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1.
J Virol ; 97(2): e0182422, 2023 02 28.
Artigo em Inglês | MEDLINE | ID: mdl-36728417

RESUMO

Among the most intriguing structural features in the known virosphere are mimivirus surface fibrils, proteinaceous filaments approximately 150 nm long, covering the mimivirus capsid surface. Fibrils are important to promote particle adhesion to host cells, triggering phagocytosis and cell infection. However, although mimiviruses are one of the most abundant viral entities in a plethora of biomes worldwide, there has been no comparative analysis on fibril organization and abundance among distinct mimivirus isolates. Here, we describe the isolation and characterization of Megavirus caiporensis, a novel lineage C mimivirus with surface fibrils organized as "clumps." This intriguing feature led us to expand our analyses to other mimivirus isolates. By employing a combined approach including electron microscopy, image processing, genomic sequencing, and viral prospection, we obtained evidence of at least three main patterns of surface fibrils that can be found in mimiviruses: (i) isolates containing particles with abundant fibrils, distributed homogeneously on the capsid surface; (ii) isolates with particles almost fibrilless; and (iii) isolates with particles containing fibrils in abundance, but organized as clumps, as observed in Megavirus caiporensis. A total of 15 mimivirus isolates were analyzed by microscopy, and their DNA polymerase subunit B genes were sequenced for phylogenetic analysis. We observed a unique match between evolutionarily-related viruses and their fibril profiles. Biological assays suggested that patterns of fibrils can influence viral entry in host cells. Our data contribute to the knowledge of mimivirus fibril organization and abundance, as well as raising questions on the evolution of those intriguing structures. IMPORTANCE Mimivirus fibrils are intriguing structures that have drawn attention since their discovery. Although still under investigation, the function of fibrils may be related to host cell adhesion. In this work, we isolated and characterized a new mimivirus, called Megavirus caiporensis, and we showed that mimivirus isolates can exhibit at least three different patterns related to fibril organization and abundance. In our study, evolutionarily-related viruses presented similar fibril profiles, and such fibrils may affect how those viruses trigger phagocytosis in amoebas. These data shed light on aspects of mimivirus particle morphology, virus-host interactions, and their evolution.


Assuntos
Mimiviridae , Proteínas do Capsídeo/genética , Genoma Viral , Microscopia Eletrônica , Mimiviridae/genética , Mimiviridae/ultraestrutura , Filogenia
2.
J Virol ; 95(18): e0091921, 2021 08 25.
Artigo em Inglês | MEDLINE | ID: mdl-34191583

RESUMO

Since 2003, various viruses from the subfamily Megavirinae in the family Mimiviridae have been isolated worldwide, including icosahedral mimiviruses and tailed tupanviruses. To date, the evolutionary relationship between tailed and nontailed mimiviruses has not been elucidated. Here, we present the genomic and morphological features of a newly isolated giant virus, Cotonvirus japonicus (cotonvirus), belonging to the family Mimiviridae. It contains a linear double-stranded DNA molecule of 1.47 Mb, the largest among the reported viruses in the subfamily Megavirinae, excluding tupanviruses. Among its 1,306 predicted open reading frames, 1,149 (88.0%) were homologous to those of the family Mimiviridae. Several nucleocytoplasmic large DNA virus (NCLDV) core genes, aminoacyl-tRNA synthetase genes, and the host specificity of cotonvirus were highly similar to those of Mimiviridae lineages A, B, and C; however, lineage A was slightly closer to cotonvirus than the others were. Moreover, based on its genome size, the presence of two copies of 18S rRNA-like sequences, and the period of its infection cycle, cotonvirus is the most similar to the tupanviruses among the icosahedral mimiviruses. Interestingly, the cotonvirus utilizes Golgi apparatus-like vesicles for virion factory (VF) formation. Overall, we showed that cotonvirus is a novel lineage of the subfamily Megavirinae. Our findings support the diversity of icosahedral mimiviruses and provide mechanistic insights into the replication, VF formation, and evolution of the subfamily Megavirinae. IMPORTANCE We have isolated a new virus of an independent lineage belonging to the family Mimiviridae, subfamily Megavirinae, from the fresh water of a canal in Japan, named Cotonvirus. In a proteomic tree, this new nucleocytoplasmic large DNA virus (NCLDV) is phylogenetically placed at the root of three lineages of the subfamily Megavirinae-lineages A (mimivirus), B (moumouvirus), and C (megavirus). Multiple genomic and phenotypic features of cotonvirus are more similar to those of tupanviruses than to those of the A, B, or C lineages, and other genomic features, while the host specificity of cotonvirus is more similar to those of the latter than of the former. These results suggest that cotonvirus is a unique virus that has chimeric features of existing viruses of Megavirinae and uses Golgi apparatus-like vesicles of the host cells for virion factory (VF) formation. Thus, cotonvirus can provide novel insights into the evolution of mimiviruses and the underlying mechanisms of VF formation.


Assuntos
Acanthamoeba/virologia , Linhagem da Célula , Genoma Viral , Complexo de Golgi/virologia , Especificidade de Hospedeiro , Mimiviridae/genética , Mimiviridae/ultraestrutura , Acanthamoeba/classificação , Evolução Molecular , Tamanho do Genoma , Microscopia Eletrônica de Transmissão , Mimiviridae/classificação , Mimiviridae/isolamento & purificação , Filogenia , Vírion
3.
Arch Virol ; 165(6): 1267-1278, 2020 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-32333117

RESUMO

Giant viruses of amoebas are a remarkable group of viruses. In addition to their large size and peculiar structures, the genetic content of these viruses is also special. Among the genetic features of these viruses that stand out is the presence of coding regions for elements involved in translation, a complex biological process that occurs in cellular organisms. No viral genome described so far has such a complex genetic arsenal as those of giant viruses, which code for several of these elements. Currently, tupanviruses have the most complete set of translation genes in the known virosphere. In this review, we have condensed what is currently known about translation genes in different groups of giant viruses and theorize about their biological importance, origin, and evolution, and what might possibly be found in the coming years.


Assuntos
Vírus Gigantes/genética , Mimiviridae/genética , Amoeba/virologia , Evolução Molecular , Genoma Viral , Vírus Gigantes/patogenicidade , Especificidade de Hospedeiro/genética , Mimiviridae/metabolismo , Mimiviridae/ultraestrutura , Filogenia , Biossíntese de Proteínas , Proteoma/genética , RNA Ribossômico 16S/genética , RNA Viral/genética
4.
J Virol ; 94(1)2019 12 12.
Artigo em Inglês | MEDLINE | ID: mdl-31597770

RESUMO

The family of giant viruses is still expanding, and evidence of a translational machinery is emerging in the virosphere. The Klosneuvirinae group of giant viruses was first reconstructed from in silico studies, and then a unique member was isolated, Bodo saltans virus. Here we describe the isolation of a new member in this group using coculture with the free-living amoeba Vermamoeba vermiformis This giant virus, called Yasminevirus, has a 2.1-Mb linear double-stranded DNA genome encoding 1,541 candidate proteins, with a GC content estimated at 40.2%. Yasminevirus possesses a nearly complete translational machinery, with a set of 70 tRNAs associated with 45 codons and recognizing 20 amino acids (aa), 20 aminoacyl-tRNA synthetases (aaRSs) recognizing 20 aa, as well as several translation factors and elongation factors. At the genome scale, evolutionary analyses placed this virus in the Klosneuvirinae group of giant viruses. Rhizome analysis demonstrated that the genome of Yasminevirus is mosaic, with ∼34% of genes having their closest homologues in other viruses, followed by ∼13.2% in Eukaryota, ∼7.2% in Bacteria, and less than 1% in Archaea Among giant virus sequences, Yasminevirus shared 87% of viral hits with Klosneuvirinae. This description of Yasminevirus sheds light on the Klosneuvirinae group in a captivating quest to understand the evolution and diversity of giant viruses.IMPORTANCE Yasminevirus is an icosahedral double-stranded DNA virus isolated from sewage water by amoeba coculture. Here its structure and replicative cycle in the amoeba Vermamoeba vermiformis are described and genomic and evolutionary studies are reported. This virus belongs to the Klosneuvirinae group of giant viruses, representing the second isolated and cultivated giant virus in this group, and is the first isolated using a coculture procedure. Extended translational machinery pointed to Yasminevirus among the quasiautonomous giant viruses with the most complete translational apparatus of the known virosphere.


Assuntos
DNA Viral/genética , Regulação Viral da Expressão Gênica , Genoma Viral , Vírus Gigantes/genética , Mimiviridae/genética , Vírion/genética , Aminoácidos/genética , Aminoácidos/metabolismo , Aminoacil-tRNA Sintetases/classificação , Aminoacil-tRNA Sintetases/genética , Aminoacil-tRNA Sintetases/metabolismo , Composição de Bases , Mapeamento Cromossômico , Técnicas de Cocultura , Códon/química , Códon/metabolismo , DNA Viral/metabolismo , Tamanho do Genoma , Vírus Gigantes/classificação , Vírus Gigantes/metabolismo , Vírus Gigantes/ultraestrutura , Hartmannella/virologia , Mimiviridae/classificação , Mimiviridae/metabolismo , Mimiviridae/ultraestrutura , Fatores de Alongamento de Peptídeos/classificação , Fatores de Alongamento de Peptídeos/genética , Fatores de Alongamento de Peptídeos/metabolismo , Filogenia , Biossíntese de Proteínas , RNA de Transferência/classificação , RNA de Transferência/genética , RNA de Transferência/metabolismo , Análise de Sequência de DNA , Vírion/metabolismo , Vírion/ultraestrutura
5.
J Mol Biol ; 430(12): 1714-1724, 2018 06 08.
Artigo em Inglês | MEDLINE | ID: mdl-29702107

RESUMO

Nucleocytoplasmic large DNA viruses are a steadily growing group of viruses that infect a wide range of hosts and are characterized by large particle dimensions and genome sizes. Understanding how they enter into the host cell and deliver their genome in the cytoplasm is therefore particularly intriguing. Here, we review the current knowledge on the entry of two of the best-characterized nucleocytoplasmic large DNA viruses: the poxvirus Vaccinia virus (VACV) and the giant virus Mimivirus. While previous studies on VACV had proposed both direct fusion at the plasma membrane and endocytosis as entry routes, more recent biochemical and morphological data argue for macropinocytosis as well. Notably, direct imaging by electron microscopy (EM) also supported the existence of parallel ways of entry for VACV. Instead, all the giant viruses studied so far only enter cells by phagocytosis as observed by EM, and we discuss the mechanisms for opening of the particle, fusion of the viral and phagosomal membranes and genome delivery via a unique portal, specific for each giant virus. VACV core uncoating, in contrast, remains a morphologically ill-defined process. We argue that correlated light and electron microscopy methods are required to study VACV entry and uncoating in a direct and systematic manner. Such EM studies should also address whether entry of single particles and viral aggregates is different and thus provide an explanation for the different modes of entry described in the literature.


Assuntos
Mimiviridae/ultraestrutura , Vaccinia virus/ultraestrutura , Internalização do Vírus , Vírus de DNA , Tamanho do Genoma , Genoma Viral , Humanos , Microscopia Eletrônica , Mimiviridae/fisiologia , Fagocitose , Vaccinia virus/fisiologia
6.
Nat Commun ; 9(1): 749, 2018 02 27.
Artigo em Inglês | MEDLINE | ID: mdl-29487281

RESUMO

Here we report the discovery of two Tupanvirus strains, the longest tailed Mimiviridae members isolated in amoebae. Their genomes are 1.44-1.51 Mb linear double-strand DNA coding for 1276-1425 predicted proteins. Tupanviruses share the same ancestors with mimivirus lineages and these giant viruses present the largest translational apparatus within the known virosphere, with up to 70 tRNA, 20 aaRS, 11 factors for all translation steps, and factors related to tRNA/mRNA maturation and ribosome protein modification. Moreover, two sequences with significant similarity to intronic regions of 18 S rRNA genes are encoded by the tupanviruses and highly expressed. In this translation-associated gene set, only the ribosome is lacking. At high multiplicity of infections, tupanvirus is also cytotoxic and causes a severe shutdown of ribosomal RNA and a progressive degradation of the nucleus in host and non-host cells. The analysis of tupanviruses constitutes a new step toward understanding the evolution of giant viruses.


Assuntos
Mimiviridae/genética , Amoeba/virologia , Brasil , Evolução Molecular , Genoma Viral , Especificidade de Hospedeiro/genética , Interações Hospedeiro-Patógeno/genética , Lagos/microbiologia , Microscopia Eletrônica , Mimiviridae/metabolismo , Mimiviridae/ultraestrutura , Oceanos e Mares , Filogenia , Biossíntese de Proteínas , Proteoma/genética , RNA Ribossômico 16S/genética , RNA Viral/genética , Proteínas Virais/genética , Microbiologia da Água
8.
J Virol ; 92(2)2018 01 15.
Artigo em Inglês | MEDLINE | ID: mdl-29118120

RESUMO

The inclusion of Mimiviridae members in the putative monophyletic nucleocytoplasmic large DNA virus (NCLDV) group is based on genomic and phylogenomic patterns. This shows that, along with other viral families, they share a set of genes known as core or "hallmark genes," including the gene for the major capsid protein (MCP). Although previous studies have suggested that the maturation of mimivirus MCP transcripts is dependent on splicing, there is little information about the processing of this transcript in other mimivirus isolates. Here we report the characterization of a new mimivirus isolate, called Kroon virus (KV) mimivirus. Analysis of the structure, synteny, and phylogenetic relationships of the MCP genes in many mimivirus isolates revealed a remarkable variation at position and types of intronic and exonic regions, even for mimiviruses belonging to the same lineage. In addition, sequencing of KV and Acanthamoeba polyphaga mimivirus (APMV) MCP transcripts has shown that inside the family, even related giant viruses may present different ways to process the MCP mRNA. These results contribute to the understanding of the genetic organization and evolution of the MCP gene in mimiviruses.IMPORTANCE Mimivirus isolates have been obtained by prospecting studies since 2003. Based on genomic and phylogenomic studies of conserved genes, these viruses have been clustered together with members of six other viral families. Although the major capsid protein (MCP) gene is an important member of the so-called "hallmark genes," there is little information about the processing and structure of this gene in many mimivirus isolates. In this work, we have analyzed the structure, synteny, and phylogenetic relationships of the MCP genes in many mimivirus isolates; these genes showed remarkable variation at position and types of intronic and exonic regions, even for mimiviruses belonging to the same lineage. These results contribute to the understanding of the genetic organization and evolution of the MCP gene in mimiviruses.


Assuntos
Proteínas do Capsídeo/genética , Evolução Molecular , Regulação Viral da Expressão Gênica , Mimiviridae/genética , Splicing de RNA , Transcrição Gênica , Genoma Viral , Mimiviridae/classificação , Mimiviridae/isolamento & purificação , Mimiviridae/ultraestrutura , Filogenia , RNA Viral , Replicação Viral , Microbiologia da Água
9.
Sci Rep ; 7(1): 5484, 2017 07 14.
Artigo em Inglês | MEDLINE | ID: mdl-28710447

RESUMO

Whereas the protein composition and overall shape of several giant virus capsids have been described, the mechanism by which these large capsids assemble remains enigmatic. Here, we present a reconstruction of the capsid of Cafeteria roenbergensis virus (CroV), one of the largest viruses analyzed by cryo-electron microscopy (cryo-EM) to date. The CroV capsid has a diameter of 3,000 Å and a Triangulation number of 499. Unlike related mimiviruses, the CroV capsid is not decorated with glycosylated surface fibers, but features 30 Å-long surface protrusions that are formed by loops of the major capsid protein. Based on the orientation of capsomers in the cryo-EM reconstruction, we propose that the capsids of CroV and related giant viruses are assembled by a newly conceived assembly pathway that initiates at a five-fold vertex and continuously proceeds outwards in a spiraling fashion.


Assuntos
Capsídeo/ultraestrutura , Microscopia Crioeletrônica , Vírus Gigantes/fisiologia , Vírus Gigantes/ultraestrutura , Mimiviridae/fisiologia , Mimiviridae/ultraestrutura , Montagem de Vírus/fisiologia , Sequência de Aminoácidos , Proteínas do Capsídeo/química , Proteínas do Capsídeo/metabolismo , Genoma Viral , Vírus Gigantes/genética , Mimiviridae/genética , Vírion/ultraestrutura
11.
Viruses ; 9(2)2017 02 14.
Artigo em Inglês | MEDLINE | ID: mdl-28216551

RESUMO

Prior to the discovery of the mimivirus in 2003, viruses were thought to be physically small and genetically simple. Mimivirus, with its ~750-nm particle size and its ~1.2-Mbp genome, shattered these notions and changed what it meant to be a virus. Since this discovery, the isolation and characterization of giant viruses has exploded. One of the more recently discovered giant viruses, Samba virus, is a Mimivirus that was isolated from the Rio Negro in the Brazilian Amazon. Initial characterization of Samba has revealed some structural information, although the preparation techniques used are prone to the generation of structural artifacts. To generate more native-like structural information for Samba, we analyzed the virus through cryo-electron microscopy, cryo-electron tomography, scanning electron microscopy, and fluorescence microscopy. These microscopy techniques demonstrated that Samba particles have a capsid diameter of ~527 nm and a fiber length of ~155 nm, making Samba the largest Mimivirus yet characterized. We also compared Samba to a fiberless mimivirus variant. Samba particles, unlike those of mimivirus, do not appear to be rigid, and quasi-icosahedral, although the two viruses share many common features, including a multi-layered capsid and an asymmetric nucleocapsid, which may be common amongst the Mimiviruses.


Assuntos
Mimiviridae/ultraestrutura , Brasil , Capsídeo/ultraestrutura , Microscopia , Mimiviridae/isolamento & purificação , Rios/virologia
12.
Nat Rev Microbiol ; 15(4): 243-254, 2017 04.
Artigo em Inglês | MEDLINE | ID: mdl-28239153

RESUMO

The accidental discovery of the giant virus of amoeba - Acanthamoeba polyphaga mimivirus (APMV; more commonly known as mimivirus) - in 2003 changed the field of virology. Viruses were previously defined by their submicroscopic size, which probably prevented the search for giant viruses, which are visible by light microscopy. Extended studies of giant viruses of amoebae revealed that they have genetic, proteomic and structural complexities that were not thought to exist among viruses and that are comparable to those of bacteria, archaea and small eukaryotes. The giant virus particles contain mRNA and more than 100 proteins, they have gene repertoires that are broader than those of other viruses and, notably, some encode translation components. The infection cycles of giant viruses of amoebae involve virus entry by amoebal phagocytosis and replication in viral factories. In addition, mimiviruses are infected by virophages, defend against them through the mimivirus virophage resistance element (MIMIVIRE) system and have a unique mobilome. Overall, giant viruses of amoebae, including mimiviruses, marseilleviruses, pandoraviruses, pithoviruses, faustoviruses and molliviruses, challenge the definition and classification of viruses, and have increasingly been detected in humans.


Assuntos
Acanthamoeba/virologia , Amoeba/virologia , Vírus Gigantes/ultraestrutura , Mimiviridae/ultraestrutura , Genoma Viral/genética , Vírus Gigantes/genética , Vírus Gigantes/metabolismo , Mimiviridae/genética , Mimiviridae/metabolismo , Virófagos/genética , Internalização do Vírus
13.
Viruses ; 8(11)2016 11 23.
Artigo em Inglês | MEDLINE | ID: mdl-27886075

RESUMO

Virophages replicate with giant viruses in the same eukaryotic cells. They are a major component of the specific mobilome of mimiviruses. Since their discovery in 2008, five other representatives have been isolated, 18 new genomes have been described, two of which being nearly completely sequenced, and they have been classified in a new viral family, Lavidaviridae. Virophages are small viruses with approximately 35-74 nm large icosahedral capsids and 17-29 kbp large double-stranded DNA genomes with 16-34 genes, among which a very small set is shared with giant viruses. Virophages have been isolated or detected in various locations and in a broad range of habitats worldwide, including the deep ocean and inland. Humans, therefore, could be commonly exposed to virophages, although currently limited evidence exists of their presence in humans based on serology and metagenomics. The distribution of virophages, the consequences of their infection and the interactions with their giant viral hosts within eukaryotic cells deserve further research.


Assuntos
Mimiviridae/classificação , Mimiviridae/isolamento & purificação , Virófagos/classificação , Virófagos/isolamento & purificação , DNA Viral/genética , Eucariotos/virologia , Mimiviridae/ultraestrutura , Vírion/ultraestrutura , Virófagos/genética , Virófagos/ultraestrutura
14.
Phys Rev Lett ; 114(9): 098102, 2015 Mar 06.
Artigo em Inglês | MEDLINE | ID: mdl-25793853

RESUMO

We present a proof-of-concept three-dimensional reconstruction of the giant mimivirus particle from experimentally measured diffraction patterns from an x-ray free-electron laser. Three-dimensional imaging requires the assembly of many two-dimensional patterns into an internally consistent Fourier volume. Since each particle is randomly oriented when exposed to the x-ray pulse, relative orientations have to be retrieved from the diffraction data alone. We achieve this with a modified version of the expand, maximize and compress algorithm and validate our result using new methods.


Assuntos
Imageamento Tridimensional/métodos , Mimiviridae/ultraestrutura , Difração de Raios X/métodos , Algoritmos , Elétrons , Lasers , Difração de Raios X/instrumentação
15.
Virology ; 466-467: 3-14, 2014 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-24996494

RESUMO

The discovery of giant DNA viruses and the recent realization that such viruses are diverse and abundant blurred the distinction between viruses and cells. These findings elicited lively debates on the nature and origin of viruses as well as on their potential roles in the evolution of cells. The following essay is, however, concerned with new insights into fundamental structural and physical aspects of viral replication that were derived from studies conducted on large DNA viruses. Specifically, the entirely cytoplasmic replication cycles of Mimivirus and Vaccinia are discussed in light of the highly limited trafficking of large macromolecules in the crowded cytoplasm of cells. The extensive spatiotemporal order revealed by cytoplasmic viral factories is described and contended to play an important role in promoting the efficiency of these 'nuclear-like' organelles. Generation of single-layered internal membrane sheets in Mimivirus and Vaccinia, which proceeds through a novel membrane biogenesis mechanism that enables continuous supply of lipids, is highlighted as an intriguing case study of self-assembly. Mimivirus genome encapsidation was shown to occur through a portal different from the 'stargate' portal that is used for genome release. Such a 'division of labor' is proposed to enhance the efficacy of translocation processes of very large viral genomes. Finally, open questions concerning the infection cycles of giant viruses to which future studies are likely to provide novel and exciting answers are discussed.


Assuntos
Vírus de DNA/genética , Eucariotos/virologia , Genoma Viral/genética , Estruturas Virais , Replicação Viral , Amoeba/virologia , Membrana Celular/virologia , Citoplasma/virologia , Vírus de DNA/fisiologia , Vírus de DNA/ultraestrutura , DNA Viral/genética , Evolução Molecular , Microscopia Eletrônica de Transmissão e Varredura , Mimiviridae/genética , Mimiviridae/fisiologia , Mimiviridae/ultraestrutura , Montagem de Vírus
16.
Virol J ; 11: 95, 2014 May 14.
Artigo em Inglês | MEDLINE | ID: mdl-24886672

RESUMO

BACKGROUND: The identification of novel giant viruses from the nucleocytoplasmic large DNA viruses group and their virophages has increased in the last decade and has helped to shed light on viral evolution. This study describe the discovery, isolation and characterization of Samba virus (SMBV), a novel giant virus belonging to the Mimivirus genus, which was isolated from the Negro River in the Brazilian Amazon. We also report the isolation of an SMBV-associated virophage named Rio Negro (RNV), which is the first Mimivirus virophage to be isolated in the Americas. METHODS/RESULTS: Based on a phylogenetic analysis, SMBV belongs to group A of the putative Megavirales order, possibly a new virus related to Acanthamoeba polyphaga mimivirus (APMV). SMBV is the largest virus isolated in Brazil, with an average particle diameter about 574 nm. The SMBV genome contains 938 ORFs, of which nine are ORFans. The 1,213.6 kb SMBV genome is one of the largest genome of any group A Mimivirus described to date. Electron microscopy showed RNV particle accumulation near SMBV and APMV factories resulting in the production of defective SMBV and APMV particles and decreasing the infectivity of these two viruses by several logs. CONCLUSION: This discovery expands our knowledge of Mimiviridae evolution and ecology.


Assuntos
Mimiviridae/isolamento & purificação , Filogenia , Rios/virologia , Brasil , DNA Viral/química , DNA Viral/genética , Microscopia Eletrônica de Transmissão , Mimiviridae/classificação , Mimiviridae/genética , Mimiviridae/ultraestrutura , Dados de Sequência Molecular , Fases de Leitura Aberta , Floresta Úmida , Análise de Sequência de DNA , Vírion/ultraestrutura
17.
Virus Genes ; 48(2): 218-23, 2014 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-24293219

RESUMO

Giant viruses of amoebae were discovered 10 years ago and led to the description of two new viral families: Mimiviridae and Marseilleviridae. These viruses exhibit remarkable features, including large capsids and genomes that are similar in size to those of small bacteria and their large genetic repertoires include genes that are unique among viruses. The family Mimiviridae has grown during the past decade since the discovery of its initial member, Mimivirus, and continues to expand. Here, we describe the genome of a new giant virus that infects Acanthamoeba spp., Courdo11 virus, isolated in 2010 by inoculating Acanthamoeba spp. with freshwater collected from a river in southeastern France. The Courdo11 virus genome is a double stranded DNA molecule composed of 1,245,674 nucleotides. The comparative analyses of Courdo11 virus with the genomes of other giant viruses showed that it belongs to lineage C of mimiviruses of amoebae, being most closely related to Megavirus chilensis and LBA 111, the first mimivirus isolated from a human. Major characteristics of the M. chilensis genome were identified in the Courdo11 virus genome, found to encode three more tRNAs. Genomic architecture comparisons mirrored previous findings that showed conservation of collinear regions in the middle part of the genome and diversity towards the extremities. Finally, fourteen ORFans were identified in the Courdo11 virus genome, suggesting that the pan-genome of mimiviruses of amoeba might reach a plateau.


Assuntos
Genoma Viral , Mimiviridae/genética , DNA Viral/genética , Microscopia Eletrônica , Mimiviridae/classificação , Mimiviridae/ultraestrutura , Filogenia , RNA de Transferência/genética
18.
Intervirology ; 56(6): 424-9, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-24157888

RESUMO

OBJECTIVE: Following the isolation of a Marseillevirus from the stool of a healthy young Senegalese and a Mimivirus from a Tunisian patient with pneumonia, we attempted to isolate other giant viruses of amoebae from a large human stool collection. METHODS: During the period 2010-2011, a total of 1,605 stool samples, including 115 from Tunisian patients with pneumonia, were cultured on amoebae. We used a recently developed high-throughput isolation system to detect amoebae plaque lysis on agar plates; this method allows for the testing of 100 samples per plate per week. The giant virus was identified by sequencing of genes conserved in Megavirales. RESULTS: A single giant virus, called Shan, was isolated from the stool of a Tunisian patient with pneumonia who responded poorly to antibiotics. This virus has an icosahedral shape typical of members of the family Mimiviridae and a size of 640 ± 10 nm. Phylogenetic analyses showed that Shan virus was classified as a member of Mimivirus lineage C that infects amoebae. CONCLUSION: Only one isolate was obtained in this study, suggesting that giant viruses of amoebae are rare in human stool. The isolation of Shan virus from a patient with pneumonia brings into question the etiological role of this virus and its subsequent release in stool.


Assuntos
Fezes/virologia , Mimiviridae/classificação , Mimiviridae/isolamento & purificação , Pneumonia/virologia , Adolescente , Amoeba/virologia , Análise por Conglomerados , DNA Viral/química , DNA Viral/genética , Feminino , Humanos , Microscopia Eletrônica de Transmissão , Mimiviridae/genética , Mimiviridae/ultraestrutura , Dados de Sequência Molecular , Filogenia , Análise de Sequência de DNA , Ensaio de Placa Viral , Vírion/ultraestrutura , Cultura de Vírus
19.
J Virol ; 87(20): 11200-13, 2013 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-23926353

RESUMO

Amoebas infected with mimivirus were disrupted at sequential stages of virus production and were visualized by atomic force microscopy. The development of virus factories proceeded over 3 to 4 h postinfection and resulted from the coalescence of 0.5- to 2-µm vesicles, possibly bearing nucleic acid, derived from either the nuclear membrane or the closely associated rough endoplasmic reticulum. Virus factories actively producing virus capsids on their surfaces were imaged, and this allowed the morphogenesis of the capsids to be delineated. The first feature to appear on a virus factory surface when a new capsid is born is the center of a stargate, which is a pentameric protein oligomer. As the arms of the stargate grow from the pentamer, a rough disk the diameter of a capsid thickens around it. This marks the initial emergence of a protein-coated membrane vesicle. The capsid self-assembles on the vesicle. Hillocks capped by different pentameric proteins spontaneously appear on the emerging vesicle at positions that are ultimately occupied by 5-fold icosahedral vertices. A lattice of coat protein nucleates at each of the 5-fold vertices, but not at the stargate, and then spreads outward from the vertices over the surface, merging seamlessly to complete the icosahedral capsid. Filling with DNA and associated proteins occurs by the transfer of nucleic acid from the interior of the virus factory into the nearly completed capsids. The portal, through which the DNA enters, is sealed by a plug of protein having a diameter of about 40 nm. A layer of integument protein that anchors the surface fibers is acquired by the passage of capsids through a membrane enriched in the protein. The coating of surface fibers is similarly acquired when the integument protein-coated capsids pass through a second membrane that has a forest of surface fibers embedded on one side.


Assuntos
Acanthamoeba/virologia , Mimiviridae/fisiologia , Montagem de Vírus , DNA Viral/metabolismo , Microscopia de Força Atômica , Mimiviridae/ultraestrutura , Proteínas Virais/metabolismo
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