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1.
Promoter fragments of deoxyribonuclease II (DNAse II) and calcium-modulating cyclophilin ligand (CAML) associated with Alu family repeats have been inserted into luciferase reporter vectors. The constructs were introduced into A549 and HEK293 cell lines by transient transfection. Transfected cells were lysed to analyze luciferase activities. It has been shown that Alu repeats inserted into constructs influence the luciferase expression. Therefore, Alu copies associated with cis-regulatory modules in protein-coding genes have biological activity.  相似文献   

2.
The contextual analysis of nucleotide sequences of 22 Alu repeats arrangement regions in the human genome has been carried out and some of their peculiarities have been revealed. In particular, the occurrence of marked and statistical non-random homology between the repeats and the regions of their integration has been shown. A mechanism of choosing the Alu repeats insertion regions in the genome has been suggested taking into account these peculiarities. Using a sample of the 80 human Alu repeats sequences peculiarities of these repeats location within the genome has been investigated. A tendency to the formation of Alu repeats clusters in various regions of the genome was revealed. A range of possible mechanisms on such Alu clusters emergence is considered. On the basis of the data obtained an "attraction" mechanism, according to which integration of Alu repeats into the definite region of the genome increases the insertion probability of other Alu repeats into the same region, are proposed.  相似文献   

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A mathematical model of evolutionary dynamics of Alu repeats' number in the human genome has been worked out. The model permitted us to observe the dynamics of propagation of Alu repeats within the genome and to evaluate such important parameters of the process mentioned as the rates of transposition (insertion of new copies into the genome) and excision of repeats. The peculiarities of the control of Alu repeats' number in the genome have been discussed, based on the data obtained.  相似文献   

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The human albumin-alpha-fetoprotein genomic domain contains 13 repetitive DNA elements randomly distributed throughout the symmetrical structures of these genes. These repeated sequences are located at different sites within the two genes. The human albumin gene contains five Alu elements within four of its 14 intervening sequences. Two of these repeats are located in intron 2, and the remaining three are located in introns 7, 8, and 11. The human alpha-fetoprotein gene contains three of these Alu elements, one in intron 4 and the remaining two in the 3'-untranslated region. In addition, the human alpha-fetoprotein gene contains a Kpn repeat and two classes of novel repeats that are absent from the human albumin gene. Six of the Alu elements within the two genes are bound by short direct repeats that harbor five base substitutions in 120 possible positions (60 bp times 2 termini). The absence of Alu repeats from analogous positions in rodents indicates that these repeats invaded the albumin-alpha-fetoprotein domain less than 85 Myr ago (the time of mammalian radiation). Furthermore, considering the conservation of terminal repeats flanking the Alu sequences of the albumin-alpha-fetoprotein domain (0.042 changes per site), we submit that the average time of Alu insertion into this gene family could have been as recently as 15-30 Myr ago.  相似文献   

8.
At present, nucleotide sequences of 100 different Alu repeats are known, i.e. 0.01% of the total number of Alu repeats in the genome. It is clear that one can not refer the evolutionary characteristics of Alu repeats obtained from the analysis of the available limited sample to all Alu repeats comprised in the genome, without additional statistical estimations. For supplementary investigation of such average evolutionary characteristics as the extent of intraspecific divergence, the rate of Alu repeats transposition (insertion, excision), we used the method of imitation simulation of the process of Alu repeats transposition in the genome. As a result of simulation, phylogenetic relations were obtained among all Alu repeats. It was shown that the evolutionary characteristics evaluated for different samples of repeats were similar. It was proved that the extent of divergence of Alu repeats in the model is twice as small as that evaluated, according to the real data (0.15, instead of 0.3). Possible reasons for such discrepancy have been discussed.  相似文献   

9.
Summary There are several hundred thousand members of the Alu repeat family in the human genome. Those Alu elements sequenced to date appear to fit into subfamilies. A novel Alu has been found in an intron of the human CAD gene: it appears to be due to rearrangement between Alu repeats belonging to two different subfamilies. Further sequence data from this intron suggest that the Alu element may have rearranged prior to its entry into the CAD gene. Such findings indicate that, in addition to single nucleotide substitutions and deletions, DNA rearrangments may be a factor in generating the diversity of Alu repeats found in primate genomes.  相似文献   

10.
Alu家族是灵长类动物特有的且是最重要的短散在元件(short interspersed elements,SINEs),经过6千5百万年的进化,Alu序列在基因组中约有120万份拷贝,占基因组的10%以上。Alu家族在基因组中有很多功能,如介导重组、基因插入和删除、甲基化和A-to-I的编辑作用、调控转录和翻译、选择性剪接等等。Alu家族的变异与疾病和进化存在密切关系。  相似文献   

11.
Two new polymorphic Alu elements (HS2.25 and HS4.14) belonging to the young (Ya5/8) subfamily of human-specific Alu repeats have been identified. DNA sequence analysis of both Alu repeats revealed that each Alu repeat had a long 3′-oligo-dA-rich tail (41 and 52 nucleotides in length) and a low level of random mutations. HS2.25 and HS4.14 were flanked by short precise direct repeats of 8 and 14 nucleotides in length, respectively. HS2.25 was located on human chromosome 13, and HS4.14 on chromosome 1. Both Alu elements were absent from the orthologous positions within the genomes of non-human primates, and were highly polymorphic in a survey of twelve geographically diverse human groups.  相似文献   

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A complex study on various evolutionary peculiarities of the mammalia dispersed Alu repeats (Alu repeats of primates and B1 of rodents) has been carried out by phylogenetic analysis. A phylogenetic tree, containing the 7SL RNA genes and the Alu repeats of primates and rodents has been constructed. It has been shown that the branch of the phyletic line leading to the Alu repeats of primates and B1 of rodents from the 7SL RNA genes occurred after the divergence of the 7SL RNA genes of amphibia and mammalia, but before the divergence of the 7SL RNA genes of primates and rodents (250.10 years ago). A statistically reliable slowing down in the evolutionary rates of one of two monomers for the human Alu repeats has been proved. It may be caused by the functional load of the corresponding monomer in connection with the presence of a definit regulatory site in it.  相似文献   

14.
Evolution of alu family repeats since the divergence of human and chimpanzee   总被引:14,自引:0,他引:14  
Summary The DNA sequences of three members of the Alu family of repeated sequences located 5 to the chimpanzee 2 gene have been determined. The base sequences of the three corresponding human Alu family repeats have been previously determined, permitting the comparison of identical Alu family members in human and chimpanzee. Here we compare the sequences of seven pairs of chimpanzee and human Alu repeats. In each case, with the exception of minor sequence differences, the identical Alu repeat is located at identical sites in the human and chimpanzee genomes. The Alu repeats diverge at the rate expected for nonselected sequences. Sequence conversion has not replaced any of these 14 Alu family members since the divergence between chimpanzee and human.  相似文献   

15.
Subfamily relationships and clustering of rabbit C repeats   总被引:5,自引:1,他引:4  
C repeats constitute the predominant family of short interspersed repeats (SINEs) in the rabbit genome. Determination of the nucleotide sequence 5' to rabbit zeta-globin genes reveals clusters of C repeats, and analysis of these and other sequenced regions of rabbit chromosomes shows that the C repeats have a strong tendency to insert within or in close proximity to other C repeats. An alignment of 44 members of the C repeat family shows that they are composites of different sequences, including a tRNA-like sequence, a conserved central core, a stretch of repeating CT dinucleotides, and an A-rich tract. Cladograms generated by both parsimony and cluster analysis subdivide the C repeats into at least three distinct subfamilies. Nucleotides at sites diagnostic for subfamilies appear to have changed in a punctuated and progressive manner during evolution, indicating that a limited number of progenitors have given rise to new repeats in waves of dispersion. C repeats that insert into preexisting C repeats belong to subfamilies that are proposed to have been propagated more recently; hence, these data support the model of dispersion in successive waves. The divergence among the oldest group of C repeats is greater than that observed for the analogous Alu repeats in humans, indicating that rabbit C repeats have been propagating longer than human Alu repeats. The improved consensus sequence for these repeats is similar to that of the predominant artiodactyl SINE in both the tRNA-like region and a central region. Because members of different subfamilies cross-hybridize very poorly, hybridization data with representatives of each subfamily provide a new minimal estimate, 234,000, for the copy number of C repeats in the rabbit haploid genome, although it is likely that the actual value is closer to 1 million.  相似文献   

16.
Numerous flanking nucleotide sequences from two primate interspersed repetitive DNA families have been aligned to determine the integration site preferences of each repetitive family. This analysis indicates that both the human Alu and galago Monomer families were preferentially inserted into short d(A+T)-rich regions. Moreover, both primate repeat families demonstrated an orientation specific integration with respect to dA-rich sequences within the flanking direct repeats. These observations suggest that a common mechanism exists for the insertion of many repetitive DNA families into new genomic sites. A modified mechanism for site-specific integration of primate repetitive DNA sequences is provided which requires insertion into dA-rich sequences in the genome. This model is consistent with the observed relationship between galago Type II subfamilies suggesting that they have arisen not by mere mutation but by independent integration events.  相似文献   

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Over the past 60 million years, or so, approximately one million copies of Alu DNA repeats have accumulated in the genome of primates, in what appears to be an ongoing process. We determined the phylogenetic distribution of specific Alu (and other) DNA repeats in the genome of several primates: human, chimpanzee, gorilla, orangutan, baboon, rhesus, and macaque. At the population level studied, the majority of the repeats was found to be fixed in the primate species. Our data suggest that new Alu elements arise in unique, irreversible events, in a mechanism that seems to preclude precise excision and loss. The same insertions did not arise independently in two species. Once inserted and genetically fixed, the DNA elements are retained in all descendant lineages. The irreversible expansion of Alu s introduces a vector of time into the evolutionary process, and provides realistic (rather than statistical) answers to questions on phylogenies. In contrast to point mutations, the present distribution of individual Alu s is congruent with just one phylogeny. We submit that only irreversible and taxonomically relevant events are at the molecular basis of evolution. Most point mutations do not belong to this category.  相似文献   

19.
A new family of repeats--i.e. MB1 repeats family--the number of copies of which per a human genome constitutes a few hundreds of thousands of copies has been revealed in a human gemone by computer analysis of a noncanonical similarity of nucleic acid sequences. The numbers of that family of repeats have also been revealed in the genomes of mouse and rat, they have been identified as mirror--reflected copies--in purines and pyrimidines--of B1 repeats in the genome of mouse and the Alu repeats in the human genome. The MB1 repeats tend to remain most similar at a length of 70 b.p. They are not flanked by short repeats, neither contain poly(A) region at the 3' end, by which they differ from the repeats of the SINE family. It has been assumed that the member of the Alu repeats family and the MB1 repeats family can form a so called H-form of DNA. The mirror-reflected repeat family could have been formed by replication of parallel DNA strands.  相似文献   

20.
In the Philadelphia positive bcr negative acute leukemias (Ph1+bcr- AL), the chromosomal breakpoints on chromosome 22 have been shown clustered within 10.8kb (bcr2) and 5kb (bcr3) fragments of the first intron of the BCR gene. We previously reported that the breakpoints were localized in Alu repeats on chromosomes 9 and 22 in a Ph1+bcr- acute lymphoblastic leukemia with a rearrangement involving bcr2. Molecular data of two other Ph1 translocations, one a Ph1+bcr- acute myeloblastic leukemia in the bcr2 region, and the other an acute lymphoblastic leukemia in the bcr3 region are presented. In the former, the breakpoints on chromosomes 9 and 22 are localized in Alu repeats, in regions with two inverted Alu sequences, as in our previously reported case. In the second leukemia, the breakpoints are not located in Alu sequences, but such repeats are found in their vicinity. The implications of these findings are discussed.  相似文献   

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