding specific livestock diseases and improving human welfare through the development and testing of new vaccines, research on human physiology, such as human metabolism or immune response, and research and development of xenotransplantation models. Gene engineering technology has been evolving, from random, time-consuming, and laborious methods to specific, time-saving, convenient, and stable methods. This paper reviews the overall trend of genetic engineering technologies development and their application for efficient production of genetically engineered livestock, and provides examples of technologies approved by the United States (US) Food and Drug Administration (FDA) for application in humans.

Measuring and Reducing Off-Target Activities of Programmable Nucleases Including CRISPR-Cas9

  • Koo, Taeyoung;Lee, Jungjoon;Kim, Jin-Soo
    • Molecules and Cells
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    • 제38권6호
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    • pp.475-481
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    • 2015
  • Programmable nucleases, which include zinc-finger nucleases (ZFNs), transcription activator-like effector nucleases (TALENs), and RNA-guided engineered nucleases (RGENs) repurposed from the type II clustered, regularly interspaced short palindromic repeats (CRISPR)-CRISPR-associated protein 9 (Cas9) system are now widely used for genome editing in higher eukaryotic cells and whole organisms, revolutionising almost every discipline in biological research, medicine, and biotechnology. All of these nucleases, however, induce off-target mutations at sites homologous in sequence with on-target sites, limiting their utility in many applications including gene or cell therapy. In this review, we compare methods for detecting nuclease off-target mutations. We also review methods for profiling genome-wide off-target effects and discuss how to reduce or avoid off-target mutations.

Production of Mutated Porcine Embryos Using Zinc Finger Nucleases and a Reporter-based Cell Enrichment System

  • Koo, Ok Jae;Park, Sol Ji;Lee, Choongil;Kang, Jung Taek;Kim, Sujin;Moon, Joon Ho;Choi, Ji Yei;Kim, Hyojin;Jang, Goo;Kim, Jin-Soo;Kim, Seokjoong;Lee, Byeong-Chun
    • Asian-Australasian Journal of Animal Sciences
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    • 제27권3호
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    • pp.324-329
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    • 2014
  • To facilitate the construction of genetically-modified pigs, we produced cloned embryos derived from porcine fibroblasts transfected with a pair of engineered zinc finger nuclease (ZFN) plasmids to create targeted mutations and enriched using a reporter plasmid system. The reporter expresses RFP and eGFP simultaneously when ZFN-mediated site-specific mutations occur. Thus, double positive cells ($RFP^+/eGFP^+$) were selected and used for somatic cell nuclear transfer. Two types of reporter based enrichment systems were used in this study; the cloned embryos derived from cells enriched using a magnetic sorting-based system showed better developmental competence than did those derived from cells enriched by flow cytometry. Mutated sequences, such as insertions, deletions, or substitutions, together with the wild-type sequence, were found in the cloned porcine blastocysts. Therefore, genetic mutations can be achieved in cloned porcine embryos reconstructed with ZFN-treated cells that were enriched by a reporter-based system.

SETDB1 genomic DNA 를 표적하는 TALEN construct 제작 및 분석 (TALEN Constructs and Validation for Targeting of SETDB1 Genomic DNA)

  • 노희정;강윤성;김근철
    • 생명과학회지
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    • 제24권12호
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    • pp.1269-1275
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    • 2014
  • TALEN은 특정유전자를 표적 하여 knock-out 시킬 수 있는 새로운 개념의 유전자 클로닝 방법이다. TALEN 플라스미드에는 DNA binding 도메인과 Fok1 절단효소 기능이 융합되어 있기 때문에, genomic DNA 의 어느 부위라도 결합할 수 있고, 표적 염기서열을 절단하여 유전자 돌연변이를 유도할 수 있다. 본 연구에서 우리는 SETDB1 HMTase 유전자의 단백질 개시코돈 과 프로모터 -25 upstream 부위를 표적 하는 두 종의 TALEN constructs 를 제작하였다. 이를 위하여 두 단계의 클로닝이 진행되었다. 첫 번째는 모듈벡터에서 pFUS배열벡터로 표적서열을 옮겨 콜로니 PCR을 통해 smear밴드와 Esp1 제한 효소를 이용하여 약 1 kb의 insert가 들어 있음을 확인하였다. 두 번째는 배열 벡터로부터 TALEN 발현벡터로 옮기는 과정을 진행하였으며, 염기서열분석을 통해 확인하였다. 그 결과 최초의 고안된 모듈벡터 서열들이 약 100 bp 간격으로 배열되어 있음을 확인하였다. 제작된 TALEN-DBEX2 construct는 transfection을 통해 SETDB1의 발현이 사라지는 것을 확인하였고, T7E1 분석을 통하여 표적부위에서 돌연변이가 발생하였음을 추정할 수 있었다. 한편, TALEN-DBPR25 transfection을 통하여서도 SETDB1의 발현이 감소하는 현상을 확인 하였다. DBEX2, DBPR25를 이입시킨 HeLa 세포에서 세포 형태가 길어지는 현상을 관찰할 수 있었다. 그러므로 단백질 개시코돈 또는 -25 upstream을 표적 하는 TALEN knock-out 방법은 SETDB1 유전자의 기능연구에 매우 유용하다고 사료된다.