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Evolution of human immunodeficiency virus under selection and weak recombination.

To predict emergence of drug resistance in patients undergoing antiretroviral therapy, we study accumulation of preexisting beneficial alleles in a haploid population of N genomes. The factors included in the model are selection with the coefficient s and recombination with the small rate per genome r (r << s sqrt of k, where k is the average number of less-fit loci per genome). Mutation events are neglected. To describe evolution at a large number of linked loci, we generalize the analytic method we developed recently for an asexual population. We show that the distribution of genomes over the deleterious allele number moves in time as a "solitary wave" that is quasi-deterministic in the middle (on the average) but has stochastic edges. We arrive at a single-locus expression for the average accumulation rate, in which the effects of linkage, recombination, and random drift are all accounted for by the effective selection coefficient s lnNr/lnNs(2)k/r. At large N, the effective selection coefficient approaches the single-locus value s. Below the critical size N(c) approximately 1/r, a population eventually becomes a clone, recombination cannot produce new sequences, and virus evolution stops. Taking into account finite mutation rate predicts a small, finite rate of evolution at N < N(c). We verify the accuracy of the results analytically and by Monte Carlo simulation. On the basis of our findings, we predict that partial depletion of the HIV population by combined anti-retroviral therapy can suppress emergence of drug-resistant strains.

Computer Simulation↗

Varicella-zoster virus retinitis: successful evolution with a combination of antiviral therapies.

BACKGROUND: We present the description of a successful outcome in a case of varicella-zoster virus (VZV) acute retinal necrosis (ARN). HISTORY AND SIGNS: A healthy 40-year-old patient was admitted for a VZV retinitis. THERAPY AND OUTCOME: 10 days after the onset of intravenous (i. v.) acyclovir treatment, new small peripheral retinal necrotic lesions appeared in the right eye. A viral resistance was suspected and the acyclovir therapy was optimised with i. v. foscarnet combined with 2 intravitreal injections of ganciclovir. The outcome was favourable with a final vision of 1.0 after a follow-up of 30 months. No systemic or local complications were observed. CONCLUSIONS: VZV ARN is a severe infection with a poor prognosis. This case demonstrates that combination of antiviral therapies given intravenously (acyclovir + foscarnet) and in the vitreous (ganciclovir) may be safe and efficacious in the management of necrotising herpetic retinopathies affecting immunocompetent patients.

Acyclovir↗

The role of vaccinia virus in the evolution of some human hemopathies.

Six cases of severe hemopathy, detected following smallpox revaccination are described. Their onset was favoured by vaccinia virus-induced suppression of cell-mediated and humoral immunity. In two leukemia patients humoral immunity was present, but insufficient to assure protection of the diseased organisms, the outcome being fatal. The pancytopenia syndrome recorded in 4 patients with anergy caused by autoimmune mechanisms had different outcomes: favourable in 2 cases and fatal in the other 2 patients, who died within 4 years.

Hematologic Diseases↗

[Role of stabilizing and splitting selection in evolution of of viruses from the Parvoviridae and Astroviridae families].

We had previously collected and analyzed, by phylogenetic methods, all genetic data available now for the Parvoviridae and Astroviridae families, which made it possible to define the evolutionary relations between the viruses as well as to depict a variety of events in the evolutionary history of the two families. The offered case study is dedicated to investigating the stabilizing and splitting selection types in the evolution of the discussed viral families. We analyzed the number of synonymous and non-synonymous nucleotide substitutions in the coding genomes' regions of the viruses. Finally, the stabilizing selection was shown to be a key factor in the evolution of parvoviruses and astroviruses.

Animals↗

[Analysis of the antigenic structure of influenza A/USSR/90/77 virus hemagglutinin].

Evolution of the antigenic structure of influenza virus hemagglutinin with the antigenic formula HA1 was studied by the determination of the capacity for interaction with monoclonal antibody and aminoacid substitutions in the protein. Consecutive changes in protein epitopes were found in isolates accumulating from the time of isolation of H1 influenza viruses in 1977.

Amino Acid Sequence↗

Evolution of influenza virus genes.

The nucleotide sequences of the eight different influenza A virus segments (genes) were compared among 14 different subtypes. These comparisons demonstrate the presence of molecular clocks in the viral genes; they accumulated both silent and amino acid-changing substitutions at approximately constant rates with respect to time during evolution. In addition, comparison of the rates of evolution among the eight viral genes, excluding the P2 gene, revealed a rapid and roughly equal rate of silent substitution for different genes. The P2 gene exception is explained as the result of recombination (reassortment) between distantly related strains. The rate of amino acid-changing substitution differs greatly from gene to gene. The rate of silent substitution was estimated to be 1.1 X 10(-2)/site/year on the average--that is, about 2 X 10(6) times higher than eukaryotic gene equivalents, which is remarkable. Strain A/USSR/90/77 was shown to evolve with a rate that is similar to those of other strains but to behave as if replication was frozen during a certain period (Nakajima et al. 1978). The frozen period was estimated to be 25 yr on the basis of the molecular clock. A similar analysis revealed another example of frozen replication--in this case, apparently for a period of about 9 yr--in a duck strain, A/duck/Ontario/77.

Amino Acid Sequence↗

Molecular evolution of hepatitis B virus over 25 years.

Determining the longitudinal molecular evolution of hepatitis B virus (HBV) is difficult due to HBV's genomic complexity and the need to study paired samples collected over long periods of time. In this study, serial samples were collected from eight hepatitis B virus e antigen-negative asymptomatic carriers of HBV genotype B in 1979 and 2004, thus providing a 25-year period to document the long-term molecular evolution of HBV. The rate, nature, and distribution of mutations that emerged over 25 years were determined by phylogenetic and linear regression analysis of full-length HBV genome sequences. Nucleotide hypervariability was observed within the polymerase and pre-S/S overlap region and within the core gene. The calculated mean number of nucleotide substitutions/site/year (7.9 x 10(-5)) was slightly higher than published estimates (1.5 x 10(-5) to 5 x 10(-5)). Nucleotide changes in the quasispecies population did not significantly alter the molecular evolutionary rate, based on linear regression analysis of evolutionary distances among serial clone pre-S region sequences. Therefore, the directly amplified or dominant sequence was sufficient to estimate the putative molecular evolutionary rate for these long-term serial samples. On average, the ratio of synonymous (dS) to nonsynonymous (dN) substitutions was highest for the polymerase-coding region and lowest for the core-coding region. The low dS/dN ratios observed within the core suggest that selection occurs within this gene region, possibly as an immune evasion strategy. The results of this study suggest that HBV sequence divergence may occur more rapidly than previously estimated, in a host immune phase-dependent manner.

Aged↗

History and evolution of HPAI viruses in southeast Asia.

Highly pathogenic avian influenza (HPAI) has been recognized as a serious viral disease of poultry since 1878. The number of outbreaks of this disease globally has increased in the past 10 years culminating in 2004 with the unprecedented outbreak of H5N1 HPAI involving nine countries in East and South East Asia. Apart from the geographical extent of this outbreak and apparent rapid spread, this epidemic has a number of unique features, among which is the carriage of highly pathogenic AI viruses by asymptomatic domestic waterfowl. When this disease first emerged it was recognized almost simultaneously in a number of countries for the first time. This created considerable concern among both veterinary and public health authorities especially as the virus was also shown to cause fatal disease in humans. This article brings together a range of information on H5N1 HPAI viruses in Asia that were collected by FAO during the past year through field projects and explores possible reasons for the emergence of the disease in late 2003 and early 2004. Key epidemiological features of the disease in different Asian countries are described in an attempt to look for, and where possible, explain similarities and differences. This includes assessment of factors that could have contributed to the spread of the disease. Molecular aspects of the viruses are examined to assess relationships between isolates from different locations and times so as to gain insights into the origins of viruses in various countries. It is apparent that the coincidence and grouping of the reports declaring the outbreaks of HPAI did not truly reflect the time course of disease emergence, which was widespread well before the outbreak. The factors that could have led to a change from infection to emergence of widespread disease in 2003-2004 are discussed. There are still some questions that remain unanswered regarding the origins of the 2004 outbreak. This article does not provide answers to all of these, but brings together what is currently known about these outbreaks and the viruses that have caused them.

Agriculture↗

Molecular anatomy of Chilo iridescent virus genome and the evolution of viral genes.

Chilo iridescent virus (CIV) or Insect iridescent virus 6 (IIV-6) is the type species of the genus iridovirus, a member of the Iridoviridae family. CIV is highly pathogenic for a variety of insect larvae and this implicates a possible use as a biological insecticide. CIV progeny and assembly occur in the cytoplasm of the infected cell and accumulate in the fatbody of the infected insects. Since the discovery of CIV in 1966, many attempts were made to elucidate the viral genome structure and the amino acid sequences of different viral gene products. The elucidation of the coding capacity and strategy of CIV was the first step towards understanding the underlying mechanisms of viral infection, replication and virus-host interaction. The virions contain a single linear ds DNA molecule that is circularly permuted and terminally redundant. The coding capacity of the CIV genome was determined by the analysis of the complete DNA nucleotide sequence consisting of 212,482 bp that represent 468 open reading frames encoding for polypeptides ranging from 40 to 2432 amino acid residues. The analysis of the coding capacity of the CIV genome revealed that 50% (234 ORFs) of all identified ORFs (468 ORFs) were non-overlapping. The identification of several putative viral gene products including a DNA ligase and a viral antibiotic peptide is a powerful tool for the investigation of the phylogenetic relatedness of this evolutionary and ecologically relevant eukaryotic virus.

Amino Acid Sequence↗

Heterologous RNA replication enhancer stimulates in vitro RNA synthesis and template-switching by the carmovirus, but not by the tombusvirus, RNA-dependent RNA polymerase: implication for modular evolution of RNA viruses.

The viral RNA plays multiple roles during replication of RNA viruses, serving as a template for complementary RNA synthesis and facilitating the assembly of the viral replicase complex. These roles are coordinated by cis-acting regulatory elements, such as promoters and replication enhancers (REN). To test if these RNA elements can be used by related viral RNA-dependent RNA polymerases (RdRp), we compared the potential stimulatory effects of homologous and heterologous REN elements on complementary RNA synthesis and template-switching by the tombus- (Cucumber necrosis virus, CNV), carmovirus (Turnip crinkle virus, TCV) and hepatitis C virus (HCV) RdRps in vitro. The CNV RdRp selectively utilized its cognate REN, while discriminating against the heterologous TCV REN. On the contrary, RNA synthesis by the TCV RdRp was stimulated by the TCV REN and the heterologous tombusvirus REN with comparable efficiency. The heterologous REN elements also promoted in vitro template-switching by the TCV and HCV RdRps. Based on these observations, we propose that REN elements could facilitate intervirus recombination and post-recombinational amplification of new recombinant viruses.

Base Sequence↗

Clonal interference and the evolution of RNA viruses.

In asexual populations, beneficial mutations that occur in different lineages compete with one another. This phenomenon, known as clonal interference, ensures that those beneficial mutations that do achieve fixation are of large effect. Clonal interference also increases the time between fixations, thereby slowing the adaptation of asexual populations. The effects of clonal interference were measured in the asexual RNA virus vesicular stomatitis virus; rates and average effects of beneficial mutations were quantified.

Adaptation, Physiological↗

Influence of random genetic drift on human immunodeficiency virus type 1 env evolution during chronic infection.

Human immunodeficiency virus type 1 (HIV-1) has high replication and mutation rates that generate large census populations and high levels of genetic variation. We examined the roles of natural selection, population growth, random genetic drift, and recombination in shaping the variation in 1509 C2-V5 env sequences derived from nine men with chronic HIV-1 infection. These sequences were obtained from clinical visits that reflect the first 6-13.7 years of infection. Pairwise comparisons of nonsynonymous and synonymous distances, Tajima's D test, Fu and Li's D* test, and a test of recurrent mutation revealed evidence for episodes of nonneutral evolution in a total of 22 out of 145 blood samples, representing six of the nine individuals. Using three coalescent-based maximum-likelihood estimators, we found viral effective population sizes in all nine individuals to be approximately 10(3). We also show that a previous estimate of the effective population size of approximately 10(5) based on rare haplotype frequencies decreases to approximately 10(3) upon correcting a biased sampling procedure. We conclude that the genetic variation in these data sets can be explained by a predominance of random genetic drift of neutral mutations with brief episodes of natural selection that were frequently masked by recombination.

Base Sequence↗

Positive selection and rates of evolution in immunodeficiency viruses from humans and chimpanzees.

Evolutionary theory predicts the recent spread of primate immunodeficiency viruses (PIVs) to new human populations to be accompanied by positive selection in response to new host environments and/or by random genetic drift. I assess evidence for positive selection in human and chimpanzee PIVs type I (PIV1s), using ratios of synonymous to nonsynonymous nucleotide change based on branch lengths and outgroup rooting. Ratios are smaller for PIV1s from humans than for PIV1 from a chimpanzee for the pol, gag, and env glycoprotein 120 (gp120) regions, indicating greater effects of positive selection in PIV1s from humans. Parsimony-based relative rate tests for amino acid changes showed significant differences between PIV1s from humans and chimpanzees in 18 of 48 pairwise comparisons, with all 18 showing faster rates of change in PIV1s from humans. This study indicates that in some instances, the recent evolution of human PIV1s follows a speciational pattern, in which increased diversification of taxa is correlated with greater amounts of character change appearing and being maintained through time. This extends the generality of the speciational pattern to a group of organisms (viruses) having the fastest known rates of anagenetic change for nucleotide characters and indicates that comprehensive understanding of PIV1 evolution requires consideration of both anagenetic change within viral lineages and the relative historical success of different viral clades. Phylogenetic analyses show that neither PIV1s infecting humans nor those infecting chimpanzees represent monophyletic groups and suggest multiple host-species shifts for PIV1s.

Animals↗