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At least 19 recordsLinked to original sources

Different type of hepatitis B virus (HBV) DNA integrants that may reflect the integration process.

Through analyses of HBV DNA integratns in human cellular DNA, we identified three different integrant types, each of which may reflect the process of primary integrant formation by the viral DNA. The first type, which we call "simple type" consists of integrants found in some hepatocellular carcinomas (HCC's). The structure of the viral genome is simple, and part of it is deleted. The viral cohesive end sequence appears at one of the viral-cellular DNA junctions, and integration has elicited a microdeletion in the target cellular DNA sequence. This structure suggests viral DNA replication intermediates as substrates for integration. Judging from its frequency in HCC, this type may represent the most preferred one, if not all, among the primary integration products. The second type, which we call "complex type" is essentially the same as the first type, except tht the viral genome structure is complex. We considered the possibility that they may have been produced via the same process, using preformed complex viral genomes such as "novel form DNA's" (Rogler and Summers, 1982) as substrates. In cultured fetal hepatocytes, integration of HBV DNA can occur only a few days after infection. Among such integrants, we found a third type integrant, having a simple viral genome, but having a larger cellular DNA deletion. We propose that different forms of viral DNA may be used as substrates in the integration process, and the process is characterized by its eliciting of deletions of different size in the target cellular DNA. The most preferred substrate may be the one producing the simple type integrants, and the most frequently occurring deletion in the target DNA may be the microdeletion.(ABSTRACT TRUNCATED AT 250 WORDS)

Base Sequence

Integration of mini-retroviral DNA: a cell-free reaction for biochemical analysis of retroviral integration.

After retroviral infection of a permissive cell, the viral RNA is reverse-transcribed to make a DNA copy of the viral genome. Integration of this DNA copy into the host genome is a necessary step for efficient viral replication. We have developed a cell-free system for integration of exogenous mini-retroviral DNA. The termini of this linear mini-Moloney murine leukemia virus (MoMLV) DNA are designed to mimic the ends of authentic unintegrated MoMLV DNA. The viral proteins required for integration can be provided either as a cytoplasmic extract of MoMLV-infected NIH 3T3 cells or as disrupted MoMLV particles. Phage lambda DNA serves as the target for integration. Genetic markers present on the mini-MoMLV DNA enable integration events to be detected, and the recombinants recovered, by selection in Escherichia coli. Integration, which occurs at heterogeneous locations in the target DNA, is absolutely dependent on the presence of a source of viral proteins and a divalent cation in the reaction mixture. The fidelity of the integration reaction was confirmed by sequencing the junctions between the integrated MoMLV DNA and adjacent lambda DNA sequence. In each case, as expected for authentic MoMLV DNA integration, a 4-base-pair duplication of target DNA sequence flanked the integrated MoMLV DNA.

Animals

Features of two hepatitis B virus (HBV) DNA integrations suggest mechanisms of HBV integration.

Two integrated hepatitis B virus (HBV) DNA molecules were cloned from two primary hepatocellular carcinomas each containing only a single integration. One integration (C3) contained a single linear segment of HBV DNA, and the other integration (C4) contained a large inverted duplication of viral DNA at the site of a chromosome translocation (O. Hino, T.B. Shows, and C.E. Rogler, Proc. Natl. Acad. Sci. USA 83:8338-8342, 1986). Sequence analysis of the virus-cell junctions of C3 placed the left virus-cell junction at nucleotide 1824, which is at the 5' end of the directly repeated DR1 sequence and is 6 base pairs from the 3' end of the long (L) negative strand. The right virus-cell junction was at nucleotide 1762 in a region of viral DNA (within the cohesive overlap) which shared 5-base-pair homology with cellular DNA. Sequence analysis of the normal cellular DNA across the integration site showed that 11 base pairs of cellular DNA were deleted at the site of integration. On the basis of this analysis, we suggest a mechanism for integration of the viral DNA molecule which involves strand invasion of the 3' end of the L negative strand of an open circular or linear HBV DNA molecule (at the DR1 sequence) and base pairing of the opposite end of the molecule with cellular DNA, accompanied by the deletion of 11 base pairs of cellular DNA during the double recombination event. Sequencing across the inverted duplication of HBV DNA in clone C4 located one side of the inversion at nucleotide 1820, which is 2 base pairs from the 3' end of the L negative strand. Both this sequence and the left virus-cell junction of C3 are within the 9-nucleotide terminally redundant region of the HBV L negative strand DNA. We suggest that the terminal redundancy is a preferred topoisomerase I nicking region because of both its base sequence and forked structure. Such nicking would lead to integration and rearrangement of HBV molecules within the terminal redundancy, as we have observed in both our clones.

Base Sequence

[Genetic study of plasmid integration into yeast chromosomes. IV. Integration of the plasmid pYF91 into different yeast chromosomes].

Integration of the episomic chimeric plasmid pYF91 into yeast chromosomes has been studied. Plasmid insertion into the chromosomes was observed to occur with the frequency of 4 X 10(-8). 379 integrants were selected from the highly unstable (cir0) transformants. The fact of plasmid integration into particular chromosomes was confirmed for 318 integrants. Genetic analysis showed that the plasmid can integrate into the region of LEU2 gene or into another arm of chromosome III (227 integrants), and also into other chromosomes: I, II, IV, V, VI, VII, VIII, IX, XII, XV (91 integrants). It is suggested that integration is the result of recombination between yeast chromosomes and homologous plasmid regions carrying LEU2 gene or Ty element and "delta" sequence.

DNA, Fungal

Development of a multi-copy integration platform in Kluyveromyces marxianus enabled by a computational method for genome-wide identification of multi-copy integration loci.

Multi-copy integration is a core strategy for redirecting metabolic flux toward target compounds. However, its application has been hampered by the absence of methods for systematically identifying native multi-copy genomic loci. To overcome this, we developed a computational procedure for genome-wide identification of such loci. Theoretically, this method is potentially applicable to any genome-sequenced species as it only requires the genomic assembly of the target species as input. Applying the procedure to Kluyveromyces marxianus, we identified four groups of loci (KmCS1-4). Combining these loci-KmCS1-4 and the traditional 26S rDNA-with 14 markers with graded selection strengths, we established a versatile multi-copy integration toolkit comprising 70 plasmids. Each plasmid exhibits a unique integration pattern, collectively forming an integration profile. This profile serves as a manual, enabling users to select appropriate tools tailored to the expression requirements of rate-limiting enzymes in their pathways. Applying representative plasmids exhibiting low-, medium-, and high-copy integration patterns to lycopene biosynthesis modules resulted in lycopene titers of 3.5, 6.8 and 40.5 mg/L, corresponding to 2, 6 and 9 genomic copies, respectively, demonstrating a positive correlation between lycopene titers, genomic copy numbers and integration patterns, which highlights the versatility of the toolkit and its supporting manual. Our study not only provides a broadly applicable methodology for genome-wide identification of multi-copy loci, but also an efficient integration platform for K. marxianus.

Kluyveromyces marxianus

Integration of a small integral membrane protein, M2, of influenza virus into the endoplasmic reticulum: analysis of the internal signal-anchor domain of a protein with an ectoplasmic NH2 terminus.

The M2 protein of influenza A virus is a small integral membrane protein of 97 residues that is expressed on the surface of virus-infected cells. M2 has an unusual structure as it lacks a cleavable signal sequence yet contains an ectoplasmic amino-terminal domain of 23 residues, a 19 residue hydrophobic transmembrane spanning segment, and a cytoplasmic carboxyl-terminal domain of 55 residues. Oligonucleotide-mediated deletion mutagenesis was used to construct a series of M2 mutants lacking portions of the hydrophobic segment. Membrane integration of the M2 protein was examined by in vitro translation of synthetic mRNA transcripts prepared using bacteriophage T7 RNA polymerase. After membrane integration, M2 was resistant to alkaline extraction and was converted to an Mr approximately equal to 7,000 membrane-protected fragment after digestion with trypsin. In vitro integration of M2 requires the cotranslational presence of the signal recognition particle. Deletion of as few as two residues from the hydrophobic segment of M2 markedly decreases the efficiency of membrane integration, whereas deletion of six residues completely eliminates integration. M2 proteins containing deletions that eliminate stable membrane anchoring are apparently not recognized by signal recognition particles, as these polypeptides remain sensitive to protease digestion, indicating that in addition they do not have a functional signal sequence. These data thus indicate that the signal sequence that initiates membrane integration of M2 resides within the transmembrane spanning segment of the polypeptide.

Animals

Retroviral DNA integration directed by HIV integration protein in vitro.

Efficient retroviral growth requires integration of a DNA copy of the viral RNA genome into a chromosome of the host. As a first step in analyzing the mechanism of integration of human immunodeficiency virus (HIV) DNA, a cell-free system was established that models the integration reaction. The in vitro system depends on the HIV integration (IN) protein, which was partially purified from insect cells engineered to express IN protein in large quantities. Integration was detected in a biological assay that scores the insertion of a linear DNA containing HIV terminal sequences into a lambda DNA target. Some integration products generated in this assay contained five-base pair duplications of the target DNA at the recombination junctions, a characteristic of HIV integration in vivo; the remaining products contained aberrant junctional sequences that may have been produced in a variation of the normal reaction. These results indicate that HIV IN protein is the only viral protein required to insert model HIV DNA sequences into a target DNA in vitro.

Animals

Site-specific integration in Saccharopolyspora erythraea and multisite integration in Streptomyces lividans of actinomycete plasmid pSE101.

An 11.3-kilobase-pair plasmid, designated pSE101, exists in Saccharopolyspora erythraea NRRL 2338 as an integrated sequence (pSE101int) at a unique chromosomal location and in the free form in less than an average of 1 copy per 10 chromosomes. The plasmid sequence is missing from S. erythraea NRRL 2359. Restriction maps of the free and integrated forms of pSE101 showed point-to-point correspondence. Plasmid pECT2 was constructed by ligation of pSE101, pBR322, and the gene for thiostrepton resistance (tsr). When introduced by polyethylene glycol-mediated transformation into protoplasts of S. erythraea NRRL 2359, all thiostrepton-resistant regenerants examined were found to carry a single copy of pECT2 in the integrated state at a single chromosomal site. The chromosomal site of pECT2 integration in strain NRRL 2359 (attB) corresponded to the chromosomal location of pSE101int in strain NRRL 2338. The plasmid crossover site (attP) was mapped to the plasmid site that corresponded to the site of interruption of the plasmid sequence in the host carrying pSE101int, indicating that site-specific integrative recombination had occurred. An additional 2.8-kilobase-pair chromosomal sequence homologous to a segment of pSE101 was also observed in strains NRRL 2338 and NRRL 2359. After introduction of pECT2 into Streptomyces lividans, approximately half of the transformants examined were found to carry the plasmid as a stable, autonomously replicating element. The other half carried a single copy of pECT2 as an integrated sequence, but the location of pECT2int in Streptomyces lividans varied from one transformant to another. In each case, integrative crossover used the attP site. A model is proposed to account for the determination of the particular state of pSE101 in Streptomyces lividans.

Actinomycetales

Site-specific integration in Streptomyces ambofaciens: localization of integration functions in S. ambofaciens plasmid pSAM2.

In Streptomyces ambofaciens ATCC 15154, an 11.1-kilobase element, pSAM2, exists as a single integrated copy in the chromosome. In S. ambofaciens 3212 (a derivative of ATCC 15154), pSAM2 exists as a free, circular plasmid as well as an integrated element. BclI fragments from the free form of pSAM2 were cloned into an Escherichia coli plasmid vector. By using gene transplacement methods, the chromosomally integrated form of pSAM2 was marked with a gene coding for apramycin resistance. This enabled us to isolate both a segregant that had lost the integrated pSAM2 element and a cosmid clone containing integrated pSAM2 along with the flanking chromosomal sequences. One of the BclI fragments derived from free pSAM2 was shown to contain all the plasmid-specified information required to direct site-specific recombination in a derivative of S. ambofaciens lacking the resident pSAM2 element as well as in a number of other Streptomyces strains. The attachment sites used by the plasmid and the chromosome in site-specific recombination and the junctions created after integration were cloned and sequenced. Certain structural features in common with other integrating elements in actinomycetes were noted.

Base Sequence

Specific integral dose: a reconsideration of the integral dose concept.

The integral dose represents the total energy deposited by ionizing radiation within a body. Its distribution within normal tissues can be quite variable, depending upon beam energy and radiation technique. A close look at the concept of integral dose in its various forms should be helpful in quantifying the radiation burden borne by healthy tissues outside of the target volume. The integral dose, integral target dose and relative integral target dose will be reviewed, and the concept of specific integral dose will be introduced, using as examples the external irradiation of the urinary bladder employing various energies and techniques, as well as the intracavitary therapy of gynecological cancer using an afterloading apparatus.

Brachytherapy

Activities of human immunodeficiency virus (HIV) integration protein in vitro: specific cleavage and integration of HIV DNA.

Growth of human immunodeficiency virus (HIV) after infection requires the integration of a DNA copy of the viral RNA genome into a chromosome of the host. Here we present a simple in vitro system that carries out the integration reaction and the use of this system to probe the mechanism of integration. The only HIV protein necessary is the integration (IN) protein, which has been overexpressed in insect cells and then partially purified. DNA substrates are supplied as oligonucleotides that match the termini of the linear DNA product of reverse transcription. In the presence of HIV IN protein, oligonucleotide substrates are cleaved to generate the recessed 3' ends that are the precursor for integration, and the cleaved molecules are efficiently inserted into a DNA target. Analysis of reaction products reveals that HIV IN protein joins 3' ends of the viral DNA to 5' ends of cuts made by IN protein in the DNA target. We have also used this assay to characterize the sequences at the ends of the viral DNA involved in integration. The assay provides a simple screen for testing candidate inhibitors of HIV IN protein; some such inhibitors might have useful antiviral activity.

Base Sequence

Virulence plasmids of enteroinvasive Escherichia coli and Shigella flexneri integrate into a specific site on the host chromosome: integration greatly reduces expression of plasmid-carried virulence genes.

The ability of enteroinvasive Escherichia coli and Shigella flexneri to cause disease depends on the presence of a large virulence plasmid (pINV). In this report we show that pHN280, the pINV of the O135:K-:H- enteroivasive strain E. coli HN280, and pWR100, the pINV of S. flexneri serotype 5 strain M90T, are able to integrate into a specific site on the host chromosome. pINV-integrated HN280 and M90T strains required methionine (Met-) to grow in minimal medium, were noninvasive, did not produce contact-mediated hemolysin, and had lost the ability to bind Congo red (Crb-) at 37 degrees C. Immunoblots of whole bacterial extracts from pHN280-integrated HN280 derivatives revealed that integration severely reduced the expression of ipa and virG (icsA) plasmid genes. Met- HN280 and M90T derivative strains spontaneously generated Met+ revertants that either contained excised forms of pINV or had lost pINV. Restriction analysis of excised pINVs showed that they either were virtually identical to parental pINVs (precise excision) or had suffered some deletion (imprecise excision). Precisely excised pINVs expressed the full pattern of virulence, whereas imprecisely excised pINVs were always Crb- and noninvasive. The revertion to Met+ was shown to be recA dependent, indicating that homologous plasmid and chromosomal DNA sequences are involved in the integration-excision process. The maintainance of pINV through integration and downregulation of its virulence genes may represent an advantageous mechanism for enteroinvasive bacteria, particularly when they are outside host cells and/or have to face adverse environmental conditions.

Animals

Retrovirus integration and chromatin structure: Moloney murine leukemia proviral integration sites map near DNase I-hypersensitive sites.

The chromatin conformation of mouse genome regions containing Moloney murine leukemia proviral intergration sites in two Mov mouse strains and randomly selected integration sites in virus-infected mouse 3T3 fibroblasts was analyzed. All integrations have occurred into chromosomal regions containing several DNase-hypersensitive sites, and invariably the proviral integration sites map within a few hundred base pairs of a DNase-hypersensitive site. The probability that this close association between proviral integration sites and DNase-hypersensitive sites was due to chance was calculated to be extremely low (2 X 10(-4]. Because the proviral integrations analyzed were not selected for an altered phenotype, our results suggest that DNase-hypersensitive regions are preferred targets for retrovirus integration.

Animals

The Water Pressure Integrity Test--a new integrity test for hydrophobic membrane filters.

Sterilizing grade hydrophobic filters are used for the sterile filtration of gases in pharmaceutical and biological applications. Until now the integrity of these membrane filters and their ability to retain bacteria, has been correlated to a solvent based nondestructive integrity test. Current methods use solvents to wet the membranes in order to perform bubble point and diffusion integrity tests. Solvent based integrity tests make it difficult to test in situ following sterilization because of the risk of downstream solvent contamination. A newly developed method, the Water Pressure Integrity Test (WPIT), allows for the integrity testing of hydrophobic filters eliminating the problems associated with traditional test methods employing solvents. A prime advantage of WPIT is that it may be performed in situ post sterilization without any downstream manipulations. The test has been directly correlated to the retention of bacterial challenges. Data will be provided to show the reliability and sensitivity of this easy to perform test.

Evaluation Studies as Topic

Non-homologous integration of transforming vectors in the fungus Podospora anserina: sequences of junctions at the integration sites.

Transformation of the ura5-6 mutant strain of Podospora anserina with a recombinant vector carrying the ura5+ gene often results in the integration of the transforming plasmid by non-homologous recombination outside of the genomic ura5 locus. To investigate the mechanism of such integration, we rescued the integrated plasmid from three transformants. In two cases, the rescued plasmid was highly altered compared with the original transforming vector. We cloned the junctions between plasmidic DNA and genomic DNA of the transformants and determined their nucleotide sequences. It was found that there was little homology between plasmidic and genomic DNA sequences. Moreover, in all cases deletions of plasmid sequences at the integration site had occurred. These rearrangements can be explained by the formation of multimeric plasmids prior to integration.

Ascomycota

The distinction between integral and separable dimensions: evidence for the integrality of pitch and loudness.

Six experiments are reported that investigated the reality and generality of dimensional integrality (Garner, 1974a) by evaluating whether the auditory dimensions of pitch and loudness are psychologically privileged and whether they combine in an integral fashion. In Experiment 1 we psychophysically scaled the dimensions to ensure that, within the stimulus range used, the perceived value on each dimension would remain constant in the face of variation on the other dimension. In Experiments 2 through 4 we assessed performance by using the converging operations by which Garner defined integrality and separability. Experiment 2 showed that in speeded classification, pitch and loudness lead to facilitation with redundant variation and interference with orthogonal variation. Experiment 3 showed that unspeeded classifications are guided predominantly by overall similarity. Experiment 4 established that the better-fitting metric by which multidimensional similarity is appreciated is Euclidean rather than city block. These results suggest that the dimensions of pitch and loudness combine in an integral fashion. In Experiments 5 and 6 we investigated whether the dimensions of pitch and loudness have a privileged status by assessing the impact of rotating the dimensional axes on performance in a speeded sorting task. Experiment 5 looked at six alternative dimensional orientations to pitch and loudness. If anything, rotating the dimensional axes increased the amount of interference in filtering. In Experiment 6 we assessed an alternative dimensional description of the stimuli based on the dimensions of volume and brightness. We found greater interference when the stimuli varied along the dimensions of volume and brightness than when they varied along the dimensions of pitch and loudness. The fact that the least interference is observed when the stimuli vary along the dimensions of pitch and loudness suggests that these dimensions are the more psychologically valid ones. These findings indicate that integrality is not a "myth," that is, merely a case of psychophysical mismatch. Instead, dimensions that are psychologically real are sometimes processed in a unitary fashion.

Acoustic Stimulation