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1.
锌指核酸酶(zinc finger nuclease,ZFN)是由特异性识别DNA的锌指结构域和Fok I切割结构域组成,能够在基因组特定位点上切割DNA,引起DNA双链断裂(double-strand break,DSB).通过DSB修复机制,可以使基因修饰的效率比传统方法提高102~104倍.目前,利用ZFN对动物内源基因进行敲除的研究较多,但对转基因动物中外源多拷贝基因进行敲除的报道较少.本研究首先利用荧光定量PCR法对本实验室培育的两头转基因猪中增强型绿色荧光蛋白(enhanced green fluorescent protein,EGFP)基因的拷贝数进行鉴定,发现其拷贝数分别为11.95和17.36拷贝;然后将靶向EGFP的一对ZFN转染进拷贝数为17.36的EGFP转基因猪的成纤维细胞中,并通过流式和CEL-1酶切方法检测敲除效率.结果表明,转染400 ng、800 ng和1 200 ng ZFN的切割效率分别为0.97%、1.39%和1.76%,可见随着转染ZFN剂量的增加,ZFN的切割效率逐渐提高.但是,不发绿色荧光的细胞比例却没有明显提高,因此认为,ZFN敲除转基因动物中多拷贝基因的效率还是比较低.  相似文献   

2.
锌指核酸酶技术在基因定点修饰中具有效率高和特异性好等特点,并成功应用于数十种生物。目前,该技术是否能应用羊上尚未报道。为了敲除转基因山羊标记基因 (EGFP),构建了一对针对EGFP外显子上的锌指核酸酶表达载体,将其电转染至转EGFP基因胎儿成纤维细胞中,研究了锌指核酸酶突变EGFP基因的效率和方式,利用基因显微注射单细胞获得获得的转基因 (EGFP) 细胞系作为锌指核酸酶的靶细胞。结果显示,通过锌指核酸酶的突变作用,转染后的细胞发绿色荧光比例下降,测序结果显示在EGFP外显子中插入1个碱基G,导致编码EGFP基因的阅读框改变,从而起到基因突变的作用。结果表明,文中构建的锌指核酸酶对EGFP基因有突变作用,可以为以后获得无标记基因供核细胞进行体细胞核移植生产克隆羊奠定基础。  相似文献   

3.
目的:构建增强型绿色荧光蛋白(EGFP)标记的乙型肝炎病毒(HBV)真核表达载体,并研究其在真核细胞和小鼠体内的共表达。方法:以质粒pBR322-HBVadr2.0和pCX-EGFP为基础,构建含有双拷贝HBV全基因组DNA和EGFP基因的真核表达载体pCX-EGFP-HBVadr2.0,分别转染真核细胞和小鼠肝组织,建立体外、体内表达系统,研究GFP和HBV基因的表达。结果:构建了真核表达载体pCX-EGFP-HBVadr2.0,EGFP和HBV病毒蛋白在体内和体外均可表达。结论:构建的pCX-EGFP-HBVadr2.0真核表达载体可以GFP作为HBV存在与否的报告基因,提高了培育检测转基因小鼠的效率,为转基因小鼠的制备及后续研究奠定了基础。  相似文献   

4.
锌指核酸酶在基因组定向修饰中的应用   总被引:1,自引:0,他引:1  
同源重组和逆转录病毒介导转基因法是目前基因组修饰中常用的两种主要方法.由于这些传统方法效率低,特异性差等缺点,制约了其在研究中的应用.锌指核酸酶(zinc finger nuclease,ZFN)是一种人工合成酶,含有锌指蛋白DNA结合域和非特异性核酸酶FokI结构域. ZFN在对基因组的靶向修饰时,表现出高度特异性和高效性. 最新研究结果显示,锌指核酸酶在哺乳动物细胞和斑马鱼基因组靶向敲除的效率高达20%.这一技术的出现,将给基因组靶向修饰的研究和应用领域带来革命,特别是在基因治疗人类疾病方面有巨大的潜力和广阔的前景.  相似文献   

5.
人工锌指核酸酶介导的基因组定点修饰技术   总被引:2,自引:0,他引:2  
Xiao A  Hu YY  Wang WY  Yang ZP  Wang ZX  Huang P  Tong XJ  Zhang B  Lin S 《遗传》2011,33(7):665-683
锌指核酸酶(ZFN)由锌指蛋白(ZFP)结构域和Fok I核酸内切酶的切割结构域人工融合而成,是近年来发展起来的一种可用于基因组定点改造的分子工具。ZFN可识别并结合特定的DNA序列,并通过切割这一序列的特定位点造成DNA的双链断裂(DSB)。在此基础上,人们可以对基因组的特定位点进行各种遗传操作,包括基因打靶、基因定点插入、基因修复等,从而能够方便快捷地对基因组实现靶向遗传修饰。这种新的基因组定点修饰方法的突出优势是适用性好,对物种没有选择性,并且可以在细胞和个体水平进行遗传操作。文章综述了ZFN技术的研究进展及应用前景,重点介绍ZFN的结构与作用机制、现有的靶点评估及锌指蛋白库的构建与筛选方法、基因组定点修饰的策略,以及目前利用这一技术已成功实现突变的物种及内源基因,为开展这一领域的研究工作提供参考。  相似文献   

6.
绵羊胎儿成纤维细胞体外培养及转基因研究   总被引:2,自引:0,他引:2  
目的用增强型绿色荧光蛋白(EGFP)基因转染体外培养绵羊胎儿成纤维细胞,探讨绿色荧光蛋白对绵羊胎儿成纤维细胞生物学特性的影响.方法体外分离培养绵羊胎儿成纤维细胞,经脂质体介导EGFP基因转染第一代成纤维细胞,G418筛选10~12*!d,挑选转基因单克隆细胞,传代培养,进行细胞形态观察、生长曲线以及染色体核型分析,并进行了培养细胞性别鉴定.结果整合有EGFP基因的绵羊胎儿成纤维细胞生物学行为与未转染外源基因的细胞无明显差别,根据荧光强度可直接反应外源基因的表达量.结论 EGFP基因作为体内报告基因可用于转基因细胞的研究,并将整合有EGFP基因的转基因细胞为克隆动物提供核供体奠定了基础.  相似文献   

7.
小鼠精子形成各阶段转基因效率的研究   总被引:1,自引:0,他引:1  
在过去的近30年中,转基因技术在哺乳动物基因表达方面研究的应用已经成为实验生物学及应用生物学领域最为显著的进展之一.传统的制作转基因动物方法有显微注射法、逆转录病毒感染法和胚胎干细胞法等,但每种方法都有其缺陷,限制了其在今后转基因动物研究中的广泛应用.对小鼠体内生殖细胞进行外源基因转染,研究精子形成过程中制作转基因小鼠的效率.首先运用睾丸注射法将被脂质体包裹的绿色荧光蛋白表达载体(pIRES2-EGFP)注射到公鼠睾丸及附睾内,然后根据精子形成的不同阶段,分别于注射后7、16、30和42天与发情母鼠合笼,利用PCR和DNA印迹方法对新生小鼠进行基因组DNA检测.在各阶段所得新生小鼠中PCR阳性率分别为6.82%、0、56.86%和42.86%,DNA印迹检测阳性率分别为6.82%、0、47.06%、34.69%.经活体荧光成像系统及荧光显微镜分析,转基因小鼠呈现绿色荧光表达.通过比较精子生成各阶段转基因效率高低,为以后通过用睾丸内注射法转染雄性生殖细胞高效制作转基因动物提供了理论依据.  相似文献   

8.
锌指核酸酶(zinc finger nuclease,ZFN)技术是近年来发展起来的一种对基因组DNA实现靶向修饰的新技术。ZFN通过作用于基因组DNA上特异的靶位点产生DNA双链切口(double strand break,DSB),然后经过非同源末端连接(non-homologous end joining,NHEJ)或同源重组(homologous recombination,HR)途径实现对基因组DNA的靶向敲除或者替换。该技术近些年来已经被广泛应用于基因靶向修饰的研究。本文在简要介绍ZFN技术的基础上,重点综述了目前该技术在基因靶向修饰中的应用研究进展,并同时对该技术目前所需解决的一些问题以及未来的研究方向进行了分析。  相似文献   

9.
10.
一种简便高效的人胚胎干细胞转染方法   总被引:2,自引:0,他引:2  
目的 :利用Fugene 6基因转染试剂建立一种简便高效的人胚胎干细胞转染方法 ,并建立稳定表达增强型绿色荧光蛋白 (enhancedgreenfluorescentprotein ,EGFP)报告基因的人胚胎干细胞系 ,为人胚胎干细胞研究提供一个非常有用的细胞模型。方法 :通过Fugene 6基因转染试剂成功地将EGFP基因转入无饲养层培养的人胚胎干细胞中 ,嘌呤霉素筛选得到稳定表达EGFP的克隆 ;利用倒置荧光显微镜和流式细胞仪检测EGFP在人胚胎干细胞中的表达情况。结果 :EGFP瞬时转染效率为 30 %~ 40 % ,稳定转染效率约 1/104~5,且稳定转染的人胚胎干细胞均表达EGFP。结论 :Fugene 6是一种良好的基因转染试剂 ,它可以有效地将外源基因转入人胚胎干细胞中 ,为人胚胎干细胞的转基因研究提供新的实验手段。  相似文献   

11.
Zinc finger nuclease (ZFN) technology can mediate targeted genome modification to produce transgenic animals in a high-efficient and biological-safe way. Modular assembly is a rapid, convenient and open-source method for the synthesis of ZFNs. However, this biotechnology is hampered by multistep construction, low-efficiency editing and off-target cleavage. Here we synthesized and tested six pairs of three- or four-finger ZFNs to target one site in goat beta-lactoglobulin (BLG, a dominant allergen in goat milk) gene. Homology modeling was applied to build the structure model of ZFNs to predict their editing activities targeting at goat BLG gene. Goat fibroblast cells were transfected with plasmids that encoded ZFN pairs, and genomic DNA was isolated 72 h later for genome editing efficiency assay. The results of editing efficiency assay demonstrated that ZFNs with optimal interaction modes can edit goat BLG gene more efficiently, whereas ZFNs with unexpected interaction modes showed lower activities in editing BLG gene. We concluded that modular-assembly ZFNs can provide a rapid, public-available, and easy-to-practice platform for transgenic animal research and molecular modeling would help as a useful tool for ZFNs activity prediction.  相似文献   

12.
Fan B  Huang P  Zheng S  Sun Y  Fang C  Sun Z 《Animal biotechnology》2011,22(4):211-222
Synthetic zinc finger nucleases (ZFNs) are useful for the improvement of site directed integration of foreign gene into vertebrate chromosomes. To facilitate site-directed integration of foreign genes into the 3'-untranslated region of the chicken ovalbumin gene, we have constructed ZFN expression vectors using Zinc Finger Consortium Vector Kits and tested the functionality of these ZFN constructs. Coding sequences for 6 zinc fingers were assembled following the modular assembly method. The zinc finger assembly was fused to two FokI catalytic domains. Various configurations of linker regions between domains were tested for their influence on enzymatic activity, using plasmid substrate containing the target sequence. Results indicated that ZFN with an elongated linker between two nuclease domains had a high catalytic activity.  相似文献   

13.
14.
Targeted gene addition to mammalian genomes is central to biotechnology, basic research and gene therapy. For example, gene targeting to the ROSA26 locus by homologous recombination in embryonic stem cells is commonly used for mouse transgenesis to achieve ubiquitous and persistent transgene expression. However, conventional methods are not readily adaptable to gene targeting in other cell types. The emerging zinc finger nuclease (ZFN) technology facilitates gene targeting in diverse species and cell types, but an optimal strategy for engineering highly active ZFNs is still unclear. We used a modular assembly approach to build ZFNs that target the ROSA26 locus. ZFN activity was dependent on the number of modules in each zinc finger array. The ZFNs were active in a variety of cell types in a time- and dose-dependent manner. The ZFNs directed gene addition to the ROSA26 locus, which enhanced the level of sustained gene expression, the uniformity of gene expression within clonal cell populations and the reproducibility of gene expression between clones. These ZFNs are a promising resource for cell engineering, mouse transgenesis and pre-clinical gene therapy studies. Furthermore, this characterization of the modular assembly method provides general insights into the implementation of the ZFN technology.  相似文献   

15.
Zinc finger nucleases (ZFNs) are powerful tools for gene therapy and genetic engineering. The high specificity and affinity of these chimeric enzymes are based on custom-designed zinc finger proteins (ZFPs). To improve the performance of existing ZFN technology, we developed an in vivo evolution-based approach to improve the efficacy of the FokI cleavage domain (FCD). After multiple rounds of cycling mutagenesis and DNA shuffling, a more efficient nuclease variant (Sharkey) was generated. In vivo analyses indicated that Sharkey is > 15-fold more active than wild-type FCD on a diverse panel of cleavage sites. Further, a mammalian cell-based assay showed a three to sixfold improvement in targeted mutagenesis for ZFNs containing derivatives of the Sharkey cleavage domain. We also identified mutations that impart sequence specificity to the FCD that might be utilized in future studies to further refine ZFNs through cooperative specificity. In addition, Sharkey was observed to enhance the cleavage profiles of previously published and newly selected heterodimer ZFN architectures. This enhanced and highly efficient cleavage domain will aid in a variety of ZFN applications in medicine and biology.  相似文献   

16.
A transgene, flanked by zinc finger nuclease (ZFN) cleavage sites, was deleted from a stably transformed plant by crossing it with a second plant expressing a corresponding ZFN gene. A target construct, containing a GUS reporter gene flanked by ZFN cleavage sites, a GFP reporter gene and a PAT selectable marker gene, was transformed into tobacco. Basta®-resistant plants were regenerated and screened for GUS and GFP expression. A second construct, containing a ZFN gene driven by the constitutive CsVMV promoter and an HPT selectable marker gene, was also transformed into tobacco. Selected T0 plants were grown to maturity and allowed to self-pollinate. Homozygous target plants, which expressed GUS and GFP, were crossed with homozygous ZFN plants, which expressed the ZFN gene. Numerous GUS-negative plants were observed among the hybrids with one particular cross displaying ~35% GUS-negative plants. Evidence for complete deletion of a 4.3 kb sequence comprising the GUS gene was obtained and sequence confirmed. Co-segregation in F2 progenies of ‘truncated’ and ‘intact’ target sequences with expected reporter gene phenotypes were observed. Since ZFNs can be designed to bind and cleave a wide range of DNA sequences, these results constitute a general strategy for creating targeted gene deletions.  相似文献   

17.
Engineered zinc finger nucleases (ZFNs) induce DNA double-strand breaks at specific recognition sequences and can promote efficient introduction of desired insertions, deletions or substitutions at or near the cut site via homology-directed repair (HDR) with a double- and/or single-stranded donor DNA template. However, mutagenic events caused by error-prone non-homologous end-joining (NHEJ)-mediated repair are introduced with equal or higher frequency at the nuclease cleavage site. Furthermore, unintended mutations can also result from NHEJ-mediated repair of off-target nuclease cleavage sites. Here, we describe a simple and general method for converting engineered ZFNs into zinc finger nickases (ZFNickases) by inactivating the catalytic activity of one monomer in a ZFN dimer. ZFNickases show robust strand-specific nicking activity in vitro. In addition, we demonstrate that ZFNickases can stimulate HDR at their nicking site in human cells, albeit at a lower frequency than by the ZFNs from which they were derived. Finally, we find that ZFNickases appear to induce greatly reduced levels of mutagenic NHEJ at their target nicking site. ZFNickases thus provide a promising means for inducing HDR-mediated gene modifications while reducing unwanted mutagenesis caused by error-prone NHEJ.  相似文献   

18.
Targeted transgene integration in plants remains a significant technical challenge for both basic and applied research. Here it is reported that designed zinc finger nucleases (ZFNs) can drive site-directed DNA integration into transgenic and native gene loci. A dimer of designed 4-finger ZFNs enabled intra-chromosomal reconstitution of a disabled gfp reporter gene and site-specific transgene integration into chromosomal reporter loci following co-transformation of tobacco cell cultures with a donor construct comprised of sequences necessary to complement a non-functional pat herbicide resistance gene. In addition, a yeast-based assay was used to identify ZFNs capable of cleaving a native endochitinase gene. Agrobacterium delivery of a Ti plasmid harboring both the ZFNs and a donor DNA construct comprising a pat herbicide resistance gene cassette flanked by short stretches of homology to the endochitinase locus yielded up to 10% targeted, homology-directed transgene integration precisely into the ZFN cleavage site. Given that ZFNs can be designed to recognize a wide range of target sequences, these data point toward a novel approach for targeted gene addition, replacement and trait stacking in plants.  相似文献   

19.
应用SSA报告载体提高ZFN和CRISPR/Cas9对猪IGF2基因的打靶效率   总被引:3,自引:0,他引:3  
IGF2(Insulin-like growth factor 2)基因作为最复杂多样的生长因子之一,对猪胎儿发育以及出生后生长发育和肌肉生成起着非常重要的作用。通过基因组编辑技术对我国本地猪种的IGF2基因作精确的遗传修饰,对于提高本地猪种的瘦肉率具有重要的育种意义。文章在蓝塘猪胎儿成纤维细胞(Porcine fetal fibroblasts, PEF)中检测了锌指核酸酶(Zinc finger nucleases, ZFN)和CRISPR/Cas9对IGF2基因的打靶效率,结果表明CRISPR/Cas9对IGF2基因的切割效率最高可达9.2%,显著高于ZFN的切割效率(<1%),但两者均未达到作为体细胞核移植(Somatic nuclear transfer, SCNT)供体细胞所需的打靶效率。应用SSA (Single-strand annealing)报告载体筛选技术来富集IGF2基因被ZFN和CRISPR/Cas9修饰过的PEF细胞,结果表明,该技术可使CRISPR/Cas9的打靶效率提高5倍左右,对ZFN的打靶效率具有更大的增强作用。  相似文献   

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