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Evidence that there exist four classes of RNA tumor viruses which encode proteins with associated tyrosine protein kinase activities.

The transforming protein of Rous sarcoma virus, p60src, the Abelson virus protein, p120, and the Y73 virus protein, p90, all have associated tyrosine protein kinase activities in vitro. Possible structural homology between these functionally related proteins was investigated by two-dimensional analysis of both methionine-containing and phosphate-containing tryptic peptides derived from biosynthetically labeled proteins. Marked differences were found between the maps of both [35S]methionine-labeled and 32P-labeled tryptic peptides. This suggests that the transforming gene of Rous sarcoma virus and the putative transforming genes of Abelson virus and Y73 virus are different. In addition, each of these genes has been shown previously to be unrelated to the putative transforming gene of Fujinami sarcoma virus, another virus which encodes a protein with associated tyrosine protein kinase activity. Therefore, it appears that there exist at least four distinct classes of functionally related RNA tumor viruses. Analysis of phosphorylated tryptic peptides did, however, reveal homology between one of the two phosphotyrosine-containing tryptic peptides of p90 of Y73 virus and the single phosphotyrosine-containing tryptic peptide of p60src of Rous sarcoma virus. Comigration of these two peptides in several different buffers and the identical mobility of their phosphorylated cleavage products after secondary digestion with protease V8 of Staphylococcus aureus indicated that p60src and p90 contain an identical site of tyrosine phosphorylation in vivo. The results are discussed with respect to the evolution of RNA tumor viruses which encode proteins with associated tyrosine protein kinase activities and the limitations of analysis of detecting homology between genes by both molecular hybridization and peptide mapping.

Abelson murine leukemia virus↗

Evolution and modes of transmission of RNA tumor viruses. Parke-Davis Award lecture.

Most vertebrates contain sets of gene sequences (virogenes) which are an integral part of the chromosomal DNA and which can code, in some instances, for the production of Type C RNA tumor viruses. These genes are transmitted from parent to progeny along with other cellular genes, and their activation from a normally reressed state may be part of the mechanism by which RNA tumor viruses produce cancer. Isolates of endogenous genetically transmitted baboon Type C viruses are morphologically and biochemically related to other mammalian Type C viruses but can clearly be distinguished from the other groups (mouse, rat, cat, etc.) by immunologic and nucleic acid hybridization criteria. Within the primates, Type C viral gene sequences have evolved as the species have evolved, with virogenes from the most closely related genera and families showing the most sequence homology; all higher primate, including man, however, do have detectable virogene sequences in their normal tissues. Type C viruses have also been transferred under natural conditions between species only remotely related phylogenetically. The results show three clear examples where viral genes from one group of animals have become incorporated into the germ line of genetically distant groups of animals (inheritance of acquired genes). Infectious Type C viruses of primates, distinct from the endogenous primate virus group, have also been isolated (woolly monkey and gibbon isolates) and can be shown to produce tumors in other primates. Related viral information (nucleic acid sequences, enzymes, and antigens) have been reported in human tumors. The significance of infectious and/or genetically transmitted viruses in naturally occurring cancer is a major focus of current research. The presence of genetically transmitted viral genes in so many vertebrate species and the evidence that they have been conserved in several distinct vertebrate lineages suggests that they may provide some normal function(s) advantageous to the species carrying them and that their potential to cause cancers is a pathologic manifestation of normal, as yet undefined, physiologic processes.

Animals↗

RNA virus mutations and fitness for survival.

RNA viruses exploit all known mechanisms of genetic variation to ensure their survival. Distinctive features of RNA virus replication include high mutation rates, high yields, and short replication times. As a consequence, RNA viruses replicate as complex and dynamic mutant swarms, called viral quasispecies. Mutation rates at defined genomic sites are affected by the nucleotide sequence context on the template molecule as well as by environmental factors. In vitro hypermutation reactions offer a means to explore the functional sequence space of nucleic acids and proteins. The evolution of a viral quasispecies is extremely dependent on the population size of the virus that is involved in the infections. Repeated bottleneck events lead to average fitness losses, with viruses that harbor unusual, deleterious mutations. In contrast, large population passages result in rapid fitness gains, much larger than those so far scored for cellular organisms. Fitness gains in one environment often lead to fitness losses in an alternative environment. An important challenge in RNA virus evolution research is the assignment of phenotypic traits to specific mutations. Different constellations of mutations may be associated with a similar biological behavior. In addition, recent evidence suggests the existence of critical thresholds for the expression of phenotypic traits. Epidemiological as well as functional and structural studies suggest that RNA viruses can tolerate restricted types and numbers of mutations during any specific time point during their evolution. Viruses occupy only a tiny portion of their potential sequence space. Such limited tolerance to mutations may open new avenues for combating viral infections.

Antiviral Agents↗

Virus evolution: fitting lifestyles to a T.

The structure of a double-stranded RNA virus outer shell has revealed unexpected similarities with virions of positive-strand RNA viruses. These similarities intersect with emerging parallels in RNA replication to create intriguing evolutionary possibilities.

Biological Evolution↗

Unusual distribution of mutations associated with serial bottleneck passages of human immunodeficiency virus type 1.

Repeated bottleneck passages result in fitness losses of RNA viruses. In the case of human immunodeficiency virus type 1 (HIV-1), decreases in fitness after a limited number of plaque-to-plaque transfers in MT-4 cells were very drastic. Here we report an analysis of entire genomic nucleotide sequences of four HIV-1 clones derived from the same HIV-1 isolate and their low-fitness progeny following 7 to 15 plaque-to-plaque passages. Clones accumulated 4 to 28 mutations per genome, with dominance of A --> G and G --> A transitions (57% of all mutations) and 49% nonsynonymous replacements. One clone-but not three sibling clones-showed an overabundance of G --> A transitions, evidencing the highly stochastic nature of some types of mutational bias. The distribution of mutations along the genome was very unusual in that mutation frequencies in gag were threefold higher than in env. Particularly striking was the complete absence of replacements in the V3 loop of gp120, confirmed with partial nucleotide sequences of additional HIV-1 clones subjected to repeated bottleneck passages. The analyses revealed several amino acid replacements that have not been previously recorded among natural HIV-1 isolates and illustrate how evolution of an RNA virus genome, with regard to constant and variable regions, can be profoundly modified by alterations in population dynamics.

Base Sequence↗

Extreme heterogeneity in populations of vesicular stomatitis virus.

Vesicular stomatitis virus (VSV) sequence evolution and population heterogeneity were examined by T1 oligonucleotide mapping. Individual clones isolated from clonal pools of wild-type Indiana serotype VSV displayed identical T1 maps. This was observed even after one passage at high concentrations of the potent viral mutagen 5-fluorouracil. Under low-multiplicity passage conditions, the consensus T1 fingerprint of this virus remained unchanged after 523 passages. Interestingly, however, individual clones from this population (passage 523) differed significantly from each other and from consensus sequence. When virus population equilibria were disrupted by high-multiplicity passage (in which defective interfering particle interference is maximized) or passage in the presence of mutagenic levels of 5-fluorouracil, rapid consensus sequence evolution occurred and extreme population heterogeneity was observed (with some members of these population differing from others at hundreds of genome positions). A limited sampling of clones at one stage during high-multiplicity passages suggested the presence of at least several distinct master sequences, the related subpopulations of which exhibit at least transient competitive fitness within the total virus population (M. Eigen and C.K. Biebricher, p. 211-245, in E. Domingo, J.J. Holland, P. Ahlquist, ed., RNA Genetics, vol. 3, 1988). These studies further demonstrate the important role of selective pressure in determining the genetic composition of RNA virus populations. This is true under equilibrium conditions in which little consensus sequence evolution is observed owing to stabilizing selection as well as under conditions in which selective pressure is driving rapid RNA virus genome evolution.

Animals↗

Daily interferon therapy for hepatitis C virus infection in liver transplant recipients.

BACKGROUND: Hepatitis C virus infection persists after liver transplantation and causes recurrent liver injury in the majority of patients. Standard dose interferon therapy has been largely unsuccessful for hepatitis C in transplant recipients. METHODS: Twelve patients, at least 7 months posttransplant, with detectable hepatitis C virus RNA in serum and features of hepatitis C on liver biopsy were randomized to interferon-alpha2a, 3 mU daily for 12 months (n=8) or no treatment (n=4). The tolerability of daily interferon dosing in liver transplant recipients was evaluated and effects on hepatitis C virus RNA level, quasispecies evolution, and liver histology were studied. RESULTS: Treated patients had an improvement in histological activity index at the end of therapy relative to controls (median reduction of 2 versus median increase of 1.5) (P=0.04). Four treated patients had a virological response (all bDNA negative, one qualitative polymerase chain reaction negative) compared with none of the untreated patients. Only two of six treated patients tested had evidence of quasispecies diversification on therapy. Seven of eight patients in the treatment group required dose reduction for fatigue and/or depression. They tolerated 1.5 mU of interferon-alpha2a daily. Two treated patients developed graft dysfunction, one of who had histological evidence of rejection and subsequent graft loss. CONCLUSIONS: Low daily doses of interferon were tolerated by liver transplant recipients and provided histological benefit without associated quasispecies diversification in most cases. These findings provide a rationale to study low dose daily or pegylated interferon maintenance therapy for the management of hepatitis C posttransplant.

Adult↗

Alphavirus RNA genome repair and evolution: molecular characterization of infectious sindbis virus isolates lacking a known conserved motif at the 3' end of the genome.

The 3' nontranslated region of the genomes of Sindbis virus (SIN) and other alphaviruses carries several repeat sequence elements (RSEs) as well as a 19-nucleotide (nt) conserved sequence element (3'CSE). The 3'CSE and the adjoining poly(A) tail of the SIN genome are thought to act as viral promoters for negative-sense RNA synthesis and genome replication. Eight different SIN isolates that carry altered 3'CSEs were studied in detail to evaluate the role of the 3'CSE in genome replication. The salient findings of this study as it applies to SIN infection of BHK cells are as follows: i) the classical 19-nt 3'CSE of the SIN genome is not essential for genome replication, long-term stability, or packaging; ii) compensatory amino acid or nucleotide changes within the SIN genomes are not required to counteract base changes in the 3' terminal motifs of the SIN genome; iii) the 5' 1-kb regions of all SIN genomes, regardless of the differences in 3' terminal motifs, do not undergo any base changes even after 18 passages; iv) although extensive addition of AU-rich motifs occurs in the SIN genomes carrying defective 3'CSE, these are not essential for genome viability or function; and v) the newly added AU-rich motifs are composed predominantly of RSEs. These findings are consistent with the idea that the 3' terminal AU-rich motifs of the SIN genomes do not bind directly to the viral polymerase and that cellular proteins with broad AU-rich binding specificity may mediate this interaction. In addition to the classical 3'CSE, other RNA motifs located elsewhere in the SIN genome must play a major role in template selection by the SIN RNA polymerase.

3' Untranslated Regions↗

Quasispecies and the implications for virus persistence and escape.

BACKGROUND: In the 1970s Manfred Eigen and colleagues proposed a new model of molecular evolution to explain adaptability and rapid evolution of simple replicons, as those that probably populated the earth at the onset of life. This model of evolution placed emphasis on mutant generation, to the point of invalidating the concept of wild-type genomes as a defined sequence of nucleotides. In striking similarity with the proposals for such early replicons, present-day RNA viruses consist of complex distributions of nonidentical but closely related genomes termed quasispecies. OBJECTIVES: To discuss indeterminations inherent to a quasispecies structure and to the analytical procedures to define it, biological implications of quasispecies, and the need to take into account this type of population structure, in order to design effective strategies to prevent and control diseases caused by highly variable viruses. RESULTS: Quasispecies have many biological implications, extending from viral pathogenesis to the emergence of new pathogens, rapid antigenic variation, and alterations in cell tropism, virulence, host range and viral gene expression. CONCLUSIONS: Diseases caused by highly variable RNA viruses prove very difficult to control and vaccine development against such viruses are largely unsuccessful. It is important to understand quasispecies composition and dynamics, as quasispecies are an important step in the natural history of RNA viruses.

Animals↗

Genetic stability of Ross River virus during epidemic spread in nonimmune humans.

We have examined the rate of evolution of Ross River virus, a mosquito-borne RNA virus, during epidemic spread through tens of thousands of nonimmune humans over a period of 10 months. Two regions of the Ross River virus genome were sequenced: the E2 gene (1.2 kb in length), which encodes the major neutralization determinant of the virus, and 0.4 kb of the 3'-untranslated region. In the E2 gene, a single nucleotide change was selected which led to a predicted amino acid change at residue 219. No changes were selected in the 3'-untranslated region. By comparison with rates of evolution reported for non-arthropod-borne RNA viruses, the rate for Ross River virus is surprisingly low. We identify three features of the Ross River virus replication and transmission cycle which may limit the rate of evolution of arthropod-borne viruses in the field.

Alphavirus↗

Phylogeny of capsid proteins of small icosahedral RNA plant viruses.

Statistically significant alignment was generated between the amino acid sequences of the (putative) shell (S) domains of the capsid proteins of small RNA plant viruses with icosahedral capsids in the tombusvirus, carmovirus, dianthovirus, sobemovirus and luteovirus groups. Inspection of the alignment showed good correspondence between the experimentally defined beta-strands and alpha-helices of the capsid proteins of tomato bushy stunt, southern bean mosaic and turnip crinkle viruses, allowing prediction of the secondary structure elements in proteins with unresolved tertiary structure. It is concluded that this set of viral capsid proteins forms a tight evolutionary cluster. Comparison of the alignment of the proteins of this family with the sequences of other capsid proteins of icosahedral RNA viruses revealed more distant similarities to the satellites of tobacco necrosis, panicum mosaic, tobacco mosaic and maize white line mosaic viruses, as well as to nepo- and comoviruses. The tentative phylogenetic tree derived from the capsid protein alignment separated into three main lineages: (I) carmo-, tombus- and dianthoviruses, (II) southern bean mosaic, tobacco necrosis and maize chlorotic mottle viruses, and (III) luteoviruses. Comparison of this tree topology with the tentative evolutionary schemes for the respective virus RNA-dependent RNA polymerases suggested that gene shuffling is the universal trend in the evolution of small RNA plant virus genomes.

Amino Acid Sequence↗

Naturally occurring Sin Nombre virus genetic reassortants.

Genetic reassortment has been shown to play an important role in the evolution of several segmented RNA viruses and in the epidemiology of associated diseases. Sin Nombre (SN) virus is the cause of hantavirus pulmonary syndrome throughout the western United States. Like other hantaviruses, it possesses a genome consisting of three negative-sense RNA segments, S, M, and L. Recent analysis has demonstrated the presence of at least three different hantaviruses in Nevada and eastern California, including SN, Prospect Hill-like, and El Moro Canyon-like viruses. In addition, two distinct lineages of SN virus can be found in Peromyscus maniculatus rodents (sometimes in close proximity) trapped at study sites in this region. Data obtained by phylogenetic analysis of sequence differences detected among the S, M, and L genome segments of these SN viruses are consistent with reassortment having taken place between SN virus genetic variants. The results suggest that M (and to a lesser extent S or L) genome segment flow occurs within SN virus populations in P. maniculatus in this region. No reassortment was detected between SN virus and other hantavirus types present in the area. This finding suggests that as genetic distance increases, the frequency of formation of viable reassortants decreases, or that hantaviruses which are primarily maintained in different rodent hosts rarely have the opportunity to genetically interact.

Animals↗

Recombination and selection in the evolution of picornaviruses and other Mammalian positive-stranded RNA viruses.

Picornaviridae are a large virus family causing widespread, often pathogenic infections in humans and other mammals. Picornaviruses are genetically and antigenically highly diverse, with evidence for complex evolutionary histories in which recombination plays a major part. To investigate the nature of recombination and selection processes underlying the evolution of serotypes within different picornavirus genera, large-scale analysis of recombination frequencies and sites, segregation by serotype within each genus, and sequence selection and composition was performed, and results were compared with those for other nonenveloped positive-stranded viruses (astroviruses and human noroviruses) and with flavivirus and alphavirus control groups. Enteroviruses, aphthoviruses, and teschoviruses showed phylogenetic segregation by serotype only in the structural region; lack of segregation elsewhere was attributable to extensive interserotype recombination. Nonsegregating viruses also showed several characteristic sequence divergence and composition differences between genome regions that were absent from segregating virus control groups, such as much greater amino acid sequence divergence in the structural region, markedly elevated ratios of nonsynonymous-to-synonymous substitutions, and differences in codon usage. These properties were shared with other picornavirus genera, such as the parechoviruses and erboviruses. The nonenveloped astroviruses and noroviruses similarly showed high frequencies of recombination, evidence for positive selection, and differential codon use in the capsid region, implying similar underlying evolutionary mechanisms and pressures driving serotype differentiation. This process was distinct from more-recent sequence evolution generating diversity within picornavirus serotypes, in which neutral or purifying selection was prominent. Overall, this study identifies common themes in the diversification process generating picornavirus serotypes that contribute to understanding of their evolution and pathogenicity.

Evolution, Molecular↗

The molecular population genetics of the Tomato spotted wilt virus (TSWV) genome.

RNA viruses are characterized by high genetic variability resulting in rapid adaptation to new or resistant hosts. Research for plant RNA virus genetic structure and its variability has been relatively scarce compared to abundant research done for human and animal RNA viruses. Here, we utilized a molecular population genetic framework to characterize the evolution of a highly pathogenic plant RNA virus [Tomato spotted wilt virus (TSWV), Tospovirus, Bunyaviridae]. Data from genes encoding five viral proteins were used for phylogenetic analysis, and for estimation of population parameters, subpopulation differentiation, recombination, divergence between Tospovirus species, and selective constraints on the TSWV genome. Our analysis has defined the geographical structure of TSWV, attributed possibly to founder effects. Also, we identify positive selection favouring divergence between Tospovirus species. At the species level, purifying selection has acted to preserve protein function, although certain amino acids appear to be under positive selection. This analysis provides demonstration of population structuring and species-wide population expansions in a multisegmented plant RNA virus, using sequence-based molecular population genetic analyses. It also identifies specific amino acid sites subject to selection within Bunyaviridae and estimates the level of genetic heterogeneity of a highly pathogenic plant RNA virus. The study of the variability of TSWV populations lays the foundation in the development of strategies for the control of other viral diseases in floral crops.

Base Sequence↗

Rapid evolution of viral RNA genomes.

Mutation rates during RNA virus replication are several orders of magnitude larger than those operating during replication of cellular DNA. This results in the continuous generation of mutant genomes and in their rating in competition with other variants present and arising in the population. The dynamic mutant distributions that constitute RNA virus populations are termed quasispecies. This concept has facilitated links between population genetics and virology and has a number of important implications for viral pathogenesis and the control of viral disease. One of them is that the mutant spectra in RNA viruses constitute large reservoirs of genetic and phenotypic variants with potentially altered biological properties. Individual mutants kept in a low proportion under a set of environmental conditions may become dominant following an environmental change. Relevant to this review are possible links between the alteration of quasispecies distributions and nutritional deficiencies and oxidative stress in cells. In addition to being a possible mechanism of viral pathogenesis, oxidative stress, and other environmental modifications resulting from nutritional imbalances, may promote population disequilibrium in replicating viruses. In particular, the increased mutagenesis mediated by oxidative DNA damage could also affect replicating RNA and integrated provirus, extending the mutant repertoire of viruses. Also, the impairment of humoral and cellular immune functions may delay or prevent viral clearance, leading to an expanded representation of viral mutants in the infected organism. Thus, nutritional deficiencies are a potential source of viral mutants with altered biological properties.

Biological Evolution↗

Persistent infection of L cells with vesicular stomatitis virus: evolution of virus populations.

A previous report (Youngner et al., J. Virol. 19:90-101, 1976) documented that noncytocidal persistent infection can be established with wild-type vesicular stomatitis virus (VSV) in mouse L cells at 37 degrees C and that a rapid selection of RNA(-), group I temperature-sensitive (ts) mutants consistently occurs in this system. To assess the selective advantage of the RNA(-)ts phenotype, evolution of the virus population was studied in persistent infections initiated in L cells by use of VSV ts 0 23 and ts 0 45, RNA(+) mutants belonging to complementation groups III and V. In L cells persistently infected with ts 0 23, the ts RNA(+) virus population was replaced gradually by viruses which had a ts RNA(-) phenotype. VSV ts 0 45 (V) has another marker in addition to reduced virus yield at 39.5 degrees C: a defective protein (G) which renders virion infectivity heat labile at 50 degrees C. Persistent infections initiated with this virus (ts, heat labile, RNA(+)) evolved into a virus population which was ts, heat resistant, and RNA(-). These findings suggest that the ts phenotype itself is not sufficient to stabilize the VSV population in persistently infected L cells and also indicate that the ts RNA(-) phenotype may have a unique selective advantage in this system. In addition to the selection of ts RNA(-) mutants, other mechanisms which also might operate in the maintenance of persistent VSV infections of L cells were explored. Whereas defective-interfering particles did not seem to mediate the carrier state, evidence was obtained that interferon may play a role in the regulation of persistent infections of L cells with VSV.

L Cells↗