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杨帆  李寅 《生物工程学报》2017,33(3):361-371
CRISPR/Cas系统几乎存在于所有的细菌和古菌中,是用来抵御外来病毒和噬菌体入侵的获得性免疫防御机制。2012年起CRISPR/Cas9被改造为基因编辑工具,并衍生出一系列高效、便捷的基因编辑工具,迅速在基础理论、基因诊断和临床治疗等研究领域中得到广泛应用。然而,CRISPR/Cas9也存在细胞毒性、脱靶效应和基因插入困难等一些亟待解决的问题,在一定程度上限制了CRISPR/Cas9的应用。Cpf1是2015年报道的一种新型CRISPR效应蛋白,具有许多与Cas9不同的特性,有利于克服CRISPR/Cas9应用中的一些限制。本文综述了近两年来对CRISPR/Cpf1的研究进展和应用,并对其应用前景和发展方向进行了展望。  相似文献   

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Clustered regularly interspaced short palindromic repeat (CRISPR)/CRISPR-associated protein (Cas) systems, especially type II (Cas9) systems, have been widely used in gene/genome targeting. Modifications of Cas9 enable these systems to become platforms for precise DNA manipulations. However, the utilization of CRISPR-Cas systems in RNA targeting remains preliminary. The discovery of type VI CRISPR-Cas systems (Cas13) shed light on RNA-guided RNA targeting. Cas13d, the smallest Cas13 protein, with a length of only ~930 amino acids, is a promising platform for RNA targeting compatible with viral delivery systems. Much effort has also been made to develop Cas9, Cas13a and Cas13b applications for RNA-guided RNA targeting. The discovery of new RNA-targeting CRISPR-Cas systems as well as the development of RNA-targeting platforms with Cas9 and Cas13 will promote RNA-targeting technology substantially. Here, we review new advances in RNA-targeting CRISPR-Cas systems as well as advances in applications of these systems in RNA targeting, tracking and editing. We also compare these Cas protein-based technologies with traditional technologies for RNA targeting, tracking and editing. Finally, we discuss remaining questions and prospects for the future.  相似文献   

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CRISPR-Cas系统是一种目前已知的基因编辑工具,其中以靶向DNA基因组编辑的CRISPR-Cas9系统的研究较为成熟。相较于靶向DNA的基因组编辑技术CRISPR-Cas9系统,近年来靶向RNA的Ⅵ型-CRISPR家族CRISPR-C2c2/Cas13a系统研究日渐增多。CRISPR-Cas13a系统具有特异性识别并结合单链RNA序列从而非特异性切割RNA的特点,可应用于检测肿瘤外周血游离核酸,对早期肿瘤患者进行筛查。同时,Cas13a在进行体内RNA切割的过程中,不涉及编码基因DNA的改变,可直接对基因转录产物mRNA进行编辑,达到基因修饰的目的,并能够同时靶向多基因转录产物从而调控基因的表达。Cas13a系统可应用于分子诊断及RNA编辑中,该系统在肿瘤的诊断与治疗中也被证实具有广阔的发展前景。基于已有的文献资料,文中综述了靶向RNA的CRISPR-Cas13a技术应用于肿瘤诊断与治疗的研究进展,探讨了CRISPR-Cas13a系统对癌症治疗的新思路及存在的局限,并展望了未来可能的研究方向。  相似文献   

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成簇规律间隔短回文序列(clustered regularly interspaced short palindromic repeats,CRISPR)系统是广泛存在于细菌中的一种特有的免疫防御机制,与特殊的Cas蛋白结合后能够有效的对外源的核酸分子进行特异性片段化,并进一步促进其降解。CRISPR-Cas系统具有独特的靶向性,为开发针对于核酸为底物的生物传感器提供了新的概念。越来越多的研究人员根据不同Cas蛋白的性质,建立了独特的逻辑系统对靶标物质进行准确识别,基于CRISPR技术的生物传感器也开拓了该技术在基因编辑以外领域的应用。介绍了CRISPR-Cas系统的起源、作用机制和科学分类,根据生物传感器的作用方式以及识别底物进行了分类,并对基于CRISPR-Cas系统的高效生物传感器的应用前景进行了展望。  相似文献   

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《遗传学报》2019,46(11):513-521
CRISPR-mediated genome editing is a revolutionary technology for genome manipulation that uses the CRISPR-Cas systems and base editors.Currently,poor efficiency and off-target problems have impeded the application of CRISPR systems.The on-target efficiency has been improved in several advanced versions of CRISPR systems,whereas the off-target detection still remains a key challenge.Here,we outline the different versions of CRISPR systems and off-target detection strategies,discuss the merits and limitations of off-target detection methods,and provide potential implications for further gene editing research.  相似文献   

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Research on CRISPR-Cas (clustered regularly interspaced short palindromic repeats-CRISPR associated protein) systems has led to the revolutionary CRISPR/Cas9 genome editing technique. However, for most archaea and half of bacteria, exploitation of their native CRISPR-Cas machineries may be more straightforward and convenient. In this study, we harnessed the native type I-B CRISPR-Cas system for precise genome editing in the polyploid haloarchaeon Haloarcula hispanica. After testing different designs, the editing tool was optimized to be a single plasmid that carries both the self-targeting mini-CRISPR and a 600–800 bp donor. Significantly, chromosomal modifications, such as gene deletion, gene tagging or single nucleotide substitution, were precisely introduced into the vast majority of the transformants. Moreover, we showed that simultaneous editing of two genomic loci could also be readily achieved by one step. In summary, our data demonstrate that the haloarchaeal CRISPR-Cas system can be harnessed for genome editing in this polyploid archaeon, and highlight the convenience and efficiency of the native CRISPR-based genome editing strategy.  相似文献   

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规律成簇间隔短回文重复(CRISPR)及相关核酸内切酶(Cas)系统是最近发现的一种关于RNA指导核酸内切酶的基因编辑技术,这一技术的发现促进了生物学和医学研究的发展。CRISPR-Cas9系统的简便性使其广泛应用于细胞基因组编辑、动物模型的构建及疾病模型的基因治疗。现就CRISPR-Cas9系统的结构特点、作用机制及应用进行了综述。  相似文献   

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CRISPR/Cas 系统具有操作简单、效率高等优势,为植物功能基因研究和作物遗传改良提供了重要支撑。介绍了CRISPR/Cas植物基因组编辑技术的研究进展,并对CRISPR/Cas系统及其衍生技术进行了详细比较;结合案例综述了CRISPR/Cas9基因编辑技术在玉米产量、品质、抗逆性改良,以及雄性不育系创制和单倍体诱导等方面的应用;同时针对CRISPR/Cas系统未来需要迫切解决的一些问题进行了分析和展望。  相似文献   

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In metabolic engineering, genome editing tools make it much easier to discover and evaluate relevant genes and pathways and construct strains. Clustered regularly interspaced palindromic repeats (CRISPR)-associated (Cas) systems now have become the first choice for genome engineering in many organisms includingindustrially relevant ones. Targeted DNA cleavage by CRISPR-Cas provides variousgenome engineering modes such as indels, replacements, large deletions, knock-in and chromosomal rearrangements, while host-dependent differences in repair pathways need to be considered. The versatility of the CRISPR system has given rise to derivative technologies that complement nuclease-based editing, which causes cytotoxicity especially in microorganisms. Deaminase-mediated base editing installs targeted point mutations with much less toxicity. CRISPRi and CRISPRa can temporarily control gene expression without changing the genomic sequence. Multiplex, combinatorial and large scale editing are made possible by streamlined design and construction of gRNA libraries to further accelerates comprehensive discovery, evaluation and building of metabolic pathways. This review summarizes the technical basis and recent advances in CRISPR-related genome editing tools applied for metabolic engineering purposes, with representative examples of industrially relevant eukaryotic and prokaryotic organisms.  相似文献   

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Genome-editing technologies consisting of targeted mutagenesis and gene targeting enable us to modify genes of interest rapidly and precisely. The discovery in 2012 of CRISPR/Cas9 systems and their development as sequence-specific nucleases has brought about a paradigm shift in biology. Initially, CRISPR/Cas9 was applied in targeted mutagenesis to knock out a target gene. Thereafter, advances in genome-editing technologies using CRISPR/Cas9 developed rapidly, with base editing systems for transition substitution using a combination of Cas9 nickase and either cytidine or adenosine deaminase being reported in 2016 and 2017, respectively, and later in 2021 bringing reports of transversion substitution using Cas9 nickase, cytidine deaminase and uracil DNA glycosylase. Moreover, technologies for gene targeting and prime editing systems using DNA or RNA as donors have also been developed in recent years. Besides these precise genome-editing strategies, reports of successful chromosome engineering using CRISPR/Cas9 have been published recently. The application of genome editing to crop breeding has advanced in parallel with the development of these technologies. Genome-editing enzymes can be introduced into plant cells, and there are now many examples of crop breeding using genome-editing technologies. At present, it is no exaggeration to say that we are now in a position to be able to modify a gene precisely and rearrange genomes and chromosomes in a predicted way. In this review, we introduce and discuss recent highlights in the field of precise gene editing, chromosome engineering and genome engineering technology in plants.  相似文献   

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CRISPR-Cas systems of adaptive immunity in prokaryotes consist of CRISPR arrays (clusters of short repeated genomic DNA fragments separated by unique spacer sequences) and cas (CRISPR-associated) genes that provide cells with resistance against bacteriophages and plasmids containing protospacers, i.e. sequences complementary to CRISPR array spacers. CRISPR-Cas systems are responsible for two different cellular phenomena: CRISPR adaptation and CRISPR interference. CRISPR adaptation is cell genome modification by integration of new spacers that represents a unique case of Lamarckian inheritance. CRISPR interference involves specific recognition of protospacers in foreign DNA followed by introduction of breaks into this DNA and its destruction. According to the mechanisms of action, CRISPR-Cas systems have been subdivided into two classes, five types, and numerous subtypes. The development of techniques based on CRISPR interference mediated by the Type II system Cas9 protein has revolutionized the field of genome editing because it allows selective, efficient, and relatively simple introduction of directed breaks into target DNA loci. However, practical applications of CRISPR-Cas systems are not limited only to genome editing. In this review, we focus on the variety of CRISPR interference and CRISPR adaptation mechanisms and their prospective use in biotechnology.  相似文献   

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Clustered regularly interspaced short palindromic repeats (CRISPR)-Cas (CRISPR-associated proteins) systems provide bacteria and archaea with an adaptive immune response against invasion by mobile genetic elements like phages, plasmids, and transposons. These systems have been repurposed as very powerful biotechnological tools for gene editing applications in both bacterial and eukaryotic systems. The discovery of natural off-switches for CRISPR-Cas systems, known as anti-CRISPR proteins, provided a mechanism for controlling CRISPR-Cas activity and opened avenues for the development of more precise editing tools. In this review, we focus on the inhibitory mechanisms of anti-CRISPRs that are active against type II CRISPR-Cas systems and briefly discuss their biotechnological applications.  相似文献   

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黄娇娇  曹春伟  郑国民  赵建国 《遗传》2017,39(11):1078-1089
核酸酶介导的基因组编辑技术大幅度提高了编辑真核细胞基因组的能力,给生命科学领域带来了革命性地发展,也给猪的遗传改良带来了全新的契机。本文介绍了基因组编辑技术尤其是CRISPR/Cas9系统的发展以及各种天然存在的和人为改造的Cas9变体的作用特点;汇总了利用基因组编辑技术提高猪生产性能,尤其是改善猪肉品质和抵抗病毒感染的研究进展;分析了目前利用基因组编辑技术推进猪遗传改良所面临的挑战;最后,展望了基于基因组编辑技术的猪遗传改良和品种培育的发展趋势。  相似文献   

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