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Host range of mink cell focus-inducing viruses.

The species host range of the recombinant, mink cell focus-inducing (MCF) class of murine retroviruses was determined in vitro and compared to the host range properties of xenotropic and amphotropic murine viruses. In contrast to xenotropic and amphotropic viruses, MCF viruses were restricted in the number of mammalian species they would infect. Cell lines from mouse, rat, mink, ferret, and cat were susceptible to MCF infection and certain virus isolates could infect rabbit cells, but cells from Chinese hamster, buffalo, bat, dog, monkey, and human were resistant to infection by most MCF viruses. The resistance of some of the latter cells was abrogated by phenotypic mixing with xenotropic virus, which demonstrated that MCF species host range was mediated by virus envelope-cell surface interaction. The host range uniformity of the various MCF isolates and the unique species distribution of sensitivity are consistent with the conclusion from other evidence that the MCF viruses comprise a class distinct from xenotropic and amphotropic viruses.

Animals↗

Host range restrictions of oncogenes: myc genes transform avian but not mammalian cells and mht/raf genes transform mammalian but not avian cells.

The host range of retroviral oncogenes is naturally limited by the host range of the retroviral vector. The question of whether the transforming host range of retroviral oncogenes is also restricted by the host species has not been directly addressed. Here we have tested in avian and murine host species the transforming host range of two retroviral onc genes, myc of avian carcinoma viruses MH2 and MC29 and mht/raf of avian carcinoma virus MH2 and murine sarcoma virus MSV 3611. Virus vector-mediated host restriction was bypassed by recombining viral oncogenes with retroviral vectors that can readily infect the host to be tested. It was found that, despite high expression, transforming function of retroviral myc genes is restricted to avian cells, and that of retroviral mht/raf genes is restricted to murine cells. Since retroviral oncogenes encode the same proteins as certain cellular genes, termed protooncogenes, our data must also be relevant to the oncogene hypothesis of cancer. According to this hypothesis, cancer is caused by mutation of protooncogenes. Because protooncogenes are conserved in evolution and are presumed to have conserved functions, the oncogene hypothesis assumes no host range restriction of transforming function. For example, mutated human proto-myc is postulated to cause Burkitt lymphoma, because avian retroviruses with myc genes cause cancer in birds. But there is no evidence that known mutated protooncogenes can transform human cells. The findings reported here indicate that host range restriction appears to be one of the reasons (in addition to insufficient transcriptional activation) why known, mutated protooncogenes lack transforming function in human cells.

Animals↗

[Study on the nucleic acid of E. coli bacteriophage with broad host range and its sterilization effect to sewage samples from the environment].

OBJECTIVE: To study the change of nucleic acid sequence and the germicidal effect of an E. coli bacteriophage with broad host range isolated from hospital sewage as well as to study the mechanism of phage host specificity and the effect of killed bacteria by phage-disinfectant to the samples from sewage water. METHODS: To extract the nucleic acid from phage f(2) and phage with broad host range using anti-serum-carbamidine hydrochloride assay. Purity with agarose gel electrophoresis was then evaluated. Differences of nucleic acid sequence between phage f(2) and phage with broad host range with reverse transcription-polymerase chain reaction (RT-PCR) and random amplified polymorphic DNA (RAPD)-PCR were also comparing and analysed. Through observing the germicidal test of phage f(2) and phage with broad host range to samples from environment, different sterilization effects between the two phages were compared. RESULTS: Analystic test for nucleic acid revealed that the two phages both belonged to 6000 bp, single-stranded RNA bacteriophage. Significant differences in their specificity of RAPD-PCR and RT-PCR were found during the changed of host range; with 26 RAPD-cDNA differential fragments found that in two phages RAPD-PCR products. The RT-PCR product of phage f(2) was 450 bp cDNA fragment, but the phage with broad host range did not show PCR product. Treating the sewage water with phage under broad host range, the germicidal test showed that the cleaning rate of E. coli bacteria and phage f(2) in water samples from environment could reach 36.75% - 56.28%, 30.84% - 47.96%, 19.19% - 35.06% and 13.05% - 27.85%, respectively. CONCLUSION: The cleaning rates to E. coli and bacteria by phage with broad host range were obviously higher than phage f(2) (P = 0.000). Analytic test for nucleic acid indicated that host-specific lytic effect of phage with broad host range had been changed at genetic level.

Bacteriophages↗

Isolation of a series of novel variants of murine mammary tumor viruses with broadened host ranges.

We have previously isolated mouse mammary tumor virus (MMTV) host range variants by serial virus passage in feline cells. These variants productively infect cells of a broad range of species but replicate most efficiently in feline cells. We report here the isolation of a series of novel MMTV host range variants that have the ability to replicate with high efficiency in murine, rat, canine and human cells, respectively; these variants were isolated by serial virus passage in cells of each respective species. These new variants, furthermore, all retained their ability to efficiently replicate in feline cells, and each exhibited unique host range properties. The novel MMTV variants obtained from murine, rat, feline, canine, and human cells showed no overt evidence of recombination with endogenous type-C viruses in that they retained their antigenic reactivities in group-specific radioimmunoassays for MMTV polypeptides, and were unreactive for type-C virus proteins when tested by radioimmunoassays and DNA polymerase assays. These novel MMTV host range variants now broaden the spectrum of studies that can be undertaken involving MMTV replication and the initiation and promotion of virus-mediated mammary cell transformation.

Animals↗

Plasmid host-range: restrictions to F replication in Pseudomonas.

Host-range, a fundamental property of a bacterial plasmid, is primarily determined by the plasmid replication system. To investigate the basis of the restricted host-range of the well-studied F-plasmid of Escherichia coli, we characterized in vitro the interactions of the host DnaA initiation protein and DnaB helicase from Pseudomonas aeruginosa and Pseudomonas putida with the replication origin, oriS, and initiation protein, RepE, of the RepFIA replicon. The results presented here show that a pre-priming complex can form at the F-origin with the replication proteins from the non-native hosts in the presence of RepE. However, RepE cannot form a stable complex with DnaB of P. aeruginosa or P. putida but does stably interact with E. coli DnaB. This unstable association may affect the ability of F to replicate in Pseudomonas. In addition, replication studies in vivo suggest that inefficient expression of the RepE initiation protein from its native promoter in Pseudomonas is a factor in restricting its host-range. This, however, is not the only barrier to F replication, as mini-F derivatives with an alternative promoter for RepE expression do not replicate in P. putida and are not stably maintained in P. aeruginosa.

Adenosine Triphosphatases↗

Simian virus 40 large T antigen host range domain functions in virion assembly.

The simian virus 40 (SV40) T antigen host range mutants dl1066 and dl1140 display a postreplicative block to plaque formation which suggests a novel role for T antigen late in the viral life cycle. The host range mutants dl1066 and dl1140 are able to grow in and plaque on BSC but not on CV1 monkey kidney cells, a normally permissive host. Previous work showed that in CV1 cells infected with dl1066 and dl1140, levels of viral DNA replication and of late capsid protein accumulation were only slightly reduced and the failure to accumulate agnoprotein was not likely to be the major factor responsible for the mutants' growth defect. Here we show that the host range mutants are defective in the assembly of viral particles. SV40 assembly proceeds as the progressive conversion of 75S viral chromatin complexes to 200S-240S assembled virions. When virus-infected cell extracts are separated on 5 to 40% sucrose gradients, wild-type extracts show the greatest accumulation of viral late protein in the 200S-240S fractions corresponding to the assembled virus peak and lesser amounts in the 75S-150S fractions corresponding to immature assembly intermediates. The host range mutants dl1066 and dl1140 grown in nonpermissive CV1 cells, however, failed to assemble any appreciable amounts of mature 200S-240S virions and accumulate 75S intermediates, whereas in permissive BSC cells, levels of assembly were more slightly reduced than those of the wild type. Analysis of the protein composition of gradient fractions suggests that SV40 assembly proceeds by a mechanism similar to that proposed for polyomavirus and suggests that the host range blockage may result from a failure of such mutants to add VP1 to 75S assembly intermediates.

Animals↗

Frequent conjugative transfer accelerates adaptation of a broad-host-range plasmid to an unfavorable Pseudomonas putida host.

IncP-1 plasmids are known to be promiscuous, but it is not understood if they are equally well adapted to various species within their host range. Moreover, little is known about their fate in bacterial communities. We determined if the IncP-1beta plasmid pB10 was unstable in some Proteobacteria, and whether plasmid stability was enhanced after long-term carriage in a single host and when regularly switched between isogenic hosts. Plasmid pB10 was found to be very unstable in Pseudomonas putida H2, and conferred a high cost (c. 20% decrease in fitness relative to the plasmid-free host). H2(pB10) was then evolved under conditions that selected for plasmid maintenance, with or without regular plasmid transfer (host-switching). When tested in the ancestral host, the evolved plasmids were more stable and their cost was significantly reduced (9% and 16% for plasmids from host-switched and nonswitched lineages, respectively). Our findings suggest that IncP-1 plasmids can rapidly adapt to an unfavorable host by improving their overall stability, and that regular conjugative transfer accelerates this process.

Fresh Water↗

Host range studies of FLOPC-1 murine myeloma C particles.

The host range of the C particle produced by FLOPC-1 myeloma cells, FLOPC-1 murine myeloma-associated virus (FL-MuMAV), was assessed in terms of its ability to productively infect and/or induce new viral antigens in a variety of different cell lines. Production of C particle-like structures by cells exposed to FL-MuMAV) was determined by incorporation of [3H]uridine into particles with a density of 1.16 g/ml and/or measurement of RNA-dependent DNA polymerase activity in concentrated culture medium. to FL-MuMAV was capable of infecting NIH/3T3, normal rat kidney (NRK) cell, BALB/c 3T3, and the A31 clone of BALB/3T3 cells but not rabbit cell line, SIRC. Thus, it is an N, B-tropic murine virus as replication in NRK cells has been shown not to delineate a group of murine viruses with a separate host range (M. M. Lieber, C. J. Sherr, and G. J. Todero, 1974). Further neoantigens, reactive with anti-FL-MuMAV serum, were detected on infected cells. Production of the MuMAV-like particle and MuMAV-associated cell antigens in infected NIH/3T3 and NRK cells persisted for three subcultures. The limited production could not be explained by the lack of an RNA-dependent DNA polymerase or high-molecular-weight RNA as the particles possessed both of these properties. The particles produced by infected NIH/3T3 or NRK cells were antigenically and physicochemically similar to FL-MuMAV and not K-MuLV. The MuMAV-like particles produced by infected NIH/3T3 were capable of limited replication in NIH/3T3 and and BALB/3T3 cells, whereas NRK-MuMAV replicated for a limited period in NIH/3T3, NRK, and SIRC cells; i.e., they had a different host range than FL-MuMAV. The particles produced by infected BALB/3T3 and A31 cells had the same host range as FL-MuMAV. In certain situations, isotopically labeled particles with a density of 1.16 g/ml were produced which appeared to lack RNA-dependent DNA polymerase.

Animals↗

Purified feline and canine transferrin receptors reveal complex interactions with the capsids of canine and feline parvoviruses that correspond to their host ranges.

The cell infection processes and host ranges of canine parvovirus (CPV) and feline panleukopenia virus (FPV) are controlled by their capsid interactions with the transferrin receptors (TfR) on their host cells. Here, we expressed the ectodomains of wild-type and mutant TfR and tested those for binding to purified viral capsids and showed that different naturally variant strains of the viruses were associated with variant interactions with the receptors which likely reflect the optimization of the viral infection processes in the different hosts. While all viruses bound the feline TfR, reflecting their tissue culture host ranges, a naturally variant mutant of CPV (represented by the CPV type-2b strain) that became the dominant virus worldwide in 1979 showed significantly lower levels of binding to the feline TfR. The canine TfR ectodomain did not bind to a detectable level in the in vitro assays, but this appears to reflect the naturally low affinity of that interaction, as only low levels of binding were seen when the receptor was expressed on mammalian cells; however, that was sufficient to allow endocytosis and infection. The apical domain of the canine TfR controls the specific interaction with CPV capsids, as a canine TfR mutant altering a glycosylation site in that domain bound FPV, CPV-2, and CPV-2b capsids efficiently. Enzymatic removal of the N-linked glycans did not allow FPV binding to the canine TfR, suggesting that the protein sequence difference is itself important. The purified feline TfR inhibited FPV and CPV-2 binding and infection of feline cells but not CPV-2b, indicating that the receptor binding may be able to prevent the attachment to the same receptor on cells.

Animals↗

Analysis of nonpolar insertion mutations in the trfA gene of IncP plasmid RK2 which affect its broad-host-range property.

Replication of broad-host-range plasmid RK2 requires the protein product(s) of the plasmid-encoded trfA gene to initiate replication at oriV, the vegetative replication origin. The trfA gene contains two translational starts which direct translation of two polypeptides, of 382 and 285 amino acids, which differ by the 97 amino acids at their N-terminus. Nonpolar insertions which abolish expression of the larger TrfA polypeptide but otherwise retain the trfA gene's normal expression signals severely reduce plasmid replication efficiency in Pseudomonas aeruginosa and to a lesser extent in Pseudomonas putida, but have very little effect in Escherichia coli. This indicates that the organization of the trfA gene, producing two polypeptides products, plays an important part in the broad-host-range of plasmid RK2 by providing a degree of flexibility in the way the plasmid's replication system interacts with host biochemistry.

Conjugation, Genetic↗

Differentiation of lethal and nonlethal, kor-regulated functions in the kilB region of broad host-range plasmid RK2.

In broad host-range plasmid RK2, several kil loci (kilA, kilB, kilC, kilE) and the replication initiator gene (trfA) are regulated by combination of kor determinants (korA, korB, korC, korE) in a regulatory network known as the kil-kor region. Although the kil determinants are not essential for replication, their coregulation with trfA suggests an involvement in plasmid maintenance or host-range. Plasmids carrying the cloned kilB region of RK2 cannot be maintained in the absence of korB owing to two phenotypically distinguishable, kor-regulated determinants: (1) kilB1 (kilD), which can be controlled by korA or korB, and (2) kilB2, which requires korB for control. In this study, we have determined the nature of the functions responsible for the kor-sensitive phenotypes of the kilB region. We found that insertion of transcription terminators within or downstream of the trfA operon allows plasmids carrying the kilB1 portion of the kilB region to be maintained in cells lacking korA or korB. In addition, mutants of the kilB1 region that can be maintained in the absence of korA and korB have alterations in the trfA promoter. These results show that the phenotype of the cloned kilB1 region in kor-deficient cells depends on trfA transcription but does not involve expression of any gene of the trfA operon. Therefore, the kilB1 determinant is not a structural gene. The phenotype results from entry of trfA-initiated transcription into adjacent sequences of the plasmid vector. The ability to block the kilB2 phenotype with transcriptional terminators allowed us to show conclusively that the kilB2 determinant is a host-lethal gene (klbA) whose regulation is dependent on korB. These findings have implications for the structure of the basic replicon of RK2.

Base Sequence↗

Host range expansion of Autographa californica nuclear polyhedrosis virus (NPV) following recombination of a 0.6-kilobase-pair DNA fragment originating from Bombyx mori NPV.

We have isolated hybrid baculoviruses of Bombyx mori nuclear polyhedrosis virus (BmNPV) and Autographa californica NPV (AcNPV) capable of replicating in both BmN (not susceptible to AcNPV) and SF-21 (not susceptible to BmNPV) cells (A. Kondo and S. Maeda, J. Virol. 65:3625-3632, 1991). Repeated backcross infection of one of these recombinant isolates with AcNPV generated eh-AcNPV, a virus with restriction endonuclease patterns of genomic DNA nearly identical to those of AcNPV but capable of replicating in both BmN and SF-21 cells, i.e., host range expanded. Expanded host range viruses were also isolated following cotransfection of AcNPV DNA with eh-AcNPV DNA cleaved with either HindIII or PstI. Subsequent cotransfection of AcNPV DNA with plasmids from an eh-AcNPV DNA fragment library identified an 11-kbp HindIII fragment that could expand the host range of AcNPV. Subcloning and cotransfection analyses localized a 572-bp SacI-HindIII fragment within this 11-kbp fragment which could alone expand the host range of AcNPV. Mapping and nucleotide sequencing analysis revealed that this fragment was identical to the corresponding 572-bp fragment (BmScH) of BmNPV. Furthermore, this fragment originated from the coding region of the putative DNA helicase gene. Cotransfection of AcNPV DNA with BmScH also generated a host range-expanded virus, eh2-AcNPV. These results indicated that the expanded host range characteristics of eh2-AcNPV were solely the result of recombination within the coding region of the putative DNA helicase gene.

Amino Acid Sequence↗

Physical mapping of the Fv-1 tropism host range determinant of BALB/c murine leukemia viruses.

The murine leukemia viruses (MuLVs) have different host ranges and were originally designated N-tropic and B-tropic if they replicated preferentially in vitro on NIH and BALB/c fibroblasts, respectively. It was later found that N-tropic MuLVs were in fact restricted in BALB/c cells, that B-tropic MuLVs were restricted in NIH cells, and that both viruses were restricted in (BALB X NIH) F1 cells. A single gene, Fv-1, with two alleles, Fv-1b and Fv-1n, determines this dominant restriction. A virus-encoded protein seems to carry the viral host range determinant which is recognized by the Fv-1 gene product. To map the viral DNA sequences encoding this determinant, we constructed viral DNA recombinants in vitro between the cloned infectious viral DNA genomes from BALB/c N-tropic and B-tropic MuLVs. Infectious recombinant MuLVs were recovered by microinjecting these recombinant DNAs into murine Fv-1- SC-1 cells and were subsequently tested in vitro for their host ranges (N- or B-tropic). We found that a short 302-base pair 5'-end fragment was necessary and sufficient to confer a specific host range to a recombinant. Our sequencing data revealed that this fragment codes for amino acid sequences in gag p30. They also showed that only two consecutive amino acid differences, Gln-ArgN- and Thr-GluB-, in p30 are responsible for the N- and B-tropic host ranges of the BALB/c MuLVs, respectively. Therefore, it appears that the Fv-1b and Fv-1n gene products can discriminate between these two p30 amino acid sequences.

Amino Acid Sequence↗

Host range conferred by the virulence-specifying plasmid of Agrobacterium tumefaciens.

The host range of Agrobacterium tumefaciens 1D1109, known to induce crown gall only on grapevine (Vitis spp.), was extended to include many plant species by transferring a tumor-inducing plasmid (pTi) from strain 1D1, a broad-host-range pathogen. The pTi plasmid was mobilized by the conjugative plasmid pRK2, which was inserted into 1D1 by mating with Escherichia coli J53(pRK2). The resulting transconjugants were screened for their ability to induce crown gall tumors on hosts other than grapevine by inoculation into sunflower. Transconjugants that were virulent on sunflower were then tested on 36 different host plants and compared with host-limited strain 1D1109 and the donor strain. Two transconjugants induced tumors on the same 28 plant species as those of the original plasmid donor 1D1(pRK2) (pTi). These results show that pRK2 promoted transfer of the pTi plasmid and suggest that the pTi plasmid rather than the A. tumefaciens chromosome determined the host range of the pathogen. Insertion of pRK2 alone did not extend the host range of strain 1D1109. Insertion of pS-a into A. tumefaciens 1D1 by mating with E. coli J53-1 (pS-a) resulted in the concomitant loss of pTi and virulence. There appears to be incompatibility between pTi and pS-a.

Conjugation, Genetic↗

Indoleacetic acid complementation and its relation to host range specifying genes on the Ti plasmid of Agrobacterium tumefaciens.

Host range variations were noted when 23 wild-type strains of Agrobacterium tumefaciens were tested on 27 different plant species. Because we have shown previously that host range specificity is conferred by the pTi plasmid, these variations in host specificity implicated genetic differences among pTi plasmids within the A. tumefaciens population that was tested. Host specificity was independent of the type of opine utilized and biotype of the strain used. These data suggested that separate genetic determinants operate for host specificity. This hypothesis was confirmed by Tn5 mutagenesis of the pTi plasmid, which generated mutants affected in host specificity. The regions of host specifying genes were located by displacement analysis of mutant pTi-plasmid-DNA restriction fragments. There are at least two sites on the pTiC58 plasmid: one within the T-region and the other about 75-77 kb to the right of this region. Mutations within the T-region were chemically complemented by indoleacetic acid, which restored the host range of the mutants. Such complementations were not observed with mutants outside the T-region.

Genes, Bacterial↗

Comparison of T-DNA oncogene complements of Agrobacterium tumefaciens tumor-inducing plasmids with limited and wide host ranges.

The T-DNA oncogene complements of the limited-host-range tumor-inducing plasmid pTiAg63 and the wide-host-range plasmid pTiA6 were compared. The resulting data indicate that pTiAg63 has DNA sequences related to most of the genes encoded by the oncogene region, the TL-DNA, of pTiA6 and that these sequences are divided between two T-DNA regions, the TA-DNA, which encoded sequences related to pTiA6 genes 4 (the cytokinin independence gene) and 6a, as well as to a pTiA6 TL-DNA fragment that encoded gene 6b and a portion of gene 3, and the TB-DNA, which encoded sequences related to genes 1 and 2 (the auxin independence genes). Tumor tissues of Nicotiana rustica incited by Agrobacterium tumefaciens harboring either pTiA6 or pTiAg63 grew axenically in vitro on phytohormone-free medium. The morphologies of the tissues, however, differed; whereas those incited with pTiA6 grew as loose, friable, unorganized callus, the tumors incited by pTiAg63 grew as clumps of rootlike structures. Thus, the T-DNA oncogene complements of these plasmids were not equivalent. The results are discussed in relation to the A. tumefaciens host range.

Base Sequence↗

Insertion mutations in the promiscuous IncP-1 plasmid R18 which affect its host range between Pseudomonas species.

Fifty-one host range mutants of the promiscuous plasmid R18 were isolated by Tn7 insertion mutagenesis by using Pseudomonas aeruginosa as the permissive, and P. stutzeri as the nonpermissive, host. Endonuclease cleavage mapping of 40/51 mutants showed that 37 mutations mapped to kilobase coordinates 40.3-43.8 in the two overlapping genes encoding plasmid DNA primase. Thus by this procedure it has been possible readily to isolate a large number of primase mutants. The majority of these mutations mapped to the overlapping DNA whereas a few also mapped to the nonoverlap region encoding the larger 118-kDa polypeptide. Among these mutants were four which had long deletions within the overlapping segment and extending to varying lengths anticlockwise of it. The genetic defect in these mutants has been correlated with greatly reduced in vitro primase enzyme activity. The primase mutations drastically affected the mutant's ability to mobilize a nonconjugative, wide-host-range IncP-4(Q) plasmid from P. aeruginosa to P. stutzeri although mobilization within P. aeruginosa was affected to a lesser degree. Other insertion mutations were mapped to the regions of plasmid origin of transfer (oriT) and origin of replication (oriV), but their physical location was different to previously identified similar mutations obtained using Escherichia coli as the nonpermissive host. Their physically distinct locations were correlated with differences in their transmissibility from P. aeruginosa into enteric bacterial species and into other Pseudomonas species.

Chromosome Mapping↗

Molecular basis of host range variation in avian retroviruses.

Previous genetic analysis has localized the region of the Rous sarcoma virus (RSV) env gene responsible for host range specificity to that encoding the middle one-third of gp85. To better understand the host range determinants, the relevant regions of the genomes of infectious molecular clones of the transformation-defective Prague strain of RSV, subgroup B (Pr-RSV-B) and Rous-associated virus 0 (RAV-0) (subgroup E) were sequenced and compared with the sequence of Pr-RSV-C. This comparative analysis identified two variable regions of low amino acid sequence homology flanked by highly conserved amino acid sequences. The first variable region (hr1) begins at base 5654 in the Pr-RSV-C sequence and encodes 32 amino acids. The second variable region (hr2) begins at base 5846 and encodes 27 amino acids. To test the role of the variable regions in host range specificity, we determined the sequence of this region of the env gene of NTRE-4, a recombinant virus between Pr-RSV-B and RAV-0 which exhibits an extended host range. This analysis revealed that the recombinant subgroup-encoding region of NTRE-4 is composed of 200 bases of RAV-0 sequence, including hr2, flanked by sequences which are otherwise of Pr-RSV-B origin. This study indicates that hr1 and hr2 are the domains of gp85 responsible for host range determination in avian retroviruses.

Amino Acid Sequence↗