• 제목/요약/키워드: CRISPR

검색결과 171건 처리시간 0.034초

CRISPR as a strong gene editing tool

  • Shen, Shengfu;Loh, Tiing Jen;Shen, Hongling;Zheng, Xuexiu;Shen, Haihong
    • BMB Reports
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    • 제50권1호
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    • pp.20-24
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    • 2017
  • Clustered regularly-interspaced short palindromic repeats (CRISPR) is a new and effective genetic editing tool. CRISPR was initially found in bacteria to protect it from virus invasions. In the first step, specific DNA strands of virus are identified by guide RNA that is composed of crRNA and tracrRNA. Then RNAse III is required for producing crRNA from pre-crRNA. In The second step, a crRNA:tracrRNA:Cas9 complex guides RNase III to cleave target DNA. After cleavage of DNA by CRISPR-Cas9, DNA can be fixed by Non-Homologous End Joining (NHEJ) and Homology Directed Repair (HDR). Whereas NHEJ is simple and random, HDR is much more complex and accurate. Gene editing by CRISPR is able to be applied to various biological field such as agriculture and treating genetic diseases in human.

CRISPR system for genome engineering: the application for autophagy study

  • Cui, Jianzhou;Chew, Shirley Jia Li;Shi, Yin;Gong, Zhiyuan;Shen, Han-Ming
    • BMB Reports
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    • 제50권5호
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    • pp.247-256
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    • 2017
  • CRISPR/Cas9 is the latest tool introduced in the field of genome engineering and is so far the best genome-editing tool as compared to its precedents such as, meganucleases, zinc finger nucleases (ZFNs) and transcription activator-like effectors (TALENs). The simple design and assembly of the CRISPR/Cas9 system makes genome editing easy to perform as it uses small guide RNAs that correspond to their DNA targets for high efficiency editing. This has helped open the doors for multiplexible genome targeting in many species that were intractable using old genetic perturbation techniques. Currently, The CRISPR system is revolutionizing the way biological researches are conducted and paves a bright future not only in research but also in medicine and biotechnology. In this review, we evaluated the history, types and structure, the mechanism of action of CRISPR/Cas System. In particular, we focused on the application of this powerful tool in autophagy research.

Construction of a CRISPR/Cas9-Mediated Genome Editing System in Lentinula edodes

  • Moon, Suyun;An, Jee Young;Choi, Yeon-Jae;Oh, Youn-Lee;Ro, Hyeon-Su;Ryu, Hojin
    • Mycobiology
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    • 제49권6호
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    • pp.599-603
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    • 2021
  • CRISPR/Cas9 genome editing systems have been established in a broad range of eukaryotic species. Herein, we report the first method for genetic engineering in pyogo (shiitake) mushrooms (Lentinula edodes) using CRISPR/Cas9. For in vivo expression of guide RNAs (gRNAs) targeting the mating-type gene HD1 (LeA1), we identified an endogenous LeU6 promoter in the L. edodes genome. We constructed a plasmid containing the LeU6 and glyceraldehyde-3-phosphate dehydrogenase (LeGPD) promoters to express the Cas9 protein. Among the eight gRNAs we tested, three successfully disrupted the LeA1 locus. Although the CRISPR-Cas9-induced alleles did not affect mating with compatible monokaryotic strains, disruption of the transcription levels of the downstream genes of LeHD1 and LeHD2 was detected. Based on this result, we present the first report of a simple and powerful genetic manipulation tool using the CRISPR/Cas9 toolbox for the scientifically and industrially important edible mushroom, L. edodes.

후숙 조절 유전자 Pectate lyase와 Phytoene Synthase 편집용 CRISPR-Cas9 sgRNA의 유전자 편집 효율 측정 (Evaluation of sgRNAs Targeting Pectate Lyase and Phytoene Synthase for Delaying Tomato Fruit Ripening)

  • 박효선;양소희;김의연;구연종
    • 한국환경농학회지
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    • 제40권3호
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    • pp.179-185
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    • 2021
  • BACKGROUND: Tomato genome editing using CRISPR-Cas9 is being actively conducted in recent days, and lots of plant researches have been aiming to develop high valued crops by editing target genes without inserting foreign genes. Many researchers have been involved in the manipulation of the crop ripening process because fruit ripening is an important fruit phenotype for increasing fruit shelf life, taste, and texture of crops. This paper intends to evaluate target sgRNA to edit the two ripening-related genes encoding pectate lyase (PL) and phytoene synthase (Psy) with the CRISPR-Cas9 system. METHODS AND RESULTS: The CRISPR-Cas9 expression vector was cloned to target the PL (Solyc03g111690), Psy1 (Solyc03g031860), and Psy2 (Solyc02g081330) genes, which are the ripening genes of tomatoes. Tomatoes injected with Agrobacterium containing the CRISPR-Cas9 expression vector were further cultured for 5 days and used to check gene editing efficiency. As a result of the target gene sequence analysis by the next generation sequencing method, gene editing efficiency was calculated, and the efficient target location was selected for the PL and Psy genes. CONCLUSION: Therefore, this study was aimed to establish target sgRNA data that could have higher efficiency of the CRISPR-Cas9 system to obtain the delayed ripening phenotype of tomato. The developed method and sgRNA information is expected to be utilized in the development of various crops to manage its ripening processes.

Visualizing Live Chromatin Dynamics through CRISPR-Based Imaging Techniques

  • Chaudhary, Narendra;Im, Jae-Kyeong;Nho, Si-Hyeong;Kim, Hajin
    • Molecules and Cells
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    • 제44권9호
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    • pp.627-636
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    • 2021
  • The three-dimensional organization of chromatin and its time-dependent changes greatly affect virtually every cellular function, especially DNA replication, genome maintenance, transcription regulation, and cell differentiation. Sequencing-based techniques such as ChIP-seq, ATAC-seq, and Hi-C provide abundant information on how genomic elements are coupled with regulatory proteins and functionally organized into hierarchical domains through their interactions. However, visualizing the time-dependent changes of such organization in individual cells remains challenging. Recent developments of CRISPR systems for site-specific fluorescent labeling of genomic loci have provided promising strategies for visualizing chromatin dynamics in live cells. However, there are several limiting factors, including background signals, off-target binding of CRISPR, and rapid photobleaching of the fluorophores, requiring a large number of target-bound CRISPR complexes to reliably distinguish the target-specific foci from the background. Various modifications have been engineered into the CRISPR system to enhance the signal-to-background ratio and signal longevity to detect target foci more reliably and efficiently, and to reduce the required target size. In this review, we comprehensively compare the performances of recently developed CRISPR designs for improved visualization of genomic loci in terms of the reliability of target detection, the ability to detect small repeat loci, and the allowed time of live tracking. Longer observation of genomic loci allows the detailed identification of the dynamic characteristics of chromatin. The diffusion properties of chromatin found in recent studies are reviewed, which provide suggestions for the underlying biological processes.

Agrobacterium을 이용한 토마토 떡잎에서 CRISPR-Cas9 시스템의 임시발현 시 토마토 떡잎 발달 단계에 따른 유전자교정 효율 변화 (Observation of Gene Edition by the Transient Expression of CRISPR-Cas9 System During the Development of Tomato Cotyledon)

  • 김의연;양소희;박효선;구연종
    • 한국환경농학회지
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    • 제40권3호
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    • pp.186-193
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    • 2021
  • BACKGROUND: Before generating transgenic plant using the CRISPR-Cas9 system, the efficiency test of sgRNAs is recommended to reduce the time and effort for plant transformation and regeneration process. The efficiency of the sgRNA can be measured through the transient expression of sgRNA and Cas9 gene in tomato cotyledon; however, we found that the calculated efficiency showed a large variation. It is necessary to increase the precision of the experiment to obtain reliable sgRNA efficiency data from transient expression. METHODS AND RESULTS: The cotyledon of 11th, 15th, 19th, and 23rd-day-old tomato (Solanum lycopersicum cv. Micro-Tom) were used for expressing CRISPR-Cas9 transiently. The agrobacterium harboring sgRNA for targeting ALS2 gene of tomato was injected through the stomata of leaf adaxial side and the genomic DNA was extracted in 5 days after injection. The target gene edition was identified by amplifying DNA fragment of target region and analyzing with Illumina sequencing method. The target gene editing efficiency was calculated by counting base deletion and insertion events from total target sequence read. CONCLUSION: The CRISPR-Cas9 editing efficiency varied with tomato cotyledon age. The highest efficiency was observed at the 19-day-old cotyledons. Both the median and mean were the highest at this stage and the sample variability was also minimized. We found that the transgene of CRISPR-Cas9 system was strongly correlated with plant leaf development and suggested the optimum cotyledon leaf age for Agrobacterium-mediated transfection in tomato.

CRISPR/Cas 시스템 기술을 활용한 고위험성 식중독 세균 신속 검출을 위한 바이오센서 개발 (Development of Biosensors for Rapid Detection of Foodborne Pathogenic Bacteria using CRISPR/Cas)

  • 조선영;박종필
    • 한국식품위생안전성학회지
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    • 제38권5호
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    • pp.279-286
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    • 2023
  • Rapid and accurate detection of pathogenic bacteria is crucial for various applications, including public health and food safety. However, existing bacteria detection techniques have several drawbacks as they are inconvenient and require time-consuming procedures and complex machinery. Recently, the precision and versatility of CRISPR/Cas system has been leveraged to design biosensors that offer a more efficient and accurate approach to bacterial detection compared to the existing techniques. Significant research has been focused on developing biosensors based on the CRISPR/Cas system which has shown promise in efficiently detecting pathogenic bacteria or virus. In this review, we present a biosensor based on the CRISPR/Cas system that has been specifically developed to overcome these limitations and detect different pathogenic bacteria effectively including Vibrio parahaemolyticus, Salmonella, E. coli O157:H7, and Listeria monocytogenes. This biosensor takes advantage of the CRISPR/Cas system's precision and versatility for more efficiently accurately detecting bacteria compared to the previous techniques. The biosensor has potential to enhance public health and ensure food safety as the biosensor's design can revolutionize method of detecting pathogenic bacteria. It provides a rapid and reliable method for identifying harmful bacteria and it can aid in early intervention and preventive measures, mitigating the risk of bacterial outbreaks and their associated consequences. Further research and development in this area will lead to development of even more advanced biosensors capable of detecting an even broader range of bacterial pathogens, thereby significantly benefiting various industries and helping in safeguard human health

현장에서 가축질병을 진단하기 위한 CRISPR/Cas 시스템의 활용 (Application of the CRISPR/Cas System for Point-of-care Diagnosis of Cattle Disease)

  • 이원희;이윤석
    • 생명과학회지
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    • 제30권3호
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    • pp.313-319
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    • 2020
  • 최근, 국내에서 발생하는 대가축의 질병은 바이러스 혹은 세균 등과 같은 병원체가 사료 섭취, 가축 간의 신체접촉, 호흡 등 다양한 경로를 통해 전파되어 발병되는 전염성 질병이다. 전염성 질병은 가축의 건강을 위협하고 생산성을 감소시키기 때문에 현장에서 조기 진단하여 개체 격리와 같은 통제 관리가 필수적이다. 기존 사용되고 있는 진단 키트들은 현장에서 사용하기에 용이하지 않으며 극소량의 감도에서 진단이 제한적인 단점을 가지고 있다. 그러므로, 현장에서 극소량의 감도와 진단의 편이성을 고려하여 DNA와 RNA 수준에서 진단할 수 있는 CRISPR/Cas 시스템은 최적의 시스템이라 할 수 있다. 본 연구논문에서는 대가축의 전염성 질병들을 현장에서 조기 진단함에 있어 CRISPR/Cas 시스템의 활용전략에 대해 소개하고자 한다. 최근 발견된 CRISPR/Cas 효소들은 2개의 클래스와 6가지 하위유형으로 분류되었다. 이 중에서 클래스 2에 포함되는 Cas 효소들은 대표적으로 제 2형에 Cas9, 제 5형에 Cas12a와 Cas12b, 제 6형에 Cas13a와 Cas13b가 있다. 현재까지 개발된 CRISPR/Cas 시스템들은 간단한 시각 신호를 통해 표적에 대한 정량 및 다중 감지가 가능하고 특히, 극소량 수준의 초고감도에서도 표적만을 진단할 수 있으며 단시간 이내에 진단 결과를 얻을 수 있다. 하지만 초고감도 DNA 혹은 RNA를 진단하기 위해 최적의 신호 증폭 방법과 결합되어야 하고 표적 DNA 혹은 RNA를 진단에 적합하도록 DNA를 RNA로, RNA를 DNA로 전변해야 하는 단점이 있다. 따라서, 현장에서 대가축의 전염성 질병을 조기에 진단할 수 있는 CRISPR/Cas 바이오센서를 개발하는데 있어 가축의 전염 매개체로부터 추출되는 병원체 유형(DNA 혹은 RNA)을 고려하여 최적의 Cas 효소를 선정하여야 하고 이에 따른 적절한 신호 증폭 방법이 결합되어야 한다. 따라서, CRISPR/Cas 시스템은 유전자 편집 방법을 사용하는 빠르고 효율적인 진단 도구이며 이 시스템은 소의 전염병을 조기에 진단하고 감염 확산방지에 도움될 수 있을 것으로 판단 되어진다.

Application of genome engineering for treatment of retinal diseases

  • Jo, Dong Hyun;Kim, Jeong Hun
    • BMB Reports
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    • 제51권7호
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    • pp.315-316
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    • 2018
  • Genome engineering with clustered regularly interspaced short palindromic repeats (CRISPR) system can be used as a tool to correct pathological mutations or modulate gene expression levels associated with pathogenesis of human diseases. Owing to well-established local administration methods including intravitreal and subretinal injection, it is relatively easy to administer therapeutic genome engineering machinery to ocular tissues for treating retinal diseases. In this context, we have investigated the potential of in vivo genome engineering as a therapeutic approach in the form of ribonucleoprotein or CRISPR packaged in viral vectors. Major issues in therapeutic application of genome engineering include specificity and efficacy according to types of CRISPR system. In addition to previous platforms based on ribonucleoprotein and CRISPR-associated protein 9 derived from Campylobacter jejuni, we evaluated the therapeutic effects of a CRISPR RNA-guided endonuclease derived from Lachnospiraceae bacterium ND2006 (LbCpf1) in regulating pathological angiogenesis in an animal model of wet-type age-related macular degeneration. LbCpf1 targeting Vegfa or Hif1a effectively disrupted the expression of genes in ocular tissues, resulting in suppression of choroidal neovascularization. It was also notable that there were no significant off-target effects in vivo.

Editing of Genomic TNFSF9 by CRISPR-Cas9 Can Be Followed by Re-Editing of Its Transcript

  • Lee, Hyeon-Woo
    • Molecules and Cells
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    • 제41권10호
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    • pp.917-922
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    • 2018
  • The CRISPR-Cas system is a well-established RNA-guided DNA editing technique widely used to modify genomic DNA sequences. I used the CRISPR-Cas9 system to change the second and third nucleotides of the triplet $T{\underline{CT}}$ of human TNSFSF9 in HepG2 cells to $T{\underline{AG}}$ to create an amber stop codon. The $T{\underline{CT}}$ triplet is the codon for Ser at the $172^{nd}$ position of TNSFSF9. The two substituted nucleotides, AG, were confirmed by DNA sequencing of the PCR product followed by PCR amplification of the genomic TNFSF9 gene. Interestingly, sequencing of the cDNA of transcripts of the edited TNFSF9 gene revealed that the $T{\underline{AG}}$ had been re-edited to the wild type triplet $T{\underline{CT}}$, and 1 or 2 bases just before the triplet had been deleted. These observations indicate that CRISPR-Cas9-mediated editing of bases in target genomic DNA can be followed by spontaneous re-editing (correcting) of the bases during transcription.