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1.
通过生物信息学手段对9种硬骨鱼转座组进行注释。结果表明9种硬骨鱼类转座组大小和构成差异显著,其转座组含量从高到低分别为斑马鱼、矛尾鱼、青鳉鱼、罗非鱼、花斑剑尾鱼、大西洋鳕鱼、三刺鱼、金娃娃和红鳍东方鲀,转座子含量和基因组大小呈正相关。DNA转座子在硬骨鱼类中具有多样性高和含量差异大的特点(0.50%–38.37%),是硬骨鱼类转座组差异的主要决定因素,其中h AT和Tc/Mariner超家族是硬骨鱼类主要的DNA转座子。RNA转座子在硬骨鱼类中也具有多样性高的特点,其中LINE转座子占硬骨鱼类基因组的0.53%–5.75%,共检测到14个超家族分布,其中L1、L2、RTE和Rex转座子扩增较为明显,LTR转座子除了在斑马鱼和三刺鱼中含量达到5.58%和2.51%,在大多硬骨鱼类基因组中的含量低于2%,在硬骨鱼类中共检测到6个LTR转座子(Copia、DIRS、ERV、Gypsy、Ngaro和Pao)超家族分布,其中扩增最为明显的是Gypsy。而SINE转座子在硬骨鱼类中扩增最弱,仅在斑马鱼和矛尾鱼中分别达到3.28%和5.64%,在其他7个物种中低于1%。SINE中t RNA、5S和MIR三个超家族在部分硬骨鱼类中有一定程度扩增。本研究表明硬骨鱼类转座组具有多样性丰富、差异大的特点,转座组差异与硬骨鱼基因组大小有很强的相关性,转座组是决定硬骨鱼基因组大小的重要因素。  相似文献   

2.
植物反转录转座子及其在功能基因组学中的应用   总被引:6,自引:0,他引:6  
高等植物中的反转录转座子是构成植物基因组的重要成分之一.它分病毒家族和非病毒家族两类,病毒家族包括反转录病毒和类似于反转录病毒的非病毒转座子,病毒家族中的反转录转座子可再细分为Ty3-gypsy类和Ty1-copia类;非病毒家族可细分为LINE类和SINE类.正常情况下大部分反转录转座子不具有活性,某些生物或非生物因素胁迫可激活部分反转录转座子转座.反转录转座子自身编码反转录酶进行转录,以"拷贝-粘贴"的转座模式导致基因组扩增和进化.具有活性的反转录转座子通过插入产生新的突变,可作为一种基因标签技术,应用于功能基因组学研究,并成为研究植物基因功能和表达的重要技术平台.本文综述了近几年来在植物反转录转座子方面的研究进展,主要包括植物反转录转座子的结构、特征、活性及其对基因组的影响和它们在功能基因组学中的应用.  相似文献   

3.
LTR-反转录转座子是真核基因组重要的组成部分,能通过RNA中间体完成在基因组上的转座。小麦种子受低能氮离子束注入后能促进其反转录转座子的转录,经不同剂量的氮离子束注入的种子发芽24h和48h后,其中的copia-反转录转座子的转录都有不同程度的提高,最高可达到对照的40倍。用基于反转录转座子扩增多态性和反转录转座子微卫星扩增多态性2种分子标记技术扩增经低能氮离子注入后的小麦DNA,指纹图谱显示出了一定的多态性,这说明低能氮离子束激活了小麦中反转录转座子的转座活性。转座子转录活性的增强可调节其邻近基因的表达和mRNA的拼接,反转录转座子插入到基因组上新的位点后,使基因组上的基因发生了重排,这种重排可能表现为植物表型的改变。因此,推测反转录转座子的转录活性提高和转座激活是产生低能离子束注入生物效应的重要原因之一。  相似文献   

4.
彭珍  徐珍珍  刘静  杜建厂 《西北植物学报》2015,35(12):2558-2566
作为重复序列的一种主要类型,转座子在高等植物基因组中具有相当丰富的DNA含量,在改变基因结构、调节基因表达、影响基因组进化,以及创造新基因的过程中扮演着重要的角色。Helitron转座子是DNA转座子的一种,在转座过程中经常捕获基因或基因片段,以及插入到基因附近或基因内部,因此在改变基因组构成、影响基因组的进化过程以及改变基因型和表型等方面起着重要作用。该文对国内外近年来有关植物基因组中helitron转座子的结构特征、鉴定和分类方法、基因组中的含量和在染色体上的分布,以及转座扩增和基因片段的捕获等方面的研究进展进行了综述,并对helitron转座子研究过程中存在的问题进行了讨论,对今后helitron相关的研究进行了展望。  相似文献   

5.
piggyBac转座子及其在转基因昆虫中的应用   总被引:1,自引:0,他引:1  
piggyBac是一种从粉纹夜蛾Trichoplusiani.中分离到的、具有TTAA插入位点特异性的DNA转座子。piggyBac可在昆虫基因组中准确切离,转化频率较高,并且不受宿主因子的限制,是目前转基因昆虫研究中应用最广的转座子载体。近年来的研究发现,piggyBac类转座子广泛分布于昆虫和其他生物基因组中。文章从piggyBac的结构、转座特性、在转基因昆虫中的应用以及piggyBac类转座子的分布等几个方面综述了piggyBac的研究进展。  相似文献   

6.
Tol1和Tol2是在青鳉基因组中发现的具有自主活性的DNA转座子,而Tol1转座子的自主活性是新近才发现的,因此对它的报道较少。较之Tol2,Tol1可以携带更大片段的DNA进行转座,且Tol1的转座不受转座酶"过量表达抑制"的影响。研究已证实,Tol1转座子在秀丽线虫、斑马鱼、爪蟾和人等多种生物中具有转座活性。因此,在动物转基因和基因功能研究等方面有重要的应用前景。从Tol1转座子的结构特征、转座机制和作为基因转移载体的优点,以及应用研究等方面进行了简要的综述。  相似文献   

7.
转座子在脊椎动物中的应用远落后于在其他生物系统中的应用。“睡美人”转座子(sleeping beauty transposon)是Tc1/mariner转座因子超家族中的一员,是存在于鲑鱼基因组中的1个已经失活的转座子。1997年,Ivics等将这个转座子进行重建并恢复了它的活性。短短几年内的有关研究表明,“睡美人”转座子是目前在脊椎动物中转座活性最高的转座子。结合该转座子系统逐步显示出的广阔应用前景,本文重点论述了其结构、转座机制及应用,并提出了应用“睡美人”转座子系统须注意的问题。  相似文献   

8.
刘启鹏  安妮  岑山  李晓宇 《遗传》2018,40(6):445-450
转座子是一类可以在染色体上或不同染色体间自由移动的DNA。在高等生物中,处于活跃状态的转座子多为通过RNA中间体进行转座的逆转录转座子。由于逆转录转座子在细胞基因组中占有很高的比例,它的频繁转座能引起细胞基因组结构和功能的改变,导致癌症等严重基因疾病的发生,因此宿主细胞在长期的进化中形成了多种自我保护机制用以控制逆转录转座子活性。属于非编码小RNA的piRNA以其独特的机制在转录及转录后水平控制逆转录转座子RNA中间体的产生,抑制了逆转录转座过程的发生。本文总结了近年来piRNA控制转座子转座相关分子机制的研究进展,以期为转座子及基因调控方面的研究工作提供一些参考。  相似文献   

9.
Mutator转座子及MULE在植物基因与基因组进化中的作用   总被引:2,自引:0,他引:2  
Mutator(Mu)转座子是植物中已发现的转座最活跃的转座子,其高的转座频率及趋向于单拷贝功能基因转座的特性,使该转座子成为玉米功能基因克隆的主要方法.Mu转座子的同源类似因子广泛存在于被子植物基因组中,而且同一基因组中往往具有多种变异类型.它不仅具有其他DNA转座子在基因和基因组进化中的普遍作用,而且具有能够承载基因组内功能基因和基因片段的载体功能,这种载体Mu转座子(Pack-MuLEs)能够在基因组内移动众多的基因片段,从而对基因和基因组进化产生作用.Mu转座子的同源序列发生在水稻与狗尾草之间的水平转移提供了高等植物核基因水平转移的首个例证.对Mu转座子的了解促进了我们对动态基因组概念的认识.文章对Mutator转座子的发现、转座特征、基因标签应用等的研究进展进行了综述,对Mu转座子家族的同源序列进行了分类,讨论了该转座子在基因组进化中的作用,分析了应加强研究的问题.  相似文献   

10.
转座子是广泛存在于高等植物基因组中的可移动的DNA分子。文中主要介绍高等植物的各种转座子超家族,包括LTR类反转录转座子、hAT、CACTA因子、Mutator和MULEs、Tc1/mariner、微小反向重复转座子MITEs等;另外还阐述了植物转座子标签体系和筛选方法,以及转座子在生物多样性与遗传连锁分析、植物基因组学研究与植物性状改良方面中的应用。  相似文献   

11.
Plant transposable elements: where genetics meets genomics   总被引:2,自引:0,他引:2  
Transposable elements are the single largest component of the genetic material of most eukaryotes. The recent availability of large quantities of genomic sequence has led to a shift from the genetic characterization of single elements to genome-wide analysis of enormous transposable-element populations. Nowhere is this shift more evident than in plants, in which transposable elements were first discovered and where they are still actively reshaping genomes.  相似文献   

12.
13.
Transposable elements are mobile DNA sequences that integrate into host genomes using diverse mechanisms with varying degrees of target site specificity. While the target site preferences of some engineered transposable elements are well studied, the natural target preferences of most transposable elements are poorly characterized. Using population genomic resequencing data from 166 strains of Drosophila melanogaster, we identified over 8,000 new insertion sites not present in the reference genome sequence that we used to decode the natural target preferences of 22 families of transposable element in this species. We found that terminal inverted repeat transposon and long terminal repeat retrotransposon families present clade-specific target site duplications and target site sequence motifs. Additionally, we found that the sequence motifs at transposable element target sites are always palindromes that extend beyond the target site duplication. Our results demonstrate the utility of population genomics data for high-throughput inference of transposable element targeting preferences in the wild and establish general rules for terminal inverted repeat transposon and long terminal repeat retrotransposon target site selection in eukaryotic genomes.  相似文献   

14.
Transposable element contributions to plant gene and genome evolution   总被引:34,自引:0,他引:34  
Transposable elements were first discovered in plants because they can have tremendous effects on genome structure and gene function. Although only a few or no elements may be active within a genome at any time in any individual, the genomic alterations they cause can have major outcomes for a species. All major element types appear to be present in all plant species, but their quantitative and qualitative contributions are enormously variable even between closely related lineages. In some large-genome plants, mobile DNAs make up the majority of the nuclear genome. They can rearrange genomes and alter individual gene structure and regulation through any of the activities they promote: transposition, insertion, excision, chromosome breakage, and ectopic recombination. Many genes may have been assembled or amplified through the action of transposable elements, and it is likely that most plant genes contain legacies of multiple transposable element insertions into promoters. Because chromosomal rearrangements can lead to speciating infertility in heterozygous progeny, transposable elements may be responsible for the rate at which such incompatibility is generated in separated populations. For these reasons, understanding plant gene and genome evolution is only possible if we comprehend the contributions of transposable elements.  相似文献   

15.
Le Rouzic A  Dupas S  Capy P 《Gene》2007,390(1-2):214-220
Transposable elements are known to be “selfish DNA” sequences able to spread and be maintained in all genomes analyzed so far. Their evolution depends on the interaction they have with the other components of the genome, including genes and other transposable elements. These relationships are complex and have often been compared to those of species living and competing in an ecosystem. The aim of this current work is a proposition to fill the conceptual gap existing between genome biology and ecology, assuming that genomic components, such as transposable elements families, can be compared to species interacting in an ecosystem. Using this framework, some of the main models defined in the population genetics of transposable elements can then been reformulated, and some new kinds of realistic relationships, such as symbiosis between different genomic components, can then be modelled and explored.  相似文献   

16.
17.

Background  

Transposable elements are abundant in the genomes of many filamentous fungi, and have been implicated as major contributors to genome rearrangements and as sources of genetic variation. Analyses of fungal genomes have also revealed that transposable elements are largely confined to distinct clusters within the genome. Their impact on fungal genome evolution is not well understood. Using the recently available genome sequence of the plant pathogenic fungus Magnaporthe oryzae, combined with additional bacterial artificial chromosome clone sequences, we performed a detailed analysis of the distribution of transposable elements, syntenic blocks, and other features of chromosome 7.  相似文献   

18.
Transposable elements comprise a major fraction of eukaryotic genomes. They are studied both because of their intrinsic biological interest and because they can be exploited as valuable research tools. Many interesting papers dealing with various aspects of the biology of these elements have been published during the past year and a number of new elements have been reported. Four areas in which particularly valuable contributions have been made are the mechanisms of transposition, the regulation of transposition, the use of transposable elements as research tools, and the biological function of transposable elements.  相似文献   

19.

Background

Transposable elements are found in the genomes of nearly all eukaryotes. The recent completion of the Release 3 euchromatic genomic sequence of Drosophila melanogaster by the Berkeley Drosophila Genome Project has provided precise sequence for the repetitive elements in the Drosophila euchromatin. We have used this genomic sequence to describe the euchromatic transposable elements in the sequenced strain of this species.

Results

We identified 85 known and eight novel families of transposable element varying in copy number from one to 146. A total of 1,572 full and partial transposable elements were identified, comprising 3.86% of the sequence. More than two-thirds of the transposable elements are partial. The density of transposable elements increases an average of 4.7 times in the centromere-proximal regions of each of the major chromosome arms. We found that transposable elements are preferentially found outside genes; only 436 of 1,572 transposable elements are contained within the 61.4 Mb of sequence that is annotated as being transcribed. A large proportion of transposable elements is found nested within other elements of the same or different classes. Lastly, an analysis of structural variation from different families reveals distinct patterns of deletion for elements belonging to different classes.

Conclusions

This analysis represents an initial characterization of the transposable elements in the Release 3 euchromatic genomic sequence of D. melanogaster for which comparison to the transposable elements of other organisms can begin to be made. These data have been made available on the Berkeley Drosophila Genome Project website for future analyses.  相似文献   

20.
Le Rouzic A  Capy P 《Genetics》2006,174(2):785-793
Transposable elements are one of the major components of genomes. Some copies are fully efficient; i.e., they are able to produce the proteins needed for their own transposition, and they can move and duplicate into the genome. Other copies are mutated. They may have lost their moving ability, their coding capacity, or both, thus becoming pseudogenes slowly eliminated from the genome through deletions and natural selection. Little is known about the dynamics of such mutant elements, particularly concerning their interactions with autonomous copies. To get a better understanding of the transposable elements' evolution after their initial invasion, we have designed a population genetics model of transposable elements dynamics including mutants or nonfunctional sequences. We have particularly focused on the case where these sequences are nonautonomous elements, known to be able to use the transposition machinery produced by the autonomous ones. The results show that such copies generally prevent the system from achieving a stable transposition-selection equilibrium and that nonautonomous elements can invade the system at the expense of autonomous ones. The resulting dynamics are mainly cyclic, which highlights the similarities existing between genomic selfish DNA sequences and host-parasite systems.  相似文献   

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