首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 93 毫秒
1.
在植物基因工程中,需要用到选择标记基因以便筛选转化子。随着转基因植物的商品化,人们越来越关注其安全性问题,其中主要涉及选择标记的安全性。为了提高转基因植物的安全性,生物学家们开始寻找生物安全的选择标记。本文分别从糖代谢、氨基酸代谢、激素代谢、核苷酸代谢、蛋白质代谢等方面综述了当前以代谢关键酶基因作为转基因植物选择标记的研究进展,此类选择标记为解决转基因植物的安全性问题提供了一条有效途径。  相似文献   

2.
安全标记基因在转基因植物中的应用   总被引:5,自引:0,他引:5  
转基因植物的抗性标记一直是转基因生物安全性争论的焦点,是限制转基因植物应用的瓶颈之一。筛选安全标记基因替代抗生素标记基因已成为解决转基因植物安全性和促进转基因植物应用的重要策略。综述了生物安全标记基因的产生背景、系统分类、筛选原理及不同起源的标记基因在植物基因工程中的应用和存在问题。选用植物内源标记基因已成为转基因植物安全标记基因研究的重要方向。  相似文献   

3.
随着越来越多的转基因植物品种的出现,转基因植物的环境安全及食用安全越来越受到人们的广泛关注。目前存在的问题之一是转基因植物中抗生素或除草剂抗性的选择标记基因的存留。为了提高转基因植物的安全性,将转基因植物中选择性标记基因去除,不仅利于同一转基因植物的多次操作,而且更容易被人们所接受。就目前转基因植物中选择性标记基因去除的方法及其优缺点进行了横纵向的比较,希望对相关研究领域方法的选择方向具有指导意义。  相似文献   

4.
无选择标记转基因植物的培育   总被引:10,自引:1,他引:9  
植物转基因研究中通常都要使用选择标记基因来筛选转化细胞并获得转基因植株。但是当转基因植株育成后,选择标记基因就失去了存在的意义。为了消除由选择标记基因引起的安全性隐患,人们发展了一些培育无选择标记转基因植物的策略。这些策略主要包括共转化、位点特异性重组和转座子转座等。去除选择标记基因将促进公众对转基因作物的接受。评述了无选择标记转基因植物的研究进展。  相似文献   

5.
植物转化中的安全标记基因   总被引:8,自引:0,他引:8  
转基因植物中的除草剂或抗生素抗性标记基因的生态环境和食用安全性一直颇有争议.糖类分解代谢酶基因作为安全标记基因,近年来在植物转化中显示了巨大应用潜力.这类标记基因编码产物是筛选剂糖类的分解代谢酶,使转化细胞能利用筛选剂糖类作为主要碳源从而获得优势生长,非转化细胞则因饥饿生长被抑制但不被杀死,故称为正筛选系统(positive selection system).目前木糖异构酶基因(xylose isomerase,xylA)和磷酸甘露糖异构酶基因(phosphomannose isomerase,pmi)等安全标记基因已成功应用于植物转化.  相似文献   

6.
目前,几乎所有的植物遗传转化都要通过使用选择标记基因,如抗生素或除草剂抗性基因等来筛选转化子,虽然没有研究结果表明选择标记基因影响人类健康或环境安全,但近年来也引发了人们对转基因产品安全性的担心。为了消除公众对转基因食品的安全性顾虑,无选择标记的转基因植物应运而生。本文综述了共转化系统、位点特异性重组系统(包括FLP/FRT、Cre/lox、R/RS及Gin/gix系统)和转座子系统(Ac/Ds转座子系统)在培育无选择标记转基因植物中的应用。  相似文献   

7.
目的:构建以木糖异构酶基因xylA为筛选标记的无抗生素标记Gateway系统植物表达载体。方法:克隆大肠杆菌木糖异构酶基因xylA并用其替换植物表达载体pCAMBIA1301中的hpt基因,利用载体中的多克隆位点将Gateway Binary Vector(pH7WG2D)中酶切位点XbaⅠ和HindⅢ之间包括P35S、T35S、attR1、attR2和CmR-ccdB的片段重组入表达载体pCAMBIA1301中,构建表达载体pCAMBIA1301-xylA-GW,利用含有津田芜菁HY5基因片段的BP反应产物与载体进行LR反应,获得含有目的基因的植物表达载体pCAMBIA1301-xylA-HY5,并导入根癌农杆菌LBA4404中。结果:抗生素筛选及酶切和PCR鉴定表明成功构建了以xylA为筛选标记的无抗生素标记植物表达载体pCAMBIA1301-xylA-HY5。结论:利用木糖异构酶基因xylA结合Gateway克隆技术构建无抗生素标记植物表达载体,可简化、方便植物转基因表达载体构建。  相似文献   

8.
标记基因的产生方便了植物的转化,随着转基因植物的迅速发展及商品化,人类更关注抗性标记基因的安全性。目前解决的有效途径是发展正向选择系统,使用非抗性的生物安全标记基因,主要包括糖类代谢酶基因(pmi和xylA)、干扰氨基酸代谢酶基因(ak和dapA)、绿色荧光蛋白基因(gfp)、β-葡萄糖苷酸酶基因(gus)、核糖醇操纵子(rtl)和叶绿素生物合成基因(hemL)等。  相似文献   

9.
以木糖异构酶基因为筛选标记的玉米遗传转化   总被引:1,自引:0,他引:1  
利用木糖异构酶基因作为筛选标记可以在含有不同浓度木糖的培养基上筛选出玉米再生植株,其中50%-100%木糖浓度的总体筛选效果较好,但不同玉米基因型之间筛选的最佳浓度差异很大。通过DNA点杂交、PCR及PCR.Southern印记法检测表明,木糖异构酶基因已经整合到转基因植株中。以木糖作为筛选剂,可以减小潜在的生物安全隐患。  相似文献   

10.
无选择标记基因植物转化系统研究进展   总被引:6,自引:0,他引:6  
在转基因植物中,将选择标记基因去掉,将提高转基因植物的食用安全性和对环境的安全性,更易为广大消费者所接受,也有利于对同一个植物品种进行多次转基因操作。科学工作者已经在建立无选择标记基因转化系统方面作了大量尝试,获得了无标记基因的转基因植物(MFTPs:MarkerFreeTransgenicPlants)。本文将这方面的研究进展介绍给大家,以推动植物生物技术产业化进程。  相似文献   

11.
转基因植物中的标记基因研究新进展   总被引:7,自引:0,他引:7  
杨英军  周鹏 《遗传》2005,27(3):499-504
文章综述了转基因植物中标记基因研究的新进展,主要包括以下3个方面:第一是采用共转化、位点特异性重组和转座子等技术对传统抗性标记基因进行消除,以利于对同一作物进行多次转基因操作;第二是完善各种已应用的以糖类代谢酶基因、耐胁迫酶类基因和绿色荧光蛋白基因等为安全标记基因的转化体系,并大力研究、开发潜在的汞离子还原酶基因、叶绿体合成关键酶基因等作为安全标记基因;第三是着力发展无标记基因、无载体骨架的简单高效转化体系。此外,还展望了安全标记的应用前景。  相似文献   

12.
转基因植物中标记基因的消除   总被引:11,自引:0,他引:11  
随着转基因植物的商业化,植物遗传转化技术将为农业生产带来一场新的革命,新的基因转化程序要求转基因为单拷贝,不带有标记基因,并在不同的转化体中表达一致,稳定遗传,本文讨论了转基因植物中有关标记基因及其安全性和标记基因消除的方法等问题。  相似文献   

13.
转基因植物中标记基因的安全性新策略   总被引:16,自引:2,他引:14  
赵艳  王慧中  于彦春  黄大年 《遗传》2003,25(1):119-122
转基因植物中的除草剂和抗生素抗性标记基因潜在的生态环境和食用安全性令人担忧。解决转基因植物中抗性标记基因安全性问题有两种途径:一是转化时仍使用抗性标记基因,转基因植物再生成功后,在释放大田前将标记基因剔除;二是发展安全性标记基因用于植物遗传转化。本文综述了三种标记基因剔除系统和几种安全性标记基因在植物转化中的应用进展。  相似文献   

14.
Biosafety implications of selectable marker genes that are integrated into the transgenic plants are discussed. In the laboratory, selectable marker genes are used at two stages to distinguish transformed cells out of a large population of nontransformed cells: 1) initial assembly of gene cassettes is generally done in E. coli on easily manipulatable plasmid vectors that contain the selectable marker genes which often code for antibiotic inactivating enzymes, and 2) Then the gene cassettes are inserted into the plant genome by various transformation methods. For selection of transformed plant cells, antibiotic and herbicide resistance genes are widely used. Consequently, transgenic plants can end up with DNA sequences of selectable markers that are functional in E. coli and plants. The potential for horizontal gene transfer of selectable markers from transgenic plants to other organisms both in the environment and in the intestine of humans and animals is evaluated. Mechanisms and consequences of the transfer of marker genes from plants to other organisms is examined. Strategies to avoid marker genes in plants are discussed. It is possible to avoid the use of controversial selectable markers in the construction of transgenic plants.  相似文献   

15.
You SJ  Liau CH  Huang HE  Feng TY  Prasad V  Hsiao HH  Lu JC  Chan MT 《Planta》2003,217(1):60-65
A novel method for selection of transgenic plants utilizing the sweet pepper ( Capsicum annuum L.) ferredoxin-like protein ( pflp) gene as selection marker and Erwinia carotovora as the selection agent has been developed. An expression vector containing a pflp cDNA driven by a cauliflower mosaic virus 35S promoter was successfully transformed into protocorm-like bodies of Oncidium orchid by Agrobacterium tumefaciens and particle bombardment, respectively. Erwinia carotovora was used as a selection agent to screen transformants, thereby obtaining transgenic plants without the use of an antibiotic selection agent. A total of 32 independent transgenic orchid lines were obtained, out of which 9 transgenic lines (beta-glucuronidase positive) were randomly selected and confirmed by Southern and northern blot analyses. The transgenic orchid plants showed enhanced resistance to E. carotovora, even when the entire plant was challenged with the pathogen. Our results suggest the novel use of the pflp gene as a resistance selection marker in plant genetic engineering strategies. In the future, the use of the pflp gene as a selection marker may facilitate the use of smaller gene constructs due to removal of bulky antibiotic selection and reporter genes. These constructs can then be used to incorporate additional genes of choice.  相似文献   

16.
Selectable markers of bacterial origin such as the neomycin phosphotransferase type II gene, which can confer kanamycin resistance to transgenic plants, represent an invaluable tool for plant engineering. However, since all currently used antibiotic-resistance genes are of bacterial origin, there have been concerns about horizontal gene transfer from transgenic plants back to bacteria, which may result in antibiotic resistance. Here we characterize a plant gene, Atwbc19, the gene that encodes an Arabidopsis thaliana ATP binding cassette (ABC) transporter and confers antibiotic resistance to transgenic plants. The mechanism of resistance is novel, and the levels of resistance achieved are comparable to those attained through expression of bacterial antibiotic-resistance genes in transgenic tobacco using the CaMV 35S promoter. Because ABC transporters are endogenous to plants, the use of Atwbc19 as a selectable marker in transgenic plants may provide a practical alternative to current bacterial marker genes in terms of the risk for horizontal transfer of resistance genes.  相似文献   

17.
Approximately fifty marker genes used for transgenic and transplastomic plant research or crop development have been assessed for efficiency, biosafety, scientific applications and commercialization. Selectable marker genes can be divided into several categories depending on whether they confer positive or negative selection and whether selection is conditional or non-conditional on the presence of external substrates. Positive selectable marker genes are defined as those that promote the growth of transformed tissue whereas negative selectable marker genes result in the death of the transformed tissue. The positive selectable marker genes that are conditional on the use of toxic agents, such as antibiotics, herbicides or drugs were the first to be developed and exploited. More recent developments include positive selectable marker genes that are conditional on non-toxic agents that may be substrates for growth or that induce growth and differentiation of the transformed tissues. Newer strategies include positive selectable marker genes which are not conditional on external substrates but which alter the physiological processes that govern plant development. A valuable companion to the selectable marker genes are the reporter genes, which do not provide a cell with a selective advantage, but which can be used to monitor transgenic events and manually separate transgenic material from non-transformed material. They fall into two categories depending on whether they are conditional or non-conditional on the presence of external substrates. Some reporter genes can be adapted to function as selectable marker genes through the development of novel substrates. Despite the large number of marker genes that exist for plants, only a few marker genes are used for most plant research and crop development. As the production of transgenic plants is labor intensive, expensive and difficult for most species, practical issues govern the choice of selectable marker genes that are used. Many of the genes have specific limitations or have not been sufficiently tested to merit their widespread use. For research, a variety of selection systems are essential as no single selectable marker gene was found to be sufficient for all circumstances. Although, no adverse biosafety effects have been reported for the marker genes that have been adopted for widespread use, biosafety concerns should help direct which markers will be chosen for future crop development. Common sense dictates that marker genes conferring resistance to significant therapeutic antibiotics should not be used. An area of research that is growing rapidly but is still in its infancy is the development of strategies for eliminating selectable marker genes to generate marker-free plants. Among the several technologies described, two have emerged with significant potential. The simplest is the co-transformation of genes of interest with selectable marker genes followed by the segregation of the separate genes through conventional genetics. The more complicated strategy is the use of site-specific recombinases, under the control of inducible promoters, to excise the marker genes and excision machinery from the transgenic plant after selection has been achieved. In this review each of the genes and processes will be examined to assess the alternatives that exist for producing transgenic plants.  相似文献   

18.
Recombinant genes conferring resistance to antibiotics or herbicides are widely used as selectable markers in plant transformation for selecting the primary transgenic events. However, these become redundant once the transgenic plants have been developed and identified. Although, there is no evidence that the selectable marker genes are unsafe for consumers and the environment, it would be desirable if the marker genes can be eliminated from the final transgenic events. The availability of efficient transformation methods can enable the possibility of developing transgenic events that are devoid of the marker gene/s upfront. Taking advantage of the high and consistent transformation potential of peanut, we report a technique for developing its transgenics without the use of any selectable marker gene. Marker-free binary vectors harboring either the phytoene synthase gene from maize (Zmpsy1) or the chitinase gene from rice (Rchit) were constructed and used for Agrobacterium tumefaciens-mediated transformation of peanut. The putative transgenic events growing in vitro were initially identified by PCR and further confirmed for gene integration and expression by dot blots assays, Southern blots, and RT-PCR where they showed a transformation frequency of over 75%. This system is simple, efficient, rapid, and does not require the complex segregation steps and analysis for selection of the transgenic events. This approach for generation of marker-free transgenic plants minimizes the risk of introducing unwanted genetic changes, allows stacking of multiple genes and can be applicable to other plant species that have high shoot regeneration efficiencies.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号