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随着能源和环境问题的日益突出,化学品以及燃料的合成方式正逐渐由传统的化学法合成转变为以细菌为基础的生物炼制过程,其中最关键问题是需要开发出合适的基因工程工具用于构建相应的产品生产菌株。成簇的规律间隔短回文重复序列(Clusteredregularlyinterspacedshortpalindromic repeats,CRISPR)/CRISPR相关蛋白(CRISPR-associated proteins,Cas)系统是一种存在于细菌和古细菌中的免疫系统,能够用于抵御病毒和外源质粒的入侵,近年来被开发成为一种高效、便捷、精确的基因编辑工具,显示出巨大的应用潜力。本文立足于CRISPR/Cas系统的原理与最新分类,结合实例综述了CRISPR/Cas基因编辑系统在原核微生物细胞工厂构建中的建立与优化策略,以及主要的应用方向,并探讨该系统所面临的主要问题并提出了一些可行的解决方案。  相似文献   

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植物基因组编辑及衍生技术最新研究进展   总被引:2,自引:0,他引:2  
单奇伟  高彩霞 《遗传》2015,37(10):953-973
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《遗传学报》2019,46(11):523-529
As versatile and robust genome editing tools,clustered regularly interspaced short palindromic repeats(CRISPR) technologies have been broadly used in basic research,biotechnology,and therapeutic development.Off-target mutagenesis by CRISPR systems has been demonstrated,and various methods have been developed to markedly increase their specificity.In this review,we highlight the efforts of producing and modifying guide RNA(gRNA) to minimize off-target activities,including sequence and structure design,tuning expression and chemical modification.The modalities of gRNA engineering can be applied across CRISPR systems.In conjunction with CRISPR protein effectors,the engineered gRNA enables efficient and precise genome editing.  相似文献   

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The production of high-value biopharmaceuticals is dominated by mammalian production cells, particularly Chinese hamster ovary (CHO) cells, which have been widely used and preferred in manufacturing processes. The discovery of CRISPR-Cas9 significantly accelerated cell line engineering advances, allowing for production yield and quality improvements. Since then, several other CRISPR systems have become appealing genome editing tools, such as the Cas12a nucleases, which provide broad editing capabilities while utilizing short guide RNAs (gRNAs) that reduce the complexity of the editing systems. One of these is the Mad7 nuclease, which has been shown to efficiently convey targeted gene disruption and insertions in several different organisms. In this study, we demonstrate that Mad7 can generate indels for gene knockout of host cell proteins in CHO cells. We found that the efficiency of Mad7 depends on the addition of protein nuclear localization signals and the gRNAs employed for genome targeting. Moreover, we provide computational tools to design Mad7 gRNAs against any genome of choice and for automated indel detection analysis from next-generation sequencing data. In summary, this paper establishes the application of Mad7 in CHO cells, thereby improving the CRISPR toolbox versatility for research and cell line engineering.  相似文献   

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基因组编辑技术是进行功能基因组研究的重要工具.锌指核酸酶技术(ZFNs)、类转录激活因子核酸酶技术(TALENs)以及CRISPR/Cas技术是近年来发展起来的3种主流基因组编辑技术.这3种基因组编辑技术的原理都是通过在生物基因组特定位点制造DNA断裂损伤,从而激活机体自身的DNA损伤修复机制,在此过程中引发各种变异.ZFNs是最早发展的通用基因组编辑技术,可用以实施定点敲除和定点敲入变异,但ZFNs技术的发展受限于构建难度大、成本高等缺点.TALENs技术在ZFNs基础上发展而来,较ZFNs技术而言,TALENs技术具备构建灵活度高、成本低等优势.不同于ZFNs与TALENs技术,CRISPR/Cas技术具有独特的DNA靶向机制,这种机制使其非常适合进行多位点编辑.目前,3种技术都在多种物种中成功测试,例如小鼠、斑马鱼、果蝇、线虫和家蚕.在后基因组时代,这些新技术工具必将在未来功能基因组研究中发挥重大作用.  相似文献   

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Despite recent advances in genome editing capabilities for the model organism Saccharomyces cerevisiae, the chromosomal integration of large biochemical pathways for stable industrial production remains challenging. In this work, we developed a simple platform for high-efficiency, single-step, markerless, multi-copy chromosomal integration of full biochemical pathways in Saccharomyces cerevisiae. In this Di-CRISPR (delta integration CRISPR-Cas) platform based on the Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR) and CRISPR-associated systems (Cas), we specifically designed guide RNA sequences to target multiple delta sites in the yeast genome. The generation of double stranded breaks at the delta sites allowed simultaneous integration of multiple copies of linearized donor DNA containing large biochemical pathways. With our newly developed Di-CRISPR platform, we were able to attain highly efficient and markerless integration of large biochemical pathways and achieve an unprecedented 18-copy genomic integration of a 24 kb combined xylose utilization and (R,R)-2,3-butanediol (BDO) production pathway in a single step, thus generating a strain that was able to produce BDO directly from xylose. The simplicity and high efficiency of the Di-CRISPR platform could provide a superior alternative to high copy plasmids and would render this platform an invaluable tool for genome editing and metabolic engineering in S. cerevisiae.  相似文献   

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氧化葡萄糖酸杆菌(Gluconobacter oxydans)因具有快速不完全氧化糖醇化合物的能力而被广泛应用于工业中.然而,适用于氧化葡萄糖酸杆菌的基因编辑工具较为缺乏,科研人员对其进行代谢改造受到很大的限制.近年来,规律成簇间隔短回文重复序列(clustered regularly interspaced shor...  相似文献   

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酿酒酵母Saccharomyces cerevisiae是代谢工程中最重要的宿主之一,先进的基因编辑技术已经被广泛应用于酿酒酵母细胞工厂的设计和构建。随着基因编辑技术的飞速发展,早期基于重组酶和同源重组的基因编辑技术逐渐被新型基因编辑系统所替代。文中对酿酒酵母基因编辑技术的原理和应用进行了总结,包括经典的酿酒酵母基因编辑技术,基于核酸内切酶的MegNs、ZFNs和TALENs等基因组编辑系统,最后介绍和讨论了基于CRISPR/Cas系统、异源代谢途径多拷贝整合和基因组规模基因编辑的最新研究进展,并对酿酒酵母基因编辑技术的应用前景和发展方向进行了展望。  相似文献   

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Genome editing technologies are powerful tools for studying gene function and for crop improvement. The technologies rely on engineered endonucleases to generate double stranded breaks (DSBs) at target loci. The DSBs are repaired through the error-prone non-homologous end joining (NHEJ) and homology-directed repair (HDR) pathways in cells, resulting in mutations and sequence replacement, respectively. In the widely used CRISPR/Cas9 system, the endonuclease Cas9 is targeted by a CRISPR small RNA to DNA sequence of interest. In this review, we describe the four available types of genome editing tools, ZFN, TALEN, CRISPR/Cas9 and CRISPR/Cpf1, and show their applications in functional genomics research and precision molecular breeding of crops.  相似文献   

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CRISPR/Cas9 system of RNA-guided genome editing is revolutionizing genetics research in a wide spectrum of organisms. Even for the laboratory mouse, a model that has thrived under the benefits of embryonic stem (ES) cell knockout capabilities for nearly three decades, CRISPR (Clustered Regularly Interspaced Short Palindromic Repeats)/Cas9 technology enables one to manipulate the genome with unprecedented simplicity and speed. It allows generation of null, conditional, precisely mutated, reporter, or tagged alleles in mice. Moreover, it holds promise for other applications beyond genome editing. The crux of this system is the efficient and targeted introduction of DNA breaks that are repaired by any of several pathways in a predictable but not entirely controllable manner. Thus, further optimizations and improvements are being developed. Here, we summarize current applications and provide a practical guide to use the CRISPR/Cas9 system for mouse mutagenesis, based on published reports and our own experiences. We discuss critical points and suggest technical improvements to increase efficiency of RNA-guided genome editing in mouse embryos and address practical problems such as mosaicism in founders, which complicates genotyping and phenotyping. We describe a next-generation sequencing strategy for simultaneous characterization of on- and off-target editing in mice derived from multiple CRISPR experiments. Additionally, we report evidence that elevated frequency of precise, homology-directed editing can be achieved by transient inhibition of the Ligase IV-dependent nonhomologous end-joining pathway in one-celled mouse embryos.  相似文献   

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《遗传学报》2021,48(8):661-670
The ability to precisely inactivate or modify genes in model organisms helps us understand the mysteries of life. Clustered regularly interspaced short palindromic repeats(CRISPR)/CRISPR-associated protein 9(Cas9), a revolutionary technology that could generate targeted mutants, has facilitated notable advances in plant science. Genome editing with CRISPR/Cas9 has gained great popularity and enabled several technical breakthroughs. Herein, we briefly introduce the CRISPR/Cas9, with a focus on the latest breakthroughs in precise genome editing(e.g., base editing and prime editing), and we summarize various platforms that developed to increase the editing efficiency, expand the targeting scope, and improve the specificity of base editing in plants. In addition, we emphasize the recent applications of these technologies to plants. Finally, we predict that CRISPR/Cas9 and CRISPR/Cas9-based genome editing will continue to revolutionize plant science and provide technical support for sustainable agricultural development.  相似文献   

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CRISPR(clustered regulatory interspersed short palindromic repeat)序列源于原核生物的一种获得性免疫系统,协同Cas(CRISPR-associated)蛋白家族参与抵抗噬菌体或其它病毒的二次感染,广泛存在于细菌(60%)和古菌(90%)中.病菌和宿主的共同进化导致了CRISPR-Cas系统具有多样性,可分为3大类(Ⅰ-Ⅲ),又分为10亚类.在Ⅱ型CRISPR-Cas系统基础上建立了RNA介导的CRISPR-Cas系统来修饰(删除、添加、激活、抑制)靶细胞中特定的基因序列,现已在人类细胞、小鼠、斑马鱼、酵母、细菌、果蝇、线虫、拟南芥中得以应用.本文主要介绍了Ⅱ型CRISPR-Cas系统的结构特点、作用机理及作为新型基因组定点修饰技术的研究进展,分析该技术优势,并展望CRISPRCas系统的应用前景.  相似文献   

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