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1.
CRISPR(clustered regularly interspaced short palindromic repeats)/Cas(CRISPR-associated)系统是近年来发展起来的新型的基因编辑技术,在生物医学领域得到广泛应用。CRISPR/Cas9系统需要在gRNA存在的条件下通过Cas9蛋白实现对基因组的定点编辑,通常情况下以慢病毒感染或质粒转染等方式提供Cas9和gRNA。但是,这些方式容易引起免疫反应及基因片段不可控插入,存在一定的风险,限制了CRISPR/Cas9技术在机体的应用。近年来发展起来的基于体外组装的核糖核蛋白(ribonucleoprotein, RNP)转导入胞的策略由于快捷安全、编辑的脱靶率低等优势引起广泛关注。对Cas9 RNP的转导方式及其应用进行了总结,并就其目前存在的问题进行探讨,以期为CRISPR/Cas9技术的进一步发展提供依据,为拓展其应用奠定基础。  相似文献   

2.
为了进一步探讨TET2蛋白在肝癌的发生发展过程中发挥的生物学功能,本研究使用CRISPR在线设计工具(http://crispr.mit.edu/),针对TET2的外显子设计g RNA,构建靶向TET2基因的CRISPR/Cas9基因敲除质粒,转染HepG2细胞。T7E1酶切检测TET2基因的编辑效率,Western blotting检测TET2蛋白表达水平;MTT法、Annexin V-FITC细胞凋亡检测试剂盒分别检测HepG2细胞的增殖活性及凋亡水平的改变。T7EI酶切分析显示敲除效率为31.4%;TET2基因表达量的降低抑制了HepG2细胞的增殖,促进了细胞的凋亡。CRISPR/Cas9质粒系统能够在细胞水平对TET2基因进行编辑,靶向TET2基因的CRISPR/Cas9质粒系统降低了TET2的表达、抑制HepG2细胞的增殖、促进HepG2细胞的凋亡。本研究表明CRISPR/Cas9技术为研究TET2的功能和作用机制提供了有效工具,为研究TET2蛋白在肝癌的发生发展过程中发挥的生物学功能提供实验依据。  相似文献   

3.
目的:利用CRISPR/Cas9基因编辑技术构建生物节律基因NPAS2敲除的HepG2肝癌细胞系,并初步探讨NPAS2基因敲除对肝癌细胞凋亡的影响。方法:利用sgRNA在线设计工具,针对NPAS2设计两条sgRNA;利用PX459质粒构建分别含有两条sgRNA的敲除载体PX459-sgRNA1;PX459-sgRNA2;利用T7核酸内切酶I检测两条sgRNA活性;将活性较高的打靶载体瞬时转染HepG2细胞,经过药物筛选,克隆化培养及基因测序后得到NPAS2敲除的HepG2肝癌细胞系;利用Western blot检测NPAS2蛋白的表达和凋亡相关蛋白Caspase3的活化;利用流式细胞仪检测敲除细胞系的凋亡水平。结果:成功构建了针对NPAS2的打靶载体;并筛选得到了活性较高的打靶载体;经过药物筛选和克隆化培养得到的NPAS2敲除肝癌细胞系未检测到NPAS2蛋白的表达;进一步发现NPAS2敲除的肝癌细胞Caspase3明显活化,凋亡水平显著升高。结论:利用CRISPR/Cas9基因编辑技术成功构建了NPAS2基因敲除的HepG2肝癌细胞系,并发现NPAS2敲除可以促进肝癌细胞凋亡,为进一步研究生物节律基因NPAS2及其它相关基因在肝癌发生发展中的作用机制提供了有力的工具。  相似文献   

4.
目的:利用CRISPR/Cas9技术对K562细胞系JAK2基因进行编辑,构建JAK2基因敲除的K562细胞系。方法:使用CRISPR在线设计工具,针对JAK2基因设计sgRNA,构建Cas9-sgRNA共表达质粒。使用第二代慢病毒包装系统包装慢病毒并感染K562细胞,提取细胞基因组DNA,Sanger测序和TA克隆检测基因编辑活性。无限稀释法将编辑阳性的细胞接种于96孔板并扩培得到单克隆细胞株,提取基因组DNA,Sanger测序和TA克隆分析敲除JAK2单克隆细胞的基因型。结果:成功构建靶向敲除JAK2基因的lentiCRISPRv2-sgRNA3-1质粒。优化方案得到低细胞毒性高转染效率的感染K562细胞慢病毒量。CRISPR/Cas9系统成功在JAK2基因sgRNA3-1识别位点发挥基因组编辑活性,获得纯合敲除JAK2基因细胞株K562-JAK2~(-/-)(两个等位分别发生移码突变,预期编码没有功能的JAK2蛋白)。结论:CRIAPR/Cas9系统通过慢病毒感染方式获得JAK2基因纯合敲除的K562细胞株,该细胞模型可用于研究在慢性髓系白血病中JAK2基因的作用,为构建K562敲除其他基因细胞系提供实验依据,为探究造血分化机制的研究奠定实验基础。  相似文献   

5.
拟利用CRISPR/Cas9技术建立编辑FGF5基因的绒山羊细胞株。在FGF5基因的第一外显子设计靶点并合成gRNA靶点引物,构建2个编辑FGF5基因的Cas/gRNA真核表达质粒载体。电穿孔法转染绒山羊成纤维细胞后T7核酸内切酶(T7E1)检测载体活性,选择活性最高的载体转染细胞,单细胞接种并扩繁,提取基因组DNA,PCR及测序鉴定。经测序分析共获得20个FGF5基因敲除细胞株(包括FGF5+/-和FGF5-/-),总突变率为14.81%。双敲除突变细胞株可作为供体细胞进行重构胚构建,为创造高产绒性状的FGF5基因编辑绒山羊奠定基础。  相似文献   

6.
目的:CRISPR/Cas9系统在斑马鱼的反向遗传学中的到了广泛应用,但突变基因的表型观察往往需要在突变鱼系的F1中进行,费时较长。LHX9作为LIM家族的一种转录因子,在胚胎早期的泌尿生殖嵴中有广泛分布;且LHX9基因敲除的小鼠存在性腺发育不良。本研究拟通过一种新的CRISPR/Cas9基因编辑技术,采用四条sgRNA对LHX9基因进行VASA转基因斑马鱼的基因敲除,以观察该基因缺陷对斑马鱼性腺发育的影响。方法:利用新的CRISPR/Cas9技术,设计四条针对斑马鱼LHX9基因3号外显子的20bp的sgRNA,通过非克隆体外转录得到靶位点的四条sgRNA。将以上靶位点的四条sgRNA与Cas9核酸酶蛋白同时注射入单细胞期的斑马鱼胚胎内,利用PCR鉴定突变型类型和突变比例。通过对LHX9基因突变体的VASA转基因斑马鱼进行荧光观察,发现LHX9基因缺陷的斑马鱼性腺发育的情况。结果:靶向Exon 3的四条sgRNA可成功编辑斑马鱼LHX9基因,敲除效率高达82%,Sanger测序发现产生10种不同的移码突变类型。通过该方法对VASA转基因斑马鱼的LHX9基因进行编辑,发现LHX9基因突变导致dph6的的斑马鱼原始生殖细胞增殖和迁移受到影响。结论:基于4条sgRNA注射的CRISPR/Cas9技术,可以快速地产生具有突变表型的G0斑马鱼,具有应用潜力。LHX9基因敲除导致原始生殖细胞的发育和迁移受到影响,提示该基因参与了斑马鱼早期性腺的发育。  相似文献   

7.
目的运用CRISR/Cas9技术敲除小鼠基因组中Bmp9基因片段,构建Bmp9基因敲除小鼠。方法根据Bmp9基因的外显子序列,设计一段sgRNA并合成。sgRNA体外转录后和Cas9mRNA混合后显微注射受精卵细胞,注射后的受精卵细胞移植至受体动物获得子代小鼠。提取子代小鼠基因组DNA测序鉴定其基因型。基因型鉴定正确的小鼠与野生型交配后筛选纯合子小鼠。同时取纯合子小鼠心脏、肝、脾、肺、肾,匀浆后提取总RNA和总蛋白,通过qPCR、WB和免疫组化检测BMP9在各组织中的表达。结果设计并合成20bp的sgRNA并进行体外转录,显微注射并回植后得到基因突变小鼠,连续交配后得F2代纯合子。测序结果显示,突变小鼠存在两种基因型,一种为5bp缺失突变,另一种为13bp缺失并伴有1bp插入突变。与野生型C57BL/6相比,qPCR、WB和免疫组化结果均表明基因敲除小鼠肝中BMP9表达显著降低。结论利用CRISPR/Cas9技术成功构建出了BMP9基因敲除小鼠。  相似文献   

8.
目的:为研究胰岛素受体底物1(Irs1)基因与代谢病之间的关系,我们利用CRISPR/Cas9系统敲除大鼠Irs1基因,为研究代谢病提供基因敲除大鼠。方法针对Irs1第一外显子,设计CRISPR/Cas9作用靶点,构建sgRNA表达质粒。利用T7 RNA聚合酶体外转录sgRNA和Cas9。将Cas9 mRNA和sgRNA混合物注射入SD大鼠的受精卵中,实现靶基因敲除。用T7 EN1实验初步检测靶基因的修饰情况,再经过测序分析确定突变。结果获得了5个在Irs1基因突变的首建鼠,突变效率为83%。结论得到了稳定遗传的Irs1基因敲除大鼠。  相似文献   

9.
旨在利用CRISPR/Cas9技术构建敲除花生四烯5-脂氧合酶基因(Arachidonate 5-lipoxygenase gene,ALOX5)的重组质粒。设计合成3对靶向敲除ALOX5第六外显子的sgRNA,将其分别插入到CRISPR/Cas9质粒骨架pX458载体中,转化感受态大肠杆菌DH5α后挑取克隆,通过测序评估重组质粒是否构建成功。将构建好的重组质粒转染293T细胞,在荧光显微镜下观察转染效果,挑取转染成功的细胞,用试剂盒提取转染细胞基因组DNA,PCR扩增含敲除位点的DNA片段,用测序技术获得核苷酸序列,用DNAStar软件分析转染细胞中ALOX5基因敲除情况。测序结果表明2对双链sgRNA寡核苷酸已插入质粒,且序列正确,靶向ALOX5基因的重组质粒pX458-sgRNAs-ALOX5构建成功。其在293T细胞中的转染效率约为50%,用一代测序法未检测到sgRNAs的切割效果。初步表明利用CRISPR/Cas9技术成功构建靶向ALOX5基因的重组质粒pX458-sgRNAs-ALOX5。  相似文献   

10.
目的:利用CRISPR/Cas9基因编辑技术构建CDH1基因缺失的人乳腺癌MCF-7稳定细胞系。方法:根据CRISPR/Cas9靶点设计原则,设计能特异性针对CDH1基因的sgRNA,以lentiCRISPR v2质粒为骨架构建能表达此sgRNA和Cas9蛋白的重组质粒。测序鉴定后,将重组质粒与逆转录病毒包装质粒VSVG、PAX2在氯化钙介导下共同转入HEK293T细胞进行病毒包装,转染48 h后收集病毒上清,直接感染人乳腺癌MCF-7细胞。采用嘌呤霉素筛选CDH1缺失的乳腺癌MCF-7细胞,通过DNA测序、Western印迹及免疫荧光染色实验验证获得的MCF-7细胞。结果:构建了靶向CDH1的CRISPR/Cas9质粒;DNA测序和Western印迹实验结果表明获得了稳定敲除CDH1的人乳腺癌MCF-7细胞。免疫荧光染色结果显示,相比对照组,稳定敲除CDH1的MCF-7细胞中已无法明显观察到E-钙黏蛋白的表达分布。结论:通过CRISPR/Cas9基因编辑技术构建了CDH1基因缺失的MCF7细胞系,为进一步研究CDH1在肿瘤免疫治疗中的作用提供了基础。  相似文献   

11.
12.
Dong  Zhanqi  Qin  Qi  Hu  Zhigang  Chen  Peng  Huang  Liang  Zhang  Xinling  Tian  Ting  Lu  Cheng  Pan  Minhui 《中国病毒学》2019,34(4):444-453
Recently the developed single guide(sg)RNA-guided clustered regularly interspaced short palindromic repeats/associated protein 9 nuclease(CRISPR/Cas9) technology has opened a new avenue for antiviral therapy. The CRISPR/Cas9 system uniquely allows targeting of multiple genome sites simultaneously. However, there are relatively few applications of CRISPR/Cas9 multigene editing to target insect viruses. To address the need for sustained delivery of a multiplex CRISPR/Cas9-based genome-editing vehicle against insect viruses, we developed a one-vector(pSL1180-Cas9-U6-sgRNA) system that expresses multiple sgRNA and Cas9 protein to excise Bombyx mori nucleopolyhedrovirus(BmNPV) in insect cells.We screened the immediate-early-1 gene(ie-1), the major envelope glycoprotein gene(gp64), and the late expression factor gene(lef-11), and identified multiple sgRNA editing sites through flow cytometry and viral DNA replication analysis. In addition, we constructed a multiplex editing vector(PSL1180-Cas9-sgIE1-sgLEF11-sgGP64, sgMultiple) to efficiently regulate multiplex gene-editing and inhibit BmNPV replication after viral infection. This is the first report of the application of a multiplex CRISPR/Cas9 system to inhibit insect virus replication. This multiplex system can significantly enhance the potential of CRISPR/Cas9-based multiplex genome engineering in insect virus.  相似文献   

13.
Knockout of genes with CRISPR/Cas9 is a newly emerged approach to investigate functions of genes in various organisms. We demonstrate that CRISPR/Cas9 can mutate endogenous genes of the ascidian Ciona intestinalis, a splendid model for elucidating molecular mechanisms for constructing the chordate body plan. Short guide RNA (sgRNA) and Cas9 mRNA, when they are expressed in Ciona embryos by means of microinjection or electroporation of their expression vectors, introduced mutations in the target genes. The specificity of target choice by sgRNA is relatively high compared to the reports from some other organisms, and a single nucleotide mutation at the sgRNA dramatically reduced mutation efficiency at the on‐target site. CRISPR/Cas9‐mediated mutagenesis will be a powerful method to study gene functions in Ciona along with another genome editing approach using TALE nucleases.  相似文献   

14.
基于CRISPR/Cas系统出现的单碱基编辑技术可以实现高效且简便的单个碱基的替换编辑,其原理是将胞嘧啶脱氨酶(cytosine deaminase)或腺苷脱氨酶(adenosine deaminase)与Cas9n(D10A)形成融合蛋白,通过CRISPR/Cas精准识别和定位DNA上的靶位点后,利用胞嘧啶脱氨酶或腺苷脱氨酶将靶点距离sgRNA位点基序(protospacer adjacent motif,PAM)序列端的4~7位的单个碱基发生单碱基转换或颠换。对基于CRISPR/Cas系统的单碱基编辑技术发现的历史、组成和分类、工作原理进行了概述,并总结了该系统最新进展及应用。  相似文献   

15.
《Cytotherapy》2021,23(9):852-860
Background aimsNext-generation immune cell therapy products will require complex modifications using engineering technologies that can maintain high levels of cell functionality. Non-viral engineering methods have the potential to address limitations associated with viral vectors. However, while electroporation is the most widely used non-viral modality, concerns about its effects on cell functionality have led to the exploration of alternative approaches. Here the authors have examined the suitability of the Solupore non-viral delivery system for engineering primary human T cells for cell therapy applications.MethodsThe Solupore system was used to deliver messenger RNA (mRNA) and clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) guide RNA ribonucleoprotein (RNP) cargos to T cells, and efficiency was measured by flow cytometry. Cell perturbation was assessed by immune gene expression profiling, including an electroporation comparator. In vitro and in vivo cytotoxicity of chimeric antigen receptor (CAR) T cells generated using the Solupore system was evaluated using a real-time cellular impedance assay and a Raji-luciferase mouse tumor model, respectively.ResultsEfficient transfection was demonstrated through delivery of mRNA and CRISPR CAS9 RNP cargos individually, simultaneously and sequentially using the Solupore system while consistently maintaining high levels of cell viability. Gene expression profiling revealed minimal alteration in immune gene expression, demonstrating the low level of perturbation experienced by the cells during this transfection process. By contrast, electroporation resulted in substantial changes in immune gene expression in T cells. CAR T cells generated using the Solupore system exhibited efficient cytotoxicity against target cancer cells in vitro and in vivo.ConclusionsThe Solupore system is a non-viral means of simply, rapidly and efficiently delivering cargos to primary human immune cells with retention of high cell viability and functionality.  相似文献   

16.
The clustered regularly interspaced short palindromic repeats(CRISPR)-associated protein 9(CRISPR-Cas9) system provides a novel genome editing technology that can precisely target a genomic site to disrupt or repair a specific gene. Some CRISPR-Cas9 systems from different bacteria or artificial variants have been discovered or constructed by biologists, and Cas9 nucleases and single guide RNAs(sgRNA) are the major components of the CRISPR-Cas9 system. These Cas9 systems have been extensively applied for identifying therapeutic targets, identifying gene functions, generating animal models, and developing gene therapies.Moreover, CRISPR-Cas9 systems have been used to partially or completely alleviate disease symptoms by mutating or correcting related genes. However, the efficient transfer of CRISPR-Cas9 system into cells and target organs remains a challenge that affects the robust and precise genome editing activity. The current review focuses on delivery systems for Cas9 mRNA, Cas9 protein, or vectors encoding the Cas9 gene and corresponding sgRNA. Non-viral delivery of Cas9 appears to help Cas9 maintain its on-target effect and reduce off-target effects, and viral vectors for sgRNA and donor template can improve the efficacy of genome editing and homology-directed repair. Safe, efficient, and producible delivery systems will promote the application of CRISPR-Cas9 technology in human gene therapy.  相似文献   

17.
The Cas9/sgRNA of the CRISPR/Cas system has emerged as a robust technology for targeted gene editing in various organisms, including plants, where Cas9/sgRNA-mediated small deletions/insertions at single cleavage sites have been reported in transient and stable transformations, although genetic transmission of edits has been reported only in Arabidopsis and rice. Large chromosomal excision between two remote nuclease-targeted loci has been reported only in a few non-plant species. Here we report in rice Cas9/sgRNA-induced large chromosomal segment deletions, the inheritance of genome edits in multiple generations and construction of a set of facile vectors for high-efficiency, multiplex gene targeting. Four sugar efflux transporter genes were modified in rice at high efficiency; the most efficient system yielding 87–100% editing in T0 transgenic plants, all with di-allelic edits. Furthermore, genetic crosses segregating Cas9/sgRNA transgenes away from edited genes yielded several genome-edited but transgene-free rice plants. We also demonstrated proof-of-efficiency of Cas9/sgRNAs in producing large chromosomal deletions (115–245 kb) involving three different clusters of genes in rice protoplasts and verification of deletions of two clusters in regenerated T0 generation plants. Together, these data demonstrate the power of our Cas9/sgRNA platform for targeted gene/genome editing in rice and other crops, enabling both basic research and agricultural applications.  相似文献   

18.
《Journal of Asia》2023,26(1):102031
Overuse of synthetic chemicals over a long period of time has not only resulted in control failures but also enormous ecological damage. This necessitates developing eco-friendly, effective alternatives for sustainable pest management. In this regard, potential of CRISPR/Cas9 mediated genome editing to introduce site specific mutations that mostly resulting in loss of function has been successfully demonstrated in wide varieties of organisms including insects. This has opened a new avenue to design and implement futuristic pest management strategies like precision guided sterile insect technique (pgSIT) for an area wide suppression. This requires validation of target genes employing Ribonucleoprotein (RNP) complex containing sgRNA and Cas9 protein before undertaking transgenesis for achieving pgSIT. In the present study, we have for the first time, supporting CRISPR/Cas9 mediated editing of the eye colour gene, Tryptophan 2, 3-dioxygenase of the eggplant shoot and fruit borer, Leucinodes orbonalis using RNP complex. The mutant moths of both sexes exhibited reddish brown eyed phenotype. Having established an RNP mediated editing system in L. orbonalis, the key genes involved in sex determination and spermatogenesis will be validated for developing a pgSIT system for L. orbonalis.  相似文献   

19.
20.
Genome editing using RNA‐guided nucleases in their ribonucleoprotein (RNP) form represents a promising strategy for gene modification and therapy because they are free of exogenous DNA integration and have reduced toxicity in vivo and ex vivo. However, genome editing by Cas9 nuclease from Staphylococcus aureus (SaCas9) has not been reported in its RNP form, which recognizes a longer protospacer adjacent motif (PAM), 5′‐NNGRRT‐3′, compared with Streptococcus pyogenes Cas9 (SpCas9) of 5′‐NGG‐3′ PAM. Here, SaCas9‐RNP‐mediated genome editing is reported in human cells. The SaCas9‐RNP displayed efficient genome editing activities of enhanced green fluorescent protein (EGFP) coding gene as well as three endogenous genes (OPA1, RS1, and VEGFA). Further, SaCas9‐RNP is successfully implemented to correct a pathogenic RS1 mutation for X‐linked juvenile retinoschisis. It is also shown that off‐target effects triggered by SaCas9‐RNP are undetectable by targeted deep sequencing. Collectively, this study demonstrates the potential of SaCas9‐RNP‐mediated genome editing in human cells, which could facilitate genome‐editing‐based therapy.  相似文献   

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