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Spliced HERV-H endogenous retroviral sequences in human genomic DNA: evidence for amplification via retrotransposition.

HERV-H elements are a large family of endogenous retrovirus-like sequences found in approximately 1000 dispersed copies in the genomes of humans and other primates. The most abundant subclass of these elements is a partially deleted form of 5.8 kb which is transcribed primarily as a 5.6-kb unit length RNA and a 3.7-kb spliced derivative. The provirus-like structure of these elements suggests that their numbers have increased in the genome through retrotransposition. However, this has not been demonstrated for HERV-H. To determine if genomic expansion of HERV-H elements involved an RNA intermediate, primate DNAs were screened by PCR for elements that were transcribed, spliced, reverse transcribed, and integrated back into the genome. This PCR screen detected several genomic HERV-H fragments that appear to be derived from spliced transcripts. Interestingly, the presence of one of these fragments is polymorphic in humans, suggesting that its integration was a relatively recent event. Another PCR strategy was used to determine that at least one of the spliced elements has an intact 5' LTR, indicating that it is not simply a "processed pseudogene" or cDNA copy of a HERV-H transcript. Genomic cloning and sequencing of a human locus harboring a spliced element revealed the expected structure, e.g., intact LTRs and flanking 5-bp direct repeats, for a virally retrotransposed element. A genomic library screening method also indicated that very few HERV-H elements (less than 1%) have the structure of processed pseudogenes. These results suggest that most HERV-H elements amplified in the genome as viral retrotransposons.

Animals↗

STING inhibits LINE-1 retrotransposition through sorting ORF1p to lysosomes for degradation.

The cyclic dinucleotide sensor stimulator of interferon (IFN) genes (STING) is known for its critical role in interferon and inflammatory responses. In addition, STING also has functions independent of interferon induction. In this study, we report that STING restricts the mobilization of the cellular retrotransposon long interspersed nuclear element 1 (LINE-1) independent of cGAS and interferon induction. LINE-1 is the only active autonomous retrotransposable element in the human genome and its transposition can cause genetic and autoimmune diseases. STING inhibition of LINE-1 requires its dimerization. Mechanistically, STING interacts with LINE-1 ORF1p, then the complex translocates to the ER-Golgi intermediate compartment (ERGIC) and the Golgi followed by sorting to Rab7-positive lysosomes for degradation. Our data unveil a function of STING in maintaining host genome integrity by restricting LINE-1 retrotransposition via an IFN-independent mechanism.

Humans↗

Zebedee: a novel copia-Ty1 family of transposable elements in the genome of the medically important mosquito Aedes aegypti.

We have utilised PCR to directly identify a novel family of copia-Ty1 retrotransposable elements (RTPs) in the genome of the mosquito Aedes aegypti. Two members of the family have been sequenced in their entirety and their structural characteristics determined. ZebedeeI is 3505 bp long and appears to be flanked by 21bp direct repeat sequences. A single open reading frame (ORF) of 972 amino acids has the coding potential for a polyprotein with homology corresponding to the conserved amino acid motifs of Long Terminal Repeat (LTR) retrotransposon protease, integrase and reverse transcriptase. ZebedeeII likewise shares significant homology with these regions and also appears to be flanked by short direct terminal repeat sequences of 22 bp. Fifty copies of the 22 bp repeat sequence are present abutting the 5' end of ZebedeeII, with two (partial) representatives of this repeat sequence being present at the 3' end. The Zebedee family appears to have a low middle repetitive copy number in different strains of Ae. aegypti; and transcripts of the elements have been detected in cultured mosquito cells by RT-PCR. Despite the lack of a gag homologue or the LTR hallmarks of previously characterised copia-Ty1 RTPs, phylogenetic analyses place Zebedee within this group, showing considerable homology to copia from Drosophila melanogaster.

Aedes↗

Ikirara insertions reveal five new Anopheles gambiae transposable elements in islands of repetitious sequence.

Characterization of Anopheles gambiae genomic clones containing Ikirara inverted repeats revealed five novel sequences related to known transposable elements (TEs). One TE is related to the mariner/Tc1 superfamily of class II (DNA-to-DNA) transposons, while four are related to class I (RNA-mediated transposition) elements. Crusoe, the class II element; is most similar to the Caenorhabditis elegans transposon Tc1-like TEs. Vash elements, represented twice in our clones, are related to the Q/T1 family of A. gambiae non-LTR retrotransposable elements. Guildenstern is a member of the RT1 and RT2 non-LTR retrotransposon family. Although RT1 and RT2 elements normally have a highly stereotyped insertion preference for sequences within ribosomal genes, Guildenstern is not located in ribosomal sequence. JuanAg is the first anopheline member of the mosquito non-LTR retrotransposon family of Juan elements that previously had included just the culicine elements JuanA and JuanC. Approximately 753 bp is missing from the central portion of the JuanAg reverse transcriptase gene, where an Ikirara inverted repeat is found in its stead. Ozymandias, the only LTR retrotransposon found in the clones, is most similar to the Drosophila melanogaster 412 element. Single Ikirara inverted repeats were also found adjacent to nontransposable element repetitious sequences. Our analysis suggests that the A. gambiae genome organization could best be described as islands of short-period interspersion repetitious DNA in a sea of long-period interspersion, mostly unique sequence DNA.

Amino Acid Sequence↗

Chicken repeat 1 (CR1) elements, which define an ancient family of vertebrate non-LTR retrotransposons, contain two closely spaced open reading frames.

Chicken repeat 1 (CR1) elements comprise a family of non-long terminal repeat (LTR) retrotransposons that have several noteworthy features. For example, whereas most other non-LTR elements have poly(A) tracts or other simple A-rich repeats at their 3' ends, the 3' ends of CR1 elements conform to the consensus [(CATTCTRT)(GATTCTRT)1-3]. CR1 elements also display an unusual bias for severe 5' truncations: only approx. 30 (out of a total of approx. 30 000) CR1 elements in the chicken genome include significant portions of the pol-like open reading frame (ORF) that we previously identified and partially sequenced [Burch et al. (1993) Proc. Natl. Acad. Sci. USA 90, 8199-8203]. In the present study we derived a consensus sequence for this entire ORF (ORF2) as well as an upstream ORF (ORF1) and part of a 5' untranslated region (UTR). The conceptual translation product of ORF2 is predicted to contain an endonuclease domain in addition to a reverse transcriptase domain. These results suggest that CR1 elements retrotranspose using a "nick and prime" mechanism similar (but not identical) to other families of non-LTR elements.

Amino Acid Sequence↗

Independent regulation of mouse VL30 retrotransposon expression in response to serum and oncogenic cell transformation.

The nucleotide sequence of the long terminal repeats (LTRs) of retrovirus-transmissible mouse VL30 cDNA clones, NVL-1 and NVL-2 were determined and compared with that of the prototype NVL-3. Both shared the typical U3 R U5 structure together with unusual features of redundancy in the tRNAgly primer binding site and adjacent inverted repeat. NVL-1 and NVL-2 LTRs were almost identical and differed from the NVL-3 LTR in the U3 domain harbouring transcriptional regulatory determinants. S1 nuclease analysis of cellular and virus-encapsidated RNA suggested that NVL-1/2 and NVL-3 elements retrotranspose with comparable efficiency but that in contrast to transformation-regulated VL30 expression which affects all types of NVL element, only NVL-1/2 elements were found to be serum responsive. Both modes of VL30 regulation were found to be coupled through protein kinase C-independent pathways. Expression of N-ras transactivated U3 enhancer determinants in all classes of LTR. However the same region of NVL-1/2 LTR did not confer serum responsiveness implying that cis regulatory determinants of VL30 elements mediating growth factor responsiveness are at least in part dissociable from those responsible for cell transformation-regulated expression.

Base Sequence↗

Cladosporium fulvum overcomes Cf-2-mediated resistance by producing truncated AVR2 elicitor proteins.

The Cf-2 gene of tomato confers resistance to strains of the biotrophic pathogenic fungus Cladosporium fulvum carrying avirulence gene Avr2. To allow dissection of the biochemical mechanism of perception of AVR2 by Cf-2, we set out to clone the Avr2 gene. Here, we report the functional cloning of Avr2 cDNA, based on the induction of a hypersensitive response (HR) by the encoded AVR2 protein in Cf2 tomato plants. Analysis of strains of C. fulvum that are virulent on Cf2 tomato lines revealed various independent frameshift mutations in the Avr2 open reading frame (ORF) and a point mutation resulting in a premature stop codon. All modifications result in the production of truncated AVR2 proteins. Interestingly, an additional modification involves the insertion of a LINE-like element, Cfl1, in the Avr2 ORF. Cfl1 is the first LINE-like element identified in C. fulvum and provides the first example of loss of avirulence of a plant pathogen caused by insertion of a retrotransposable element in an Avr gene. Rcr3 represents an additional plant protein that is specifically required for Cf-2-mediated resistance. Analysis of two different rcr3 mutant Cf2 tomato plants revealed that their ability to respond to AVR2 with a HR correlates with their degree of resistance to AVR2-producing strains of C. fulvum. These data support a role for Rcr3 in the perception of AVR2 by Cf-2.

Cladosporium↗

Reverse transcriptase encoded by a retrotransposon from the trypanosomatid Crithidia fasciculata.

The long interspersed nuclear element (LINE)-like elements are a distinct family of eukaryotic transposons that contain a long open reading frame with limited sequence homology to retroviral reverse transcriptases. Unlike many retrotransposons, they lack long terminal repeats. The mechanism by which LINE-like elements move within the genomes of their hosts remains speculative. We have used an unusual approach to express and detect enzymatic activities associated with Crithidia retrotransposable element 1 (CRE1), a site-specific LINE-like element found in the insect trypanosomatid Crithidia fasciculata. A chimeric gene fusing the yeast retrotransposon Ty1 and the CRE1 open reading frame is constructed and then overexpressed in yeast. Fusion proteins are packaged into virus-like particles, which can be partially purified and directly analyzed for enzymatic activity. Here we demonstrate that CRE1 encodes an RNA-directed DNA polymerase. These data provide direct biochemical evidence that this widely distributed class of retrotransposons encodes reverse transcriptase and sets the stage for a detailed understanding of the mechanisms involved in LINE-like element transposition.

Animals↗

Effects of Alu insertions on gene function.

Alu elements are a family of short interspersed repetitive elements (SINEs) found exclusively in primates. These elements are around 300 base pairs long, are found in excess of one million copies per diploid genome, and are dispersed throughout the human genome. Alu elements are scattered by a mechanism called "retrotransposition". Three independent steps are involved in retrotransposition: transcription of the Alu repetitive element, reverse transcription of the Alu RNA and integration of the Alu cDNA. The fact that Alu elements retrotranspose so readily suggests that they have a myriad of effects on the genome, mostly by inactivating genes or altering their function. These characteristics of Alu repetitive elements point to these repetitive DNA fragments as a major driving force for evolution. In addition, Alu elements are known to adopt diverse functions depending on the context of the surrounding genetic material into which they insert. In this article, we review some of the evidence that demonstrates the functional significance of Alu repeats.

Alu Elements↗

A short introduction to the origin and molecular evolution of viruses.

The present review deals with conceptual and experimental approaches to two aspects of the origin and molecular evolution of viruses. In the section "Role of Retrons, Retroelements, and Reverse Transcriptase in the Evolution of Retroviruses and in Eukaryotic Genome Plasticity", Temin's concept that retrons are an ancient genetic element that during evolution of the species gave rise to retroviruses is presented. An opposing view of Xiong and Eickbush that the most probable ancestor of current retroelements is a retrotransposable element with gag- and pol-like genes is presented. Minus-strand RNA viruses are also discussed. The second aspect of this review is the molecular evolution of viruses at the level of the virus genome. Spiegelman's experiment on the evolution of self-replicating nucleic acid molecules outside living cells and Eigen's experimental and conceptual approaches to this subject are presented, along with studies on the evolutionary rates of base substitutions in viral RNA and defective molecules generated during replication.

Animals↗

Unusual features of the Drosophila melanogaster telomere transposable element HeT-A are conserved in Drosophila yakuba telomere elements.

HeT-A was the first transposable element shown to have a bona fide role in chromosome structure, maintenance of telomeres in Drosophila melanogaster. HeT-A has hallmarks of non-long-terminal-repeat (non-LTR) retrotransposable elements but also has several unique features. We have now isolated HeT-A elements from Drosophila yakuba, showing that the retrotransposon mechanism of telomere maintenance predates the separation of D. melanogaster and D. yakuba (5-15 million years ago). HeT-A elements from the two species show significant sequence divergence, yet unusual features seen in HeT-Amel are conserved in HeT-Ayak. In both species, HeT-A elements are found in head-to-tail tandem arrays in telomeric heterochromatin. In both species, nearly half of the HeT-A sequence is noncoding and shows a distinctive imperfect repeat pattern of A-rich segments. Neither element encodes reverse transcriptase. The HeT-Amel promoter appears to be intermediate between the promoters of non-LTR and of LTR retrotransposons. The HeT-Ayak promoter shows similar features. HeT-Amel has a frameshift within the coding region. HeT-Ayak does not require a frameshift but shows conservation of the polypeptide sequence of the frameshifted product of D. melanogaster.

Animals↗

Cloning and characterization of a copy of Tirant transposable element in Drosophila melanogaster.

A Tirant element, inserted at the 5' end of the mitochondrial glutamine synthetase (mt-gs) gene in a mutant allele giving rise to a recessive female sterility phenotype, was cloned and utilized to characterize this novel retrotransposable element of the Drosophila melanogaster genome. The 5.3 kb element present in the fs(2) PM11-19 mt-gs allele possesses a 417 bp long terminal repeat (LTR) at both ends. There is a serine tRNA binding site downstream of the 5' LTR sequence and a polypurine tract upstream of the 3' LTR end. The insertion leads to the duplication of a host-site CGCG sequence. In situ hybridization to salivary glands chromosomes showed evidence of the mobile nature of the element. The DNA sequencing of the cloned 5.3 kb element revealed that Tirant possesses an open reading frame (ORF) that shows similarity with the envelope protein encoded by the gypsy and 297 retrotransposons. In addition, the cloned element appears to be a subgenomic fragment of a not yet identified complete element, because only the integrase domain of the reverse transcriptase gene is found.

Amino Acid Sequence↗

A full-length and potentially active LINE element is integrated polymorphically within the IGL locus in a genomically unstable region of chromosome 22.

Leukemic cells of a patient diagnosed with chronic myeloid leukemia (CML) showed a complex BCR-ABL1 rearrangement hidden within a normal appearing karyotype. Previous molecular studies had established that the 3' BCR had recombined at a novel site within the variable region of the immunoglobulin lambda locus ( IGL). A segment of DNA mapping very close to the site of the IGL/3' BCR recombination recognized a previously undescribed insertion polymorphism. A combination of molecular hybridization studies and long-range polymerase chain reaction was used to isolate a 6-kb full-length long interspersed nuclear element (LINE or L1), here designated L1(IGL), which occupies 19% of alleles in the general population. Although unclonable, DNA sequence analysis by a primer walking approach established that L1(IGL) has features characteristic of an actively retrotransposing element. The L1(IGL) element has a 5' untranslated region, two open reading frames (ORF-1 and ORF-2), a 3' untranslated region and terminates in a poly-A tail. We compared the DNA sequence and the predicted amino acid sequence of L1(IGL) with a consensus sequence compiled from seven reported active L1 elements. This analysis indicated that L1(IGL) has high potential for involvement in as yet undetermined somatically and constitutionally acquired disease, not only through recombination mechanisms, but also through retrotransposition events. This full-length L1 element maps close within the IGLlocus to L1.2, one of only nine active L1 elements that have been reported so far. L1(IGL) and L1.2 map within a wider and well-recognized region of genomic instability on chromosome 22.

Base Sequence↗

Eukaryotic transcription termination factor La mediates transcript release and facilitates reinitiation by RNA polymerase III.

Ample evidence indicates that Alu family interspersed elements retrotranspose via primary transcripts synthesized by RNA polymerase III (pol III) and that this transposition sometimes results in genetic disorders in humans. However, Alu primary transcripts can be processed posttranscriptionally, diverting them away from the transposition pathway. The pol III termination signal of a well-characterized murine B1 (Alu-equivalent) element inhibits RNA 3' processing, thereby stabilizing the putative transposition intermediary. We used an immobilized template-based assay to examine transcription termination by VA1, 7SL, and Alu class III templates and the role of transcript release in the pol III terminator-dependent inhibition of processing of B1-Alu transcripts. We found that the RNA-binding protein La confers this terminator-dependent 3' processing inhibition on transcripts released from the B1-Alu template. Using pure recombinant La protein and affinity-purified transcription complexes, we also demonstrate that La facilitates multiple rounds of transcription reinitiation by pol III. These results illustrate an important role for La in RNA production by demonstrating its ability to clear the termination sites of class III templates, thereby promoting efficient use of transcription complexes by pol III. The role of La as a potential regulatory factor in transcript maturation and how this might apply to Alu interspersed elements is discussed.

Animals↗

Ribosomal DNA insertion elements R1Bm and R2Bm can transpose in a sequence specific manner to locations outside the 28S genes.

A fraction of the ribosomal 28S genes in some insects are interrupted at specific sites by insertion elements R1 and R2 (also called Type I and II). These elements contain long open-reading frames with homology to reverse transcriptase. We have identified in the silkmoth, Bombyx mori, copies of these elements which have inserted into sites outside the ribosomal DNA (rDNA) units. The 3' ends of all "non-rDNA" elements are identical to the elements within the 28S genes; however their 5' ends are often truncated. Each non-rDNA copy has inserted into sequences that exhibit similarity to their target sites in the 28S gene. We also demonstrate by genomic blot analysis of different strains of B. mori that insertions of R1 and R2 outside the rDNA units have been infrequent, while considerable turnover of elements has occurred within the rDNA locus. One race of B. mori has lost all copies of R1 from its rDNA units, while retaining normal levels of R2. The level of both R1 and R2 have significantly increased in a tissue culture line. These findings add considerable support to the model that R1 and R2 are retrotransposable elements that utilize sequence specific endonucleases in their integration into the genome.

Animals↗

Analysis and chromosomal localization of retrotransposons in sugar beet (Beta vulgaris L.): LINEs and Ty1-copia-like elements as major components of the genome.

DNA sequences of the reverse transcriptase gene of long terminal repeat (LTR) and non-LTR (non-viral) retrotransposons have been isolated and cloned from the genome of sugar beet (Beta vulgaris). Both retrotransposon types are highly amplified in sugar beet and may account for 2-5% of the genome. The BNR1 family, representing the first non-viral retrotransposon reported from a dicotyledonous species, shows homology to the mammalian L1 family of long interspersed repeated sequences (LINEs) and to retrotransposable elements from maize and lily. Sequences of the Tbv family are homologous to the Ty1-copia class of LTR retrotransposons. The BNR1 and Tbv retrotransposon families are characterized by sequence heterogeneity and are probably defective. The deduced peptide sequences were used to investigate the relation to other retroelements from plants, insects and mammals. Fluorescence in situ hybridization was used to investigate the physical distribution and revealed that both retrotransposon families are present on all sugar beet chromosomes and largely excluded from chromosomal regions harbouring the 18S-5.8S-25S rRNA genes. The BNR1 family is organized in discrete clusters, while the Tbv family of Ty1-copia-like retrotransposons shows a more uniform distribution along chromosome arms and is absent from some chromosomal regions. These contrasting distributions emphasize the differences in evolutionary amplification and dispersion mechanisms between the two types of retrotransposons. The in situ results of both elements reflect significant features of a higher order structure of the genome, as it is known for both short interspersed repeated sequences (SINEs) and LINEs in human.

Amino Acid Sequence↗

Retrotransposons and the evolution of mammalian gene expression.

Transposable elements, and retroviral-like elements in particular, are a rich potential source of genetic variation within a host's genome. Many mutations of endogenous genes in phylogenetically diverse organisms are due to insertion of elements that affect gene expression by altering the normal pattern of regulation. While few such associations are known to have been maintained over time, two recently elucidated examples suggest transposable elements may have a significant impact in evolution of gene expression. The first example, concerning the mouse sex-limited protein (Slp), clearly establishes that ancient retroviral enhancer sequences now confer hormonal dependence on the adjacent gene. The second example shows that within the human amylase gene family, salivary specific expression has arisen due to inserted sequences, deriving perhaps from a conjunction of two retrotransposable elements.

Amylases↗

Ten-kilodalton domain in Ty3 Gag3-Pol3p between PR and RT is dispensable for Ty3 transposition.

Ty3 is a gypsy-type, retrovirus-like element found in the budding yeast Saccharomyces cerevisiae. In cells overexpressing Ty3 under the GAL1 upstream activation sequence, Ty3 RNA, proteins, and DNA are made. Elucidation of the molecular masses and amino-terminal sequences of protease and reverse transcriptase indicated the existence of an additional intervening domain, designated J, in the Ty3 Gag3-Pol3p polyprotein. A region analogous to J can be found in many retrotransposable elements closely related to Ty3; however, J does not correspond to any of the highly conserved retroviral protein domains. Ty3 mutants deleted for the J-coding region showed moderately reduced transposition frequency but greatly reduced levels of Ty3 DNA. These results show that under galactose regulation, the Ty3 J domain is not absolutely essential.

Aspartic Acid Endopeptidases↗