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1.
转座子是真核生物基因组的重要组成成分。为了研究家蚕Bombyx mori长末端重复序列 (long terminal repeat, LTR)逆转录转座子的分类及进化, 本研究采用de novo预测和同源性搜索相结合的方法, 在家蚕基因组中共鉴定出了38个LTR逆转录转座子家族, 序列长度占整个基因组的0.64%, 远小于先前预测的11.8%, 其中有6个家族为本研究的新发现。38个家族中, 26个家族有表达序列标签 (expression sequence tag, EST)证据, 表明这些家族具有潜在的活性。对有EST证据的6个家族和没有EST证据的5个家族用RT-PCR进行了组织表达谱实验, 结果表明这11个家族在一些组织中有表达, 这进一步证实了这些家族具有转录活性, 基于此我们推测家蚕中大部分的LTR逆转录转座子家族很可能具有潜在活性。对转座子的插入时间进行估计, 结果表明绝大部分元件都是最近1百万年内插入到家蚕基因组中的。我们还比较了黑腹果蝇Drosophila melanogaster、 冈比亚按蚊Anopheles gambiae和家蚕B. mori中Ty3/Gypsy超家族分支的差异, 结果表明不同枝在不同昆虫中有着不同的扩张。家蚕中LTR逆转录转座子的鉴定和系统分析有助于我们理解逆转录转座子在昆虫进化中的作用。  相似文献   

2.
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   

3.
斑马鱼转座子时空表达特性   总被引:1,自引:0,他引:1       下载免费PDF全文
转座子是基因组中可移动和扩展的元件,能够插入新的位点,影响基因组和基因的结构和功能,是基因组进化的内在驱动。为探讨转座子的时空表达特性,首先通过生物信息学方法鉴定出斑马鱼9个疑似活性转座子,包括DNA转座子Tc1家族(Tc-a、Tc-b、Tc-c、Tc-d、Tc-e)、反转录转座子ERV家族(ERV-1、ERV-2)和LINE家族(L1-323、L1-21),然后采用实时荧光定量PCR法检测上述转座子在斑马鱼早期胚胎发育7个阶段及成鱼各主要脏器的表达活性。结果表明:Tc1家族在0.75、2.00、3.00 h各阶段无转录活性,在6.00、15.00、24.00、48.00 h各阶段各转座子均有较高转录活性;反转录转座子转录活性最早出现于3 h,最晚出现于15 h,且随着发育时间的延长,转录活性显著增强。9种转座子在成鱼心脏、大脑、肌肉、肝脏、睾丸和卵巢均有表达,且大脑和心脏中的表达水平显著高于其他组织,睾丸表达水平最低。分析表明转座子的表达具有时间和组织的特异性,可能参与斑马鱼胚胎和组织器官发育调控,尤其是大脑和心脏发育。这些结果为进一步研究转座子是否具有基因表达调控功能提供重要参考。  相似文献   

4.
在水稻第四号染色体的长臂上鉴定了一个结构完整的Ty3型逆转录转座子RIRE10。RIRE10两LTR间的中间区域在gag pol的上游还包含另一个开放阅读框。通过RT PCR与Northern印迹杂交检测到来自LTR区的转录产物 ;根据点杂交结果 ,鉴定出包含中间区域的RIRE10成员的个数以及LTR区的拷贝数。除了 6 5个完整的逆转录转座子所具备的两个LTR外 ,水稻基因组还含有近 90 0个RIRE10的solo LTR。LTR区的转录以及导致solo LTR产生的同源重组可能影响了RIRE10成员在水稻基因组中的转座活性  相似文献   

5.
类Tc1转座子研究进展   总被引:1,自引:0,他引:1       下载免费PDF全文
转座子广泛存在于各种生物基因组中,能在染色体不同位点间转座,并在基因组中大量扩增.转座子的活动能引起生物基因组或基因的重组和变异,加速生物多样性及其进化速率,被视为生物基因组进化的内在驱动.转座子分2类:反转座子和DNA转座子.类Tc1转座子是DNA转座子超级家族中种类最多、分布最广的一类.本文简要概述了类Tc1转座子的结构特征,及其扩增、转座和迸发的机制,并展望了其应用和研究方向.  相似文献   

6.
刘静  杜建厂 《遗传》2013,35(9):1117-1124
LTR-反转座子是植物基因组的主要组成部分。它们在结构上非常保守, 通常含有gag和pol两个基因, 是完成其转座过程所必需的。在前期研究中, 本项目组对大豆基因组SARE转座子家族进行了详细的分析。结果表明, 该家族的拷贝中还存在第3个基因——Orf1。文章借助生物信息学的研究方法, 对33个已测序的基因组进行了全基因组注释。结果发现, 在7个植物基因组(桉树、杨树、棉花、大豆、百脉根、亚麻和苜蓿)中, 部分LTR-反转座子元件在gag基因的上游存在约1~2 kb未知的Orf1基因或基因片段。这类转座子多数在0~3百万年内插入到其所在的寄主基因组中, 但它们在不同物种中的分子结构、发生的频率、扩增的强度和活跃的时期等方面差异较大。系统进化树分析表明, 这类具有特殊结构的转座子较整齐的聚类到双子叶植物的一个进化分支上, 表明它们可能是部分双子叶植物在进化过程中所产生的。不同物种间的相对保守性、大量拷贝的转录活性以及可能存在的多个功能结构域, 提示Orf1基因可能具有一定的生物学功能。  相似文献   

7.
蒋爽  滕元文  宗宇  蔡丹英 《西北植物学报》2013,33(11):2354-2360
反转录转座子是真核生物基因组中普遍存在的一类可移动的遗传因子,它们以RNA为媒介,在基因组中不断自我复制。在高等植物中,反转录转座子是基因组的重要成分之一。反转录转座子可以分为5大类型,其中以长末端重复(LTR)类型报道较多。LTR类型由于其首尾具有长末端重复序列,内部含有PBS、PPT、GAG和POL开放阅读框、TSD等结构,可以采用生物信息学软件进行预测。LTR反转录转座子的活性受到自身甲基化和环境因素的影响,DNA甲基化抑制反转录转座子转座,而外界环境的刺激能够激活转座子,从而影响插入位点周边基因的表达。同时由于LTR反转录转座子在植物中普遍存在,丰富的拷贝数以及多态性为新型分子标记(RBIP、SSAP、IRAP、REMAP)的开发提供了良好的素材。该文对近年来国内外有关植物反转录转座子的类型、结构特征、 LTR反转录转座子的活性及其影响因素、 LTR反转录转座子的预测以及标记开发等方面的研究进展进行综述。  相似文献   

8.
长末端重复序列(Long terminal repeat,LTR)反转录转座子是真核生物基因组中普遍存在的一类可移动的DNA序列,它们以RNA为媒介,通过"复制粘贴"机制在基因组中不断自我复制。在高等植物中,许多活性的LTR反转录转座子已被详尽研究并应用于分子标记技术、基因标签、插入型突变及基因功能等分析。本文对植物活性LTR反转录转座子进行全面的调查,并对其结构、拷贝数和分布以及转座特性进行系统的归纳,分析了植物活性LTR反转录转座子的gag(种属特异抗原)和pol(聚合酶)序列特征,以及LTR序列中顺式调控元件的分布。研究发现自主有活性的LTR反转录转座子必须具备LTR区域以及编码Gag、Pr、Int、Rt和Rh蛋白的基因区。其中两端LTR区域具有高度同源性且富含顺式调控元件;Rt蛋白必备RVT结构域;Rh蛋白必备RNase_H1_RT结构域。这些结果为后续植物活性LTR反转录转座子的鉴定和功能分析奠定了重要基础。  相似文献   

9.
10.
棉花是重要的纤维作物,在四个栽培棉种中,海岛棉纤维品质最优,了解LTR反转录转座子的数量与分布,可以促进海岛棉基因组的研究。通过综合不同方法挖掘海岛棉基因组中的LTR反转录转座子序列,并进行家族归类和数据分析。结果表明海岛棉A亚组和D亚组共有的LTR反转录转座子家族占全部家族的95%,LTR反转录转座子的Copia超家族和Gypsy超家族的分布特征有明显的不同,但相同超家族在相同亚组染色体上则表现出相似的特征。LTR反转录转座子周边基因的GO注释主要富集在结合活性、催化活性和代谢过程等方面。研究结果揭示了LTR反转录转座子在海岛棉染色体上的分布特征及其周边基因的功能富集。  相似文献   

11.
The cultivated Brassica species are the group of crops most closely related to Arabidopsis thaliana (Arabidopsis). They represent models for the application in crops of genomic information gained in Arabidopsis and provide an opportunity for the investigation of polyploid genome formation and evolution. The scientific literature contains contradictory evidence for the dynamics of the evolution of polyploid genomes. We aimed at overcoming the inherent complexity of Brassica genomes and clarify the effects of polyploidy on the evolution of genome microstructure in specific segments of the genome. To do this, we have constructed bacterial artificial chromosome (BAC) libraries from genomic DNA of B. rapa subspecies trilocularis (JBr) and B. napus var Tapidor (JBnB) to supplement an existing BAC library from B. oleracea. These allowed us to analyse both recent polyploidization (under 10,000 years in B. napus) and more ancient polyploidization events (ca. 20 Myr for B. rapa and B. oleracea relative to Arabidopsis), with an analysis of the events occurring on an intermediate time scale (over the ca. 4 Myr since the divergence of the B. rapa and B. oleracea lineages). Using the Arabidopsis genome sequence and clones from the JBr library, we have analysed aspects of gene conservation and microsynteny between six regions of the genome of B. rapa with the homoeologous regions of the genomes of B. oleracea and Arabidopsis. Extensive divergence of gene content was observed between the B. rapa paralogous segments and their homoeologous segments within the genome of Arabidopsis. A pattern of interspersed gene loss was identified that is similar, but not identical, to that observed in B. oleracea. The conserved genes show highly conserved collinearity with their orthologues across genomes, but a small number of species-specific rearrangements were identified. Thus the evolution of genome microstructure is an ongoing process. Brassica napus is a recently formed polyploid resulting from the hybridization of B. rapa (containing the Brassica A genome) and B. oleracea (containing the Brassica C genome). Using clones from the JBnB library, we have analysed the microstructure of the corresponding segments of the B. napus genome. The results show that there has been little or no change to the microstructure of the analysed segments of the Brassica A and C genomes as a consequence of the hybridization event forming natural B. napus. The observations indicate that, upon polyploid formation, these segments of the genome did not undergo a burst of evolution discernible at the scale of microstructure.  相似文献   

12.
13.
In this study, we conducted the activity, diversity, and density analysis of transposable elements (TEs) across five avian genomes (budgerigar, chicken, turkey, medium ground finch, and zebra finch) to explore the potential reason of small genome sizes of birds. We found that these avian genomes exhibited low density of TEs by about 10% of genome coverages and low diversity of TEs with the TE landscapes dominated by CR1 and ERV elements, and contrasting proliferation dynamics both between TE types and between species were observed across the five avian genomes. Phylogenetic analysis revealed that CR1 clade was more diverse in the family structure compared with R2 clade in birds; avian ERVs were classified into four clades (alpha, beta, gamma, and ERV-L) and belonged to three classes of ERV with an uneven distributed in these lineages. The activities of DNA and SINE TEs were very low in the evolution history of avian genomes; most LINEs and LTRs were ancient copies with a substantial decrease of activity in recent, with only LTRs and LINEs in chicken and zebra finch exhibiting weak activity in very recent, and very few TEs were intact; however, the recent activity may be underestimated due to the sequencing/assembly technologies in some species. Overall, this study demonstrates low diversity, activity, and density of TEs in the five avian species; highlights the differences of TEs in these lineages; and suggests that the current and recent activity of TEs in avian genomes is very limited, which may be one of the reasons of small genome sizes in birds.  相似文献   

14.
The aim of this work was to find C genome specific repetitive DNA sequences able to differentiate the homeologous A (B. rapa) and C (B. oleracea) genomes of Brassica, in order to assist in the physical identification of B. napus chromosomes. A repetitive sequence (pBo1.6) highly enriched in the C genome of Brassica was cloned from B. oleracea and its chromosomal organisation was investigated through fluorescent in situ hybridisation (FISH) in B. oleracea (2n = 18, CC), B. rapa (2n = 20, AA) and B. napus (2n = 38, AACC) genomes. The sequence was 203 bp long with a GC content of 48.3%. It showed up to 89% sequence identity with telomere-like DNA from many plant species. This repeat was clearly underrepresented in the A genome and the in situ hybridisation showed its B. oleracea specificity at the chromosomal level. Sequence pBo1.6 was localised at interstitial and/or telomeric/subtelomeric regions of all chromosomes from B. oleracea, whereas in B. rapa no signal was detected in most of the cells. In B. napus 18 to 24 chromosomes hybridised with pBo1.6. The discovery of a sequence highly enriched in the C genome of Brassica opens the opportunity for detailed studies regarding the subsequent evolution of DNA sequences in polyploid genomes. Moreover, pBo1.6 may be useful for the determination of the chromosomal location of transgenic DNA in genetically modified oilseed rape.  相似文献   

15.
R J Snowdon  W K?hler  A K?hler 《Génome》1997,40(4):582-587
Using fluorescence in situ hybridization, we located ribosomal DNA loci on prometaphase chromosomes of the diploid species Brassica rapa and Brassica oleracea and their amphidiploid Brassica napus. Based on comparisons of chromosome morphology and hybridization patterns, we characterized the individual B. napus rDNA loci according to their presumed origins in the Brassica A and C genomes. As reported in other studies, the sum of rDNA loci observed on B. rapa (AA genome) and B. oleracea (CC genome) chromosomes was one greater than the total number of loci seen in their amphidiploid B. napus (AACC). Evidence is presented that this reduction in B. napus rDNA locus number results from the loss of the smallest A genome rDNA site in the amphidiploid.  相似文献   

16.
17.
The diploid species Brassica rapa(genome AA)and B.oleracea(genome CC)were compared by fuU-seale proteome analyses of seedling.A total of 28.2% of the proteins was common to both species,indicating the existence of a basal or ubiquitous proteome.How-ever,a number of discriminating proteins(32.0%)and specific proteins(39.8%)of the Brassica A and C genomes,respectively,were identified,which could represent potentially species-specific functions.Based on these A or C genome-specific proteins,a number of PCR-based markers to distinguish B.rapa and B.oleracea species were also developed.  相似文献   

18.
Brassica rapa ssp. pekinensis (Chinese cabbage) is an economically important crop and a model plant for studies on polyploidization and phenotypic evolution. To gain an insight into the structure of the B. rapa genome we analyzed 12,017 BAC-end sequences for the presence of transposable elements (TEs), SSRs, centromeric satellite repeats and genes, and similarity to the closely related genome of Arabidopsis thaliana. TEs were estimated to occupy 14% of the genome, with 12.3% of the genome represented by retrotransposons. It was estimated that the B. rapa genome contains 43,000 genes, 1.6 times greater than the genome of A. thaliana. A number of centromeric satellite sequences, representing variations of a 176-bp consensus sequence, were identified. This sequence has undergone rapid evolution within the B. rapa genome and has diverged among the related species of Brassicaceae. A study of SSRs demonstrated a non-random distribution with a greater abundance within predicted intergenic regions. Our results provide an initial characterization of the genome of B. rapa and provide the basis for detailed analysis through whole-genome sequencing.  相似文献   

19.
20.
Brassica napus (AACC genome) is an important oilseed crop that was formed by the fusion of the diploids B. rapa (AA) and B. oleracea (CC). The complete genomic sequence of the Brassica A genome will be available soon from the B. rapa genome sequencing project, but it is not clear how informative the A genome sequence in B. rapa (A(r)) will be for predicting the structure and function of the A subgenome in the allotetraploid Brassica species B. napus (A(n)). In this paper, we report the results of structural and functional comparative mapping between the A subgenomes of B. napus and B. rapa based on genetic maps that were anchored with bacterial artificial chromosomes (BACs)-sequence of B. rapa. We identified segmental conservation that represented by syntenic blocks in over one third of the A genome; meanwhile, comparative mapping of quantitative trait loci for seed quality traits identified a dozen homologous regions with conserved function in the A genome of the two species. However, several genomic rearrangement events, such as inversions, intra- and inter-chromosomal translocations, were also observed, covering totally at least 5% of the A genome, between allotetraploid B. napus and diploid B. rapa. Based on these results, the A genomes of B. rapa and B. napus are mostly functionally conserved, but caution will be necessary in applying the full sequence data from B. rapa to the B. napus as a result of genomic rearrangements in the A genome between the two species.  相似文献   

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