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1.
苹果Ty1-copia类逆转座子家族鉴定及特性分析   总被引:2,自引:1,他引:1  
根据逆转座子RT保守序列设计引物,利用PCR方法从苹果'嘎拉'中克隆了20条RT片段,分析苹果基因组内Ty1-copia类逆转座子家族特性及进化关系.结果显示,20条逆转录酶保守序列表现出了高度的异质性.结合已报道的37条苹果Ty1-copia类逆转座子RT片段,构建了系统发育树,发现家族1、3和4中具有转座活性的逆转座子的可能性较大;序列分析表明,Ty1-copia类逆转座子是苹果基因组内序列重组的热点.用RT序列为探针进行Southern杂交,发现苹果基因组内Ty1-copia类逆转座子拷贝数高、分布广泛.研究结果为进一步分离具有转座活性的苹果Ty1-copia类逆转座子及其人工诱导芽变奠定了基础.  相似文献   

2.
逆转座子(retroposon)是动物基因组中一类可移动的元件,它们首先通过转录产生一个RNA拷贝,然后利用逆转录酶将该RNA拷贝逆转录为c DNA后,再插入到基因组的新位点上。逆转座子在动物基因组中含量极为丰富,种类也很繁多,并随着动物进化在基因组中不断扩增。它们可通过形成插入突变、侧翼序列转导、基因逆转座、DNA断裂与修复、异常重组等机制对动物基因组结构的稳定性产生重要影响,并成为推动基因组进化的重要动力。本文综述了灵长目动物主要的逆转座子类型及其对基因组结构的影响方式,从而为深入理解逆转座子在灵长目动物基因组中的功能及灵长目动物的进化提供参考。  相似文献   

3.
对8个节瓜(Benincasa hispida var.chieh-qua How)品系基因组DNA中的Ty1-copia类逆转座子逆转录酶核苷酸序列进行扩增,并对品系A39FA的29个克隆产物的核苷酸序列及翻译的氨基酸序列的系统进化和同源性进行了分析,还对29条氨基酸序列进行了比对。扩增结果表明:8个节瓜品系的基因组DNA中均包含长度约260 bp的逆转录酶核苷酸片段;从品系A39FA中获得的29条Ty1-copia类逆转座子逆转录酶核苷酸序列(CqRt1至CqRt29)的长度为247~267 bp,同源率为46.2%~98.1%,而它们的氨基酸序列同源率为26.7%~98.8%。序列分析结果表明:节瓜Ty1-copia类逆转座子逆转录酶核苷酸序列中碱基A、T、G和C的数量分别为65~96、47~92、45~74和32~49,所有序列均富含碱基A和T,AT/GC比为1.35~2.33;缺失突变是造成节瓜Ty1-copia类逆转座子逆转录酶核苷酸序列长度差异的主要因素,在序列长度和碱基组成方面的明显差异表明节瓜Ty1-copia类逆转座子逆转录酶核苷酸序列具有高度异质性。翻译后的氨基酸序列中有21条序列存在终止密码子突变、12条序列存在移框突变,表明Ty1-copia类逆转座子是节瓜基因组内序列重组的热点。通过聚类分析可将29个逆转录酶核苷酸序列分为5个家族(Family),分别包括16、4、4、4和1条序列,其中Family 1可能是具有转座活性的逆转座子家族,但存在转录活性的逆转录酶序列仅占全部序列数量的20.69%。将每一家族中的1~2条序列与其他15种植物的Ty1-copia类逆转座子逆转录酶的氨基酸序列进行比对,显示出较高的同源性。研究结果表明:节瓜与其他植物的Ty1-copia类逆转座子可能有相同起源,而且Ty1-copia类逆转座子可在不同类群间横向传递。  相似文献   

4.
在最近完成测序的水稻籼稻和粳稻两个亚种基因组中,各找到564和519个较为可靠的tRNA基因,进一步证实了于2002年发表的基于基因组序列草图的分析结果。修正的摆动假设,即至少需要46种tRNA基因才能译出61种可能的反密码子,在这两个亚种中均准确成立。在这46种tRNA中,有些在籼稻和粳稻中的序列均全同。有18种水稻tRNA与拟南芥中的相应序列全同。在籼稻基因组序列中还发现了384个5S rRNA基因,一批17S和5.8S rRNA基因以及一个25S rRNA基因。这些rRNA基因的不完备是由于它们通常以串接阵列形式存在于异染色质区域,而后者在全基因组霰弹法测序中不易完整测出。在tRNA和rRNA基因序列之间发现了多处互补片段,这将有助于研究它们的进化和相互作用。  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.
可转座基因与植物基因组多样性   总被引:1,自引:0,他引:1  
高等植物基因组含有大量各式各样的串联重复序列和出现频率很高的散布重复序列,如转座子、反转座子、短散布核元件和一些新发现的小型转座子等,它们当中的大多数是具有移动能力的可转座基因.这些可转座基因在漫长的进化过程中对基因和基因组多样性的形成所起的作用,成为近年来分子生物学领域中的重要研究内容.  相似文献   

7.
用水稻(OryzasativaL.)内源反转座子Tos17为探针,经Southern杂交在5种含有野生稻(ZizanialatifoliaGriseb.)(菰)DNA片段的水稻渐渗杂交系中检测到了可遗传DNA甲基化变异。在分析的4种甲基化敏感限制性内切酶中,每种酶切都发生了亲本杂交片段的消失和新片段的出现。发生甲基化变异的位点包括对称和不对称的胞嘧啶碱基,也包括腺嘌呤碱基。序列分析表明,与水稻亲本比较,所研究的5种渐渗杂交系在Tos17的2个重要区域(5'-LTR和RT)均未发生序列变异。但甲基化敏感-序列特异性PCR分析证实,每种渐渗杂交系在这2个区域内均发生了广泛的DNA甲基化变异。而且,在2种渐渗杂交系中发现5'-LTR和RT区域的甲基化变异存在协同性。甲基化变异可稳定遗传给后代。因为已有的研究表明,在这5种渐渗杂交系中异源DNA导入均导致了Tos17的激活和转座,因此可以推测DNA甲基化在调控Tos17活性中可能具有一定作用。但反转座子激活和甲基化变异之间的确切关系尚有待进一步研究。  相似文献   

8.
用水稻(Oryza sativa L.)内源反转座子Tosl7为探针,经Southern杂交在5种含有野生稻(Zizania latifolia Griseb.)(菰)DNA片段的水稻渐渗杂交系中检测到了可遗传DNA甲基化变异。在分析的4种甲基化敏感限制性内切酶中,每种酶切都发生了亲本杂交片段的消失和新片段的出现。发生甲基化变异的位点包括对称和不对称的胞嘧啶碱基,也包括腺嘌呤碱基。序列分析表明,与水稻亲本比较,所研究的5种渐渗杂交系在Tosl7的2个重要区域(5′—LTR和RT)均未发生序列变异。但甲基化敏感—序列特异性PCR分析证实,每种渐渗杂交系在这2个区域内均发生了广泛的DNA甲基化变异。而且,在2种渐渗杂交系中发现5′—LTR和RT区域的甲基化变异存在协同性。甲基化变异可稳定遗传给后代。因为已有的研究表明,在这5种渐渗杂交系中异源DNA导人均导致了Tosl7的激活和转座,因此可以推测DNA甲基化在调控Tosl7活性中可能具有一定作用。但反转座子激活和甲基化变异之间的确切关系尚有待进一步研究。  相似文献   

9.
用水稻(Oryza sativa L.)内源反转座子Tos17为探针,经Southern杂交在5种含有野生稻(Zizania latifolia Griseb)(菰)DNA片段的水稻渐渗杂交系中检测到了可遗传DNA甲基化变异.在分析的4种甲基化敏感限制性内切酶中,每种酶切都发生了亲本杂交片段的消失和新片段的出现.发生甲基化变异的位点包括对称和不对称的胞嘧啶碱基,也包括腺嘌呤碱基.序列分析表明,与水稻亲本比较,所研究的5种渐渗杂交系在Tos17的2个重要区域(5'-LTR和RT)均未发生序列变异.但甲基化敏感-序列特异性PCR分析证实,每种渐渗杂交系在这2个区域内均发生了广泛的DNA甲基化变异.而且,在2种渐渗杂交系中发现5'-LTR和RT区域的甲基化变异存在协同性.甲基化变异可稳定遗传给后代.因为已有的研究表明,在这5种渐渗杂交系中异源DNA导入均导致了Tos17的激活和转座,因此可以推测DNA甲基化在调控Tos17活性中可能具有一定作用.但反转座子激活和甲基化变异之间的确切关系尚有待进一步研究.  相似文献   

10.
在五十年代前,人们一直认为每一基因组的 DNA是固定的,包括位置固定、数目固定。转座因子的发现修正了这一观念。现在人们认识到基因组中的某些成分的位置常常是不固定的,一种生物的基因组大小或基因的数目也并非绝对不变。这种位置不固定的成分乃是转座因子。转座因子(transpos-able element)是细胞中能够改变自身位置的一段 DNA 序列。转座因子改变位置的行为称转座(transposition),转座可以发生在同一染色体的不同位置之间,不同的  相似文献   

11.
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   

12.
Retrotransposons and their remnants often constitute more than 50% of higher plant genomes. Although extensively studied in monocot crops such as maize (Zea mays) and rice (Oryza sativa), the impact of retrotransposons on dicot crop genomes is not well documented. Here, we present an analysis of retrotransposons in soybean (Glycine max). Analysis of approximately 3.7 megabases (Mb) of genomic sequence, including 0.87 Mb of pericentromeric sequence, uncovered 45 intact long terminal repeat (LTR)-retrotransposons. The ratio of intact elements to solo LTRs was 8:1, one of the highest reported to date in plants, suggesting that removal of retrotransposons by homologous recombination between LTRs is occurring more slowly in soybean than in previously characterized plant species. Analysis of paired LTR sequences uncovered a low frequency of deletions relative to base substitutions, indicating that removal of retrotransposon sequences by illegitimate recombination is also operating more slowly. Significantly, we identified three subfamilies of nonautonomous elements that have replicated in the recent past, suggesting that retrotransposition can be catalyzed in trans by autonomous elements elsewhere in the genome. Analysis of 1.6 Mb of sequence from Glycine tomentella, a wild perennial relative of soybean, uncovered 23 intact retroelements, two of which had accumulated no mutations in their LTRs, indicating very recent insertion. A similar pattern was found in 0.94 Mb of sequence from Phaseolus vulgaris (common bean). Thus, autonomous and nonautonomous retrotransposons appear to be both abundant and active in Glycine and Phaseolus. The impact of nonautonomous retrotransposon replication on genome size appears to be much greater than previously appreciated.  相似文献   

13.
We characterized endogenous proviruses in C57BL/6J, DBA/2J, and C3H/HeJ mouse strains with oligonucleotide probes derived from long terminal repeat (LTR) sequences of three classes of nonecotropic murine leukemia virus. The segregation of proviral-host DNA junction fragments was followed in BXH and BXD recombinant inbred (RI) strain sets, and most fragments mapped readily to defined chromosomal regions. Most of the LTR fragments appear to correspond to proviruses mapped previously with oligonucleotide env region probes of the same viral class. At least 22 elements represent new proviral loci, no more than half of which may be solo LTRs, and an additional six may correspond to proviruses identified previously with less specific hybridization probes. Together with proviruses identified previously with env probes, the LTR probe-reactive elements represent the majority of endogenous murine leukemia proviruses in the mouse genome.  相似文献   

14.
We sequenced two maize bacterial artificial chromosome (BAC) clones anchored by the centromere-specific satellite repeat CentC. The two BACs, consisting of approximately 200 kb of cytologically defined centromeric DNA, are composed exclusively of satellite sequences and retrotransposons that can be classified as centromere specific or noncentromere specific on the basis of their distribution in the maize genome. Sequence analysis suggests that the original maize sequences were composed of CentC arrays that were expanded by retrotransposon invasions. Seven centromere-specific retrotransposons of maize (CRM) were found in BAC 16H10. The CRM elements inserted randomly into either CentC monomers or other retrotransposons. Sequence comparisons of the long terminal repeats (LTRs) of individual CRM elements indicated that these elements transposed within the last 1.22 million years. We observed that all of the previously reported centromere-specific retrotransposons in rice and barley, which belong to the same family as the CRM elements, also recently transposed with the oldest element having transposed approximately 3.8 million years ago. Highly conserved sequence motifs were found in the LTRs of the centromere-specific retrotransposons in the grass species, suggesting that the LTRs may be important for the centromere specificity of this retrotransposon family.  相似文献   

15.
G Rotman  A Itin    E Keshet 《Nucleic acids research》1984,12(5):2273-2282
VL30 genetic elements constitute a murine multicopy gene family that is retrovirus-like, despite the lack of sequence homology with any known retrovirus. Over one hundred copies of VL30 units are dispersed throughout the mouse genome. We report here that the mouse genome also contains 'solo' VL30 long terminal repeats (LTRs). These are structures which contain the LTR detached from the rest of the VL30 sequences. The isolation of solo LTRs from a mouse embryonic gene library with the aid of sub-genomic VL30 probes is described. Direct DNA sequencing established that the solo LTR unit is grossly similar to a standard VL30 LTR and that the LTR is flanked by a 4-base pair duplication. The analogy to the occurrence of solitary LTR units of transposable elements is discussed.  相似文献   

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Background and Aims

Peanut (Arachis hypogaea) is an allotetraploid (AABB-type genome) of recent origin, with a genome of about 2·8 Gb and a high repetitive content. This study reports an analysis of the repetitive component of the peanut A genome using bacterial artificial chromosome (BAC) clones from A. duranensis, the most probable A genome donor, and the probable consequences of the activity of these elements since the divergence of the peanut A and B genomes.

Methods

The repetitive content of the A genome was analysed by using A. duranensis BAC clones as probes for fluorescence in situ hybridization (BAC-FISH), and by sequencing and characterization of 12 genomic regions. For the analysis of the evolutionary dynamics, two A genome regions are compared with their B genome homeologues.

Key Results

BAC-FISH using 27 A. duranensis BAC clones as probes gave dispersed and repetitive DNA characteristic signals, predominantly in interstitial regions of the peanut A chromosomes. The sequences of 14 BAC clones showed complete and truncated copies of ten abundant long terminal repeat (LTR) retrotransposons, characterized here. Almost all dateable transposition events occurred <3·5 million years ago, the estimated date of the divergence of A and B genomes. The most abundant retrotransposon is Feral, apparently parasitic on the retrotransposon FIDEL, followed by Pipa, also non-autonomous and probably parasitic on a retrotransposon we named Pipoka. The comparison of the A and B genome homeologous regions showed conserved segments of high sequence identity, punctuated by predominantly indel regions without significant similarity.

Conclusions

A substantial proportion of the highly repetitive component of the peanut A genome appears to be accounted for by relatively few LTR retrotransposons and their truncated copies or solo LTRs. The most abundant of the retrotransposons are non-autonomous. The activity of these retrotransposons has been a very significant driver of genome evolution since the evolutionary divergence of the A and B genomes.  相似文献   

19.
Sequence organization of barley centromeres   总被引:14,自引:1,他引:13       下载免费PDF全文
By sequencing, fingerprinting and in situ hybridization of a centromere-specific large insert clone (BAC 7), the sequence organization of centromeric DNA of barley could be elucidated. Within 23 kb, three copies of the Ty3/gypsy-like retroelement cereba were present. Two elements of ~7 kb, arranged in tandem, include long terminal repeats (LTRs) (~1 kb) similar to the rice centromeric retrotransposon RIRE 7 and to the cereal centromeric sequence family, the primer binding site, the complete polygene flanked by untranslated regions, as well as a polypurine tract 5′ of the downstream LTR. The high density (~200 elements/centromere) and completeness of cereba elements and the absence of internally deleted elements and solo LTRs from the BAC 7 insert represent unique features of the barley centromeres as compared to those of other cereals. Obviously, the conserved cereba elements together with barley-specific G+C-rich satellite sequences constitute the major components of centromeric DNA in this species.  相似文献   

20.
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