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Characterization of a highly conserved sequence related to mutator transposable elements in maize.

Mutator stocks of maize exhibit a high mutation rate correlated with the activity of a family of transposable elements. Mu1 and, to a lesser extent, the closely related Mu1.7 elements are responsible for most mutator-induced mutations that have been characterized. These elements are found in 10-60 copies in mutator stocks, and zero to a few intact elements exist in nonmutator maize stocks. Additionally, the component parts of Mu elements exist separately in the maize genome. The Mu terminal inverted repeats are found in multiple copies in all maize lines and related Zea species tested, and Mu internal sequences exist unassociated with Mu termini. In the present paper, we describe the structure and genomic distribution of one Mu-homologous sequence termed MRS-A (for Mu-related sequence). DNA sequencing shows that MRS-A is closely related to the internal region of Mu1 and Mu1.7 elements. However, it has no Mu termini and does not have the structure of a transposable element. This sequence is present in one or two copies in all maize lines and is highly conserved in the genus Zea. A similar sequence exists in a species within the genus most closely related to Zea, Tripsacum dactyloides, although the T. dactyloides genome does not contain any Mu termini or intact Mu elements. Furthermore, an RNA transcript homologous to MRS-A and its flanking DNA is found in both mutator and nonmutator maize plants. These results suggest that MRS-A represents a stable, functional region of the maize genome, and we speculate that a similar sequence was encompassed by Mu termini to generate a Mu transposable element.

Base Sequence↗

Characterization of Tpn1 family in the Japanese morning glory: En/Spm-related transposable elements capturing host genes.

Some mutant phenotypes are known to be unstable somatically and germinally due to the insertion of transposable elements in the Japanese morning glory (Ipomoea nil). Several transposable elements that cause mutable phenotypes have recently been isolated. All of these elements show characteristic features of the En/Spm (Enhancer/Suppressor-mutator) or CACTA family. They carry common 28 bp terminal inverted repeats and subterminal repetitive regions and are known as the Tpn1 family. All of these elements are thought to be non-autonomous and mobilized by unidentified autonomous element(s). Using a probe corresponding to the subterminal region, we isolated many genomic Tpn clones, 120 of which were classified into 28 types based on their restriction maps. The copy number of the Tpn1 family was estimated to be between 500 and 1,000 copies per haploid genome. We then determined the complete sequences of 28 representative clones from each Tpn type. Most Tpn elements showed a high degree of similarity to plant genes in their internal sequences, suggesting that the Tpn1 family captured host gene sequences during the process of evolution. Detailed analyses of Tpn104 in comparison with an orthologous host gene InAP2B confirmed this assumption.

Base Sequence↗

Gene transfer in human lymphocytes using a vector based on adeno-associated virus.

Adeno-associated virus is a nonpathogenic, dependent parvovirus that integrates at a specific site in human chromosome 19. We have used the inverted terminal repeats of the virus, which mediate integration, to establish a vector for gene transfer in human lymphocytes. A neomycin resistance gene has been stably introduced into nontransformed human T-cell clones and a subsequent analysis of the functional properties of the infected clone revealed no detectable alterations. Rescue and replication of the wild-type virus was accomplished with adenovirus superinfection; however, the vector was not rescued and did not replicate by this procedure, indicating the stability of the integrated vector and demonstrating an additional level of safety incorporated in its construction. An adeno-associated virus-based vector represents an alternative to retroviruses for gene therapy in lymphocytes.

Base Sequence↗

The differentiation of Bordetella parapertussis and Bordetella bronchiseptica from humans and animals as determined by DNA polymorphism mediated by two different insertion sequence elements suggests their phylogenetic relationship.

We describe a novel insertion sequence (IS) element, IS1002, which was found to be closely related to IS481, which is found only in Bordetella pertussis; we found that these two IS elements have a level of sequence identity of 61.5% and also have almost identical terminal inverted repeats. IS1002 was present in both B. pertussis and Bordetella parapertussis strains isolated from humans. In contrast, IS1002 was absent from B. parapertussis strains isolated from sheep. A DNA fingerprint analysis performed with another IS element, IS1001, which is present in B. parapertussis and Bordetella bronchiseptica, revealed that B. parapertussis isolates obtained from sheep are distinct from human isolates. Thus, human and ovine B. parapertussis strains comprise two distinct populations, indicating that little or no transmission occurs between sheep and humans. An IS-associated restriction fragment length polymorphism analysis revealed by B. parapertussis strains isolated from sheep are genetically more polymorphic than the human B. parapertussis population, which is genetically very homogeneous. This suggests that human B. parapertussis strains diverged from a single clone only recently. IS1001 is present in a subset of B. bronchiseptica strains that were derived mainly from pigs and rabbits, suggesting that these strains had a common ancestry. On the basis of the results of a comparison of IS1001 band patterns and IS1001 sequences, ovine and human B. parapertussis strains appear to have evolved independently from B. bronchiseptica strains and to have adapted to different hosts (sheep and humans). Once in the human host, B. Parapertussis probably acquired IS1002 from B. pertussis. In contrast to human B. parapertussis isolates, B. pertussis strains produced polymorphic IS1002-related DNA fingerprint patterns.

Amino Acid Sequence↗

The nucleotide sequence of the leftmost XhoI fragment (6%) of simian adenovirus SA7P.

The DNA of simian adenovirus SA7P was cloned in pBR322. The nucleotide sequences of the leftmost 2238 bp and the rightmost 188 bp of the viral genome were determined. SA7P DNA has an inverted terminal repeat of 183 bp. The sequence at the left terminus exhibits extensive homology with that of the E1 regions of human adenovirus 5, 7 and 12 DNAs. Based on this homology, the RNA coordinates and coding regions could be deduced. The sequenced SA7P DNA contains the entire E1A and part of the E1B region.

Adenoviridae↗

Human cytomegalovirus DNA sequences with homologies to the cellular genome.

DNA from a cosmid-cloned gene library of human cytomegalovirus (HCMV) strain AD169 was found to share sequence homologies with cellular DNA of various origins. Viral DNA fragments subcloned in plasmid vectors enabled localization of the homologous sequences to five regions of the HCMV genome. Four of these regions were found in the long unique (UL) segment of the viral genome (EcoRI fragments R, I and b, and HindIII fragment S); one region with virus--cell homology was located in the terminal inverted repeats (EcoRI fragments O and H). All hybridization reactions were carried out under stringent reannealing conditions (18 degrees C to 21.5 degrees C below average Tm of HCMV DNA). Fragments from these five HCMV DNA regions did not cross-hybridize with each other. The sequence homologies were seen in DNA from normal human placental tissue, liver autopsy material, intestinal tissue, white blood cells, and colon carcinoma cells, and in a series of haematopoietic cell lines. Sequence homologies were also detected in DNA from owl monkeys and Chinese hamsters, but not in mouse DNA. They were not related to human Alu repeats or cloned human c-myc sequences.

Base Sequence↗

Structure and mapping of the DNA of human parvovirus B19.

DNA from human parvovirus B19 was prepared from infected serum and examined by electron microscopy. Double-stranded molecules were seen, often with characteristic 'fold-back' ends that were assumed to be due to the inverted terminal repeats of the genome DNA. This double-stranded DNA was mapped with 13 restriction enzymes. More than 40 isolates, including the virus from the original B19 serum, were compared. Although isolates could be grouped by this method, there was no correlation between a particular restriction endonuclease map and any of the several disease presentations of the virus.

Chromosome Mapping↗

Two early vaccinia virus genes encode polypeptides related to protein kinases.

Vaccinia virus particles contain a protein kinase with an Mr of 62K calculated from sedimentation rate. We have sequenced the SalI G restriction fragment of the vaccinia virus genome near to the right inverted terminal repeat and have identified two genes which share 36% amino acid identity with each other and are related to the family of protein kinase genes. One gene, designated B1R, encodes a 34.2K protein which shares 27% identity with a protein kinase encoded by the herpes simplex virus type 1 US3 gene and contains conserved motifs characteristic of protein kinases of serine/threonine specificity. The second gene, B12R, encodes a protein of 33.3K which is poorly related to known protein kinases and lacks specific amino acids at several highly conserved key positions. The deduced partial amino acid sequence of a gene in the corresponding region of the cowpox virus genome is identical to B12R except for one conservative amino acid substitution. Both of the vaccinia virus genes are transcribed towards the right-hand end of the genome early during infection. It is possible that the product of either or both of these genes associates to form a homo- or heterodimer that represents the 62K virion-associated protein kinase.

Amino Acid Sequence↗

Vaccinia virus encodes a family of genes with homology to serine proteinase inhibitors.

Nucleotide sequencing of a region of the vaccinia virus genome proximal to the right inverted terminal repeat (ITR) identified two open reading frames (ORFs) encoding proteins of 39K and 40K with amino acid homology to each other, to another vaccinia virus gene near the opposite end of the virus genome and to the superfamily of serine proteinase inhibitors (serpins). Serpins have now been found in poxviruses from the genera orthopox (cowpox and vaccinia viruses), leporipox (myxoma virus) and avipox (fowlpox virus). One of the vaccinia virus serpins identified here (B13R) shares 92% amino acid identity with the serpin from cowpox virus and 46% and 19% identity with vaccinia serpins B24R and K2L, respectively. The amino acid sequence of B13R reported here differs at 11 positions from a recently reported sequence and contains an additional three internal residues. The serpin genes near the right ITR are separated by 8 kb of DNA. Both genes contain early transcriptional termination signals just downstream of the ORFs and are transcribed in a rightward direction towards the end of the genome. Analysis of mRNAs from virus-infected cells demonstrated that all three vaccinia virus serpin genes are transcribed early during infection. The amino acid sequences at the active sites of these serpins suggest that they may inhibit serine proteinases of differing biochemical specificities. The possible functions of these genes are discussed.

Amino Acid Sequence↗

Restriction maps and sequence homologies of two densovirus genomes.

The genomes of Junonia coenia densonucleosis virus (JcDNV) and Galleria mellonella densonucleosis virus (GmDNV) were analysed by restriction endonuclease analysis and Southern blot hybridization. A total of 37 and 33 restriction sites were mapped on JcDNV and GmDNV DNA, respectively. BglI, HaeII and BstEII were site-specific for JcDNV DNA, and BglII and ClaI for GmDNV DNA. The two genomes had nearly identical maps for several restriction endonucleases and Southern blot hybridization using a total genomic JcDNV probe indicated extensive DNA sequence homologies spanning the entire length of the two genomes. Symmetrical cleavage sites, mapping at the extremities of both genomes, confirmed the presence of inverted terminal repeats of at least 420 to 440 bases in length.

Animals↗

DNA sequence of the gene encoding a major secreted protein of vaccinia virus, strain Lister.

Infection of tissue culture cells with vaccinia virus results in the specific secretion of several polypeptides into the medium. Previous studies identified a protein of approximate Mr 35,000 (35K) which was secreted in large amounts at both early and late times after infection with the Evans strain. We now show that a related protein is secreted by the Lister strain but not by WR, Wyeth nor Tian Tan. The gene encoding the Lister strain 35K protein was mapped within the inverted terminal repeats of the genome. The DNA sequence of this region showed that the ends of this gene are very similar to previously published sequences flanking a gene of WR which encodes a protein of approximate Mr 7,500 (7.5K). Our results suggest that the 7.5K polypeptide of WR may have arisen as a result of a deletion event and is a truncated form of the 35K Lister protein. Site-directed mutagenesis demonstrated that the 35K secreted protein encoded by Lister is not essential for growth in tissue culture.

Amino Acid Sequence↗

Two vaccinia virus proteins structurally related to the interleukin-1 receptor and the immunoglobulin superfamily.

The structures of two vaccinia virus genes (B15R and B18R) from near the right inverted terminal repeat are described. These genes encode proteins of 36.5K and 40.7K, respectively, which have an N-terminal hydrophobic sequence, possible sites for attachment of N-linked carbohydrate and a short string of hydrophobic residues near the C terminus. These properties are consistent with the mature proteins being either virion, cell surface or secretory glycoproteins. Protein sequence comparisons established that the two gene products are related to each other (20% identity) and to the immunoglobulin (Ig) superfamily. Intriguingly, the nearest homologues of these proteins in the SWISS-PROT (version 14) database are the human and murine interleukin-1 receptors, although both proteins are related to a wide range of Ig superfamily members, including the interleukin-6 receptor. The product of one of these genes is known to be expressed on the cell surface early during infection and immunity directed against it confer resistance to virus infection without directly neutralizing virus infectivity. We propose a novel method for virus immune evasion in which the product of one or both of these proteins may bind interleukin-1 and/or interleukin-6 and prevent these cytokines reaching their natural receptors. In consequence the inflammatory response would be diminished and virus replication enhanced.

Amino Acid Sequence↗

Identification and characterization of the thymidine kinase gene of Yaba virus.

DNA of Yaba virus, a member of the poxviruses, was mapped by cross-hybridization between fragments of various restriction enzymes. The genome was approximately 135 kb in length and possessed two characteristic features of poxviruses: cross-links and inverted terminal repeats at both termini. Hybridization of fragments of Yaba virus DNA to known vaccinia virus DNA fragments indicated that the thymidine kinase (TK) gene mapped within the 0.9 kb XhoI-HincII fragment between 52.5 and 53.5 kb from the left end of the genome. The fragment could rescue the TK+ phenotype in TK- cells preinfected with a TK vaccinia virus mutant. Nucleotide sequencing of the fragment revealed an ORF capable of encoding 181 amino acids. The sequence TAAAAATGAAAAATTA upstream of the ORF was considered to be the promoter and the downstream sequence TTTTTAT to be the early transcription termination signal. These sequences are in good accord with the consensus regulatory sequences for the expression of early genes of other known poxviruses. The amino acid sequence similarity among the poxvirus TK genes suggests that Yaba virus is most closely related to swinepox virus and less similar to fowlpox virus.

Amino Acid Sequence↗

The complete nucleotide sequence and genome organization of the M RNA segment of peanut bud necrosis tospovirus and comparison with other tospoviruses.

The M RNA of peanut bud necrosis virus (PBNV; synonym groundnut bud necrosis virus) is 4801 nucleotides in length. It comprised two ORFs in an ambisense organization and terminal inverted repeats. The 3' large ORF (3363 nucleotides in the virus-complementary strand) encoded a protein with a predicted size of 127.2 kDa which was identified as the glycoprotein precursor (GP) of the G1 and G2 glycoproteins. A comparison of the deduced amino acid sequence of GP revealed 37% identity and 58-59% similarity with that of tomato spotted wilt virus (TSWV, serogroup I) and impatiens necrotic spot virus (INSV, serogroup III), and 21-23% identity and 44-47% similarity with those of other members of the genus Bunyavirus. The 5' small ORF (924 nucleotides in the virussense strand) encoded a 34.2 kDa protein which was identified as the non-structural (NSm) protein based on 41-43% identity and 60-63% similarity with that of TSWV and INSV. Defective RNA molecules derived from the genomic M RNA were detected during continuous passage of the virus by sap inoculations.

Amino Acid Sequence↗

Complete nucleotide sequence of Colorado tick fever virus segments M6, S1 and S2.

The nucleotide sequences of the tenth (M6), eleventh (S1) and twelfth (S2) dsRNA genomic segments of the Florio strain (N-7180) of Colorado tick fever virus were determined and found to be 675, 998 and 1884 bp, respectively, in length. A nonanucleotide motif and a hexanucleotide motif were found to be highly conserved in the 5' and 3' non-coding regions (NCRs), respectively, of the three segments. The first and last three nucleotides of each segment were of inverted complementarity, and segment-specific inverted terminal repeats were detected in the NCRs of the three segments. These findings suggest the occurrence of intracellular panhandle structures for the RNA transcripts. A readthrough phenomenon is suspected in segment M6. The environment surrounding the opal codon (position 1052-1054) of segment M6 conforms to that of leaky opal codons described in the literature.

Animals↗

Complete DNA sequence of canine adenovirus type 1.

The complete DNA sequence of a field strain of canine adenovirus type 1 was determined by sequencing random fragments of viral DNA cloned into pBluescript. The virus has a genome of 30536 bp flanked by two identical 161 bp inverted terminal repeats. Thirty ORFs have been identified, based on genomic location or sequence identity with published adenoviruses. These are arranged into similar discrete regions found in the human adenoviruses. ORFs in the late region show greatest identity with published human adenovirus sequences, whereas the E3 and E4 ORFs show little or none.

Adenoviridae↗

Development of porcine adenovirus-3 as an expression vector.

Porcine adenovirus-3 (PAV-3) was developed as an expression vector using homologous recombination in Escherichia coli BJ 5183. As a prerequisite, the complete genome of PAV-3 was first introduced as a PacI restriction fragment into a bacterial plasmid. The plasmid, when PacI restricted and transfected into swine testicular cells, produces an infectious virus. The potential of this procedure was demonstrated by the construction of several PAV-3 recombinants. Part of the E3 region, which is nonessential for virus replication under cell culture conditions, was identified and deleted from the virus genome. The gene for glycoprotein D (gD) of pseudorabies virus (PRV), which elicits PRV-neutralizing antibodies in pigs, was cloned and expressed from the E3 region of PAV-3. A 50 kDa polypeptide was identified in recombinant PAV-3-infected cell lysates by immunoprecipitation assays using gD-specific monoclonal antibodies. In another experiment, a region between the right inverted terminal repeat and the promoter of the E4 region was used to clone and express the chloramphenicol acetyltransferase (CAT) gene under the control of SV40 immediate early promoter. CAT gene expression was observed irrespective of the orientation of the CAT gene. These results indicate that the helper-independent recombinant PAV-3 could be used as an expression vector and has potential as a recombinant vaccine vector in pigs.

Adenovirus E3 Proteins↗

The sequence of camelpox virus shows it is most closely related to variola virus, the cause of smallpox.

Camelpox virus (CMPV) and variola virus (VAR) are orthopoxviruses (OPVs) that share several biological features and cause high mortality and morbidity in their single host species. The sequence of a virulent CMPV strain was determined; it is 202182 bp long, with inverted terminal repeats (ITRs) of 6045 bp and has 206 predicted open reading frames (ORFs). As for other poxviruses, the genes are tightly packed with little non-coding sequence. Most genes within 25 kb of each terminus are transcribed outwards towards the terminus, whereas genes within the centre of the genome are transcribed from either DNA strand. The central region of the genome contains genes that are highly conserved in other OPVs and 87 of these are conserved in all sequenced chordopoxviruses. In contrast, genes towards either terminus are more variable and encode proteins involved in host range, virulence or immunomodulation. In some cases, these are broken versions of genes found in other OPVs. The relationship of CMPV to other OPVs was analysed by comparisons of DNA and predicted protein sequences, repeats within the ITRs and arrangement of ORFs within the terminal regions. Each comparison gave the same conclusion: CMPV is the closest known virus to variola virus, the cause of smallpox.

Animals↗