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1.
Braz J Microbiol ; 54(3): 1447-1458, 2023 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-37531005

RESUMO

The decline in honey bee colonies in different parts of the world in recent years is due to different reasons, such as agricultural practices, climate changes, the use of chemical insecticides, and pests and diseases. Viral infections are one of the main causes leading to honey bee population declines, which have a major economic impact due to honey production and pollination. To investigate the presence of viruses in bees in southern Brazil, we used a metagenomic approach to sequence adults' samples of concentrated extracts from Apis mellifera collected in fifteen apiaries of six municipalities in the Rio Grande do Sul state, Brazil, between 2016 and 2017. High-throughput sequencing (HTS) of these samples resulted in the identification of eight previously known viruses (Apis rhabdovirus 1 (ARV-1), Acute bee paralysis virus (ABPV), Aphid lethal paralysis virus (ALPV), Black queen cell virus (BQCV), Bee Macula-like virus (BeeMLV), Deformed wing virus (DWV), Lake Sinai Virus NE (LSV), and Varroa destructor virus 3 (VDV-3)) and a thogotovirus isolate. This thogotovirus shares high amino acid identities in five of the six segments with Varroa orthomyxovirus 1, VOV-1 (98.36 to 99.34% identity). In contrast, segment 4, which codes for the main glycoprotein (GP), has no identity with VOV-1, as observed for the other segments, but shares an amino acid identity of 34-38% with other glycoproteins of viruses from the Orthomyxoviridae family. In addition, the putative thogotovirus GP also shows amino acid identities ranging from 33 to 41% with the major glycoprotein (GP64) of insect viruses of the Baculoviridae family. To our knowledge, this is the second report of a thogotovirus found in bees and given this information, this thogotovirus isolate was tentatively named Apis thogotovirus 1 (ATHOV-1). The detection of multiple viruses in bees is important to better understand the complex interactions between viruses and their hosts. By understanding these interactions, better strategies for managing viral infections in bees and protecting their populations can be developed.


Assuntos
Abelhas , Vírus de Insetos , Abelhas/virologia , Metagenômica , Sequenciamento de Nucleotídeos em Larga Escala , Brasil , Vírus de Insetos/classificação , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Filogenia , Proteínas Virais/química , Proteínas Virais/genética
2.
Viruses ; 14(2)2022 01 24.
Artigo em Inglês | MEDLINE | ID: mdl-35215821

RESUMO

Insect pollinators provide major pollination services for wild plants and crops. Honeybee viruses can cause serious damage to honeybee colonies. However, viruses of other wild pollinating insects have yet to be fully explored. In the present study, we used RNA sequencing to investigate the viral diversity of 50 species of wild pollinating insects. A total of 3 pathogenic honeybee viruses, 8 previously reported viruses, and 26 novel viruses were identified in sequenced samples. Among these, 7 novel viruses were shown to be closely related to honeybee pathogenic viruses, and 4 were determined to have potential pathogenicity for their hosts. The viruses detected in wild insect pollinators were mainly from the order Picornavirales and the families Orthomyxoviridae, Sinhaliviridae, Rhabdoviridae, and Flaviviridae. Our study expanded the species range of known insect pollinator viruses, contributing to future efforts to protect economic honeybees and wild pollinating insects.


Assuntos
Vírus de Insetos/isolamento & purificação , Insetos/virologia , Viroma , Animais , Abelhas/fisiologia , Abelhas/virologia , Pequim , Biodiversidade , China , Vírus de Insetos/classificação , Vírus de Insetos/genética , Insetos/fisiologia , Filogenia , Polinização
3.
Viruses ; 13(12)2021 12 10.
Artigo em Inglês | MEDLINE | ID: mdl-34960741

RESUMO

Tsetse flies cause major health and economic problems as they transmit trypanosomes causing sleeping sickness in humans (Human African Trypanosomosis, HAT) and nagana in animals (African Animal Trypanosomosis, AAT). A solution to control the spread of these flies and their associated diseases is the implementation of the Sterile Insect Technique (SIT). For successful application of SIT, it is important to establish and maintain healthy insect colonies and produce flies with competitive fitness. However, mass production of tsetse is threatened by covert virus infections, such as the Glossina pallidipes salivary gland hypertrophy virus (GpSGHV). This virus infection can switch from a covert asymptomatic to an overt symptomatic state and cause the collapse of an entire fly colony. Although the effects of GpSGHV infections can be mitigated, the presence of other covert viruses threaten tsetse mass production. Here we demonstrated the presence of two single-stranded RNA viruses isolated from Glossina morsitans morsitans originating from a colony at the Seibersdorf rearing facility. The genome organization and the phylogenetic analysis based on the RNA-dependent RNA polymerase (RdRp) revealed that the two viruses belong to the genera Iflavirus and Negevirus, respectively. The names proposed for the two viruses are Glossina morsitans morsitans iflavirus (GmmIV) and Glossina morsitans morsitans negevirus (GmmNegeV). The GmmIV genome is 9685 nucleotides long with a poly(A) tail and encodes a single polyprotein processed into structural and non-structural viral proteins. The GmmNegeV genome consists of 8140 nucleotides and contains two major overlapping open reading frames (ORF1 and ORF2). ORF1 encodes the largest protein which includes a methyltransferase domain, a ribosomal RNA methyltransferase domain, a helicase domain and a RdRp domain. In this study, a selective RT-qPCR assay to detect the presence of the negative RNA strand for both GmmIV and GmmNegeV viruses proved that both viruses replicate in G. m. morsitans. We analyzed the tissue tropism of these viruses in G. m. morsitans by RNA-FISH to decipher their mode of transmission. Our results demonstrate that both viruses can be found not only in the host's brain and fat bodies but also in their reproductive organs, and in milk and salivary glands. These findings suggest a potential horizontal viral transmission during feeding and/or a vertically viral transmission from parent to offspring. Although the impact of GmmIV and GmmNegeV in tsetse rearing facilities is still unknown, none of the currently infected tsetse species show any signs of disease from these viruses.


Assuntos
Vírus de Insetos/fisiologia , Vírus de RNA de Cadeia Positiva/fisiologia , Moscas Tsé-Tsé/virologia , Tropismo Viral , Animais , Encéfalo/virologia , Sistema Digestório/virologia , Corpo Adiposo/virologia , Feminino , Genitália/virologia , Genoma Viral , Vírus de Insetos/classificação , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Masculino , Filogenia , Vírus de RNA de Cadeia Positiva/classificação , Vírus de RNA de Cadeia Positiva/genética , Vírus de RNA de Cadeia Positiva/isolamento & purificação , Glândulas Salivares/virologia , Replicação Viral
4.
Viruses ; 13(11)2021 10 25.
Artigo em Inglês | MEDLINE | ID: mdl-34834955

RESUMO

Mosquitoes in the Aedes and Culex genera are considered the main vectors of pathogenic flaviviruses worldwide. Entomological surveillance using universal flavivirus sets of primers in mosquitoes can detect not only pathogenic viruses but also insect-specific ones. It is hypothesized that insect-specific flaviviruses, which naturally infect these mosquitoes, may influence their vector competence for zoonotic arboviruses. Here, entomological surveillance was performed between January 2014 and May 2018 in five different provinces in the northeastern parts of South Africa, with the aim of identifying circulating flaviviruses. Mosquitoes were sampled using different carbon dioxide trap types. Overall, 64,603 adult mosquitoes were collected, which were screened by RT-PCR and sequencing. In total, 17 pools were found positive for insect-specific Flaviviruses in the mosquito genera Aedes (12/17, 70.59%) and Anopheles (5/17, 29.41%). No insect-specific viruses were detected in Culex species. Cell-fusing agent viruses were detected in Aedes aegypti and Aedes caballus. A range of anopheline mosquitoes, including Anopheles coustani, An. squamosus and An. maculipalpis, were positive for Culex flavivirus-like and Anopheles flaviviruses. These results confirm the presence of insect-specific flaviviruses in mosquito populations in South Africa, expands their geographical range and indicates potential mosquito species as vector species.


Assuntos
Culicidae/virologia , Flavivirus/classificação , Flavivirus/isolamento & purificação , Mosquitos Vetores/virologia , Aedes/virologia , Animais , Anopheles/virologia , Arbovírus/classificação , Arbovírus/genética , Arbovírus/isolamento & purificação , Culex/virologia , Flavivirus/genética , Vírus de Insetos/isolamento & purificação , Filogenia , África do Sul
5.
Viruses ; 13(11)2021 11 04.
Artigo em Inglês | MEDLINE | ID: mdl-34835026

RESUMO

The fall armyworm (FAW), Spodoptera frugiperda, is a native pest species in the Western hemisphere. Since it was first reported in Africa in 2016, FAW has spread throughout the African continent and is now also present in several countries in Asia as well as Australia. The invasion of FAW in these areas has led to a high yield reduction in crops, leading to huge economic losses. FAW management options in the newly invaded areas are limited and mainly rely on the use of synthetic pesticides. Since there is a risk of resistance development against pesticides in addition to the negative environmental and human health impacts, other effective, sustainable, and cost-efficient control alternatives are desired. Insect pathogenic viruses fulfil these criteria as they are usually effective and highly host-specific with no significant harmful effect on beneficial insects and non-target organisms. In this review, we discuss all viruses known from FAW and their potential to be used for biological control. We specifically focus on baculoviruses and describe the recent advancements in the use of baculoviruses for biological control in the native geographic origin of FAW, and their potential use in the newly invaded areas. Finally, we identify current knowledge gaps and suggest new avenues for productive research on the use of viruses as a biopesticide against FAW.


Assuntos
Vírus de Insetos/fisiologia , Controle Biológico de Vetores , Spodoptera/virologia , Animais , Baculoviridae/classificação , Baculoviridae/isolamento & purificação , Baculoviridae/fisiologia , Agentes de Controle Biológico/isolamento & purificação , Produtos Agrícolas , Especificidade de Hospedeiro , Vírus de Insetos/classificação , Vírus de Insetos/isolamento & purificação , Controle Biológico de Vetores/tendências
6.
Viruses ; 13(8)2021 07 23.
Artigo em Inglês | MEDLINE | ID: mdl-34452301

RESUMO

Wasps of the genus Vespula are social insects that have become major pests and predators in their introduced range. Viruses present in these wasps have been studied in the context of spillover from honey bees, yet we lack an understanding of the endogenous virome of wasps as potential reservoirs of novel emerging infectious diseases. We describe the characterization of 68 novel and nine previously identified virus sequences found in transcriptomes of Vespula vulgaris in colonies sampled from their native range (Belgium) and an invasive range (New Zealand). Many viruses present in the samples were from the Picorna-like virus family (38%). We identified one Luteo-like virus, Vespula vulgaris Luteo-like virus 1, present in the three life stages examined in all colonies from both locations, suggesting this virus is a highly prevalent and persistent infection in wasp colonies. Additionally, we identified a novel Iflavirus with similarity to a recently identified Moku virus, a known wasp and honey bee pathogen. Experimental infection of honey bees with this novel Vespula vulgaris Moku-like virus resulted in an active infection. The high viral diversity present in these invasive wasps is a likely indication that their polyphagous diet is a rich source of viral infections.


Assuntos
Abelhas/virologia , Vírus de Insetos/isolamento & purificação , Vírus de Insetos/fisiologia , Vírus de RNA/isolamento & purificação , Vírus de RNA/fisiologia , Viroma , Vespas/virologia , Animais , Vírus de Insetos/classificação , Vírus de Insetos/genética , Vírus de RNA/classificação , Vírus de RNA/genética , Carga Viral , Replicação Viral
7.
Virology ; 562: 50-62, 2021 10.
Artigo em Inglês | MEDLINE | ID: mdl-34256244

RESUMO

We describe the isolation and characterization of a novel insect-specific flavivirus (ISFV), tentatively named Aripo virus (ARPV), that was isolated from Psorophora albipes mosquitoes collected in Trinidad. The ARPV genome was determined and phylogenetic analyses showed that it is a dual host associated ISFV, and clusters with the main mosquito-borne flaviviruses. ARPV antigen was significantly cross-reactive with Japanese encephalitis virus serogroup antisera, with significant cross-reactivity to Ilheus and West Nile virus (WNV). Results suggest that ARPV replication is limited to mosquitoes, as it did not replicate in the sandfly, culicoides or vertebrate cell lines tested. We also demonstrated that ARPV is endocytosed into vertebrate cells and is highly immunomodulatory, producing a robust innate immune response despite its inability to replicate in vertebrate systems. We show that prior infection or coinfection with ARPV limits WNV-induced disease in mouse models, likely the result of a robust ARPV-induced type I interferon response.


Assuntos
Flavivirus/imunologia , Imunomodulação , Vírus de Insetos/imunologia , Vertebrados/imunologia , Animais , Antígenos Virais/imunologia , Reações Cruzadas , Culicidae/virologia , Modelos Animais de Doenças , Flavivirus/genética , Flavivirus/isolamento & purificação , Flavivirus/patogenicidade , Genoma Viral/genética , Especificidade de Hospedeiro , Imunidade Inata , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Vírus de Insetos/patogenicidade , Macrófagos/imunologia , Camundongos , Filogenia , Vertebrados/virologia , Interferência Viral , Replicação Viral , Febre do Nilo Ocidental/imunologia , Vírus do Nilo Ocidental/imunologia , Vírus do Nilo Ocidental/patogenicidade
8.
Arch Virol ; 166(8): 2333-2335, 2021 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-34075444

RESUMO

The complete genome sequence of a novel iflavirus isolated from the gregarious and koinobiont endoparasitoid Tetrastichus brontispae, tentatively named "Tetrastichus brontispae RNA virus 3" (TbRV-3), was determined by total RNA and Sanger sequencing. The complete genome is 9998 nucleotides in length, 8934 nt of which encodes a putative polyprotein of 2978 amino acids. TbRV-3 was found to have a similar genome organization and to contain conserved domains and motifs found in other iflaviruses, with some variations. Phylogenetic analysis based on deduced amino acid sequences of the RdRp domain showed that TbRV-3 clustered with Dinocampus coccinellae paralysis virus (DcPV). However, the percent amino acid sequence identity of the putative capsid proteins of TbRV-3 and DcPV determined using BLASTp was below the species demarcation threshold (90%), suggesting that TbRV-3 is a new iflavirus. This is the first virus of the family Iflaviridae to be isolated from a wasp of the family Eulophidae.


Assuntos
Vírus de Insetos/classificação , Vespas/virologia , Sequenciamento Completo do Genoma/métodos , Sequência de Aminoácidos , Animais , Tamanho do Genoma , Genoma Viral , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Fases de Leitura Aberta , Filogenia , Análise de Sequência de RNA
9.
Viruses ; 13(5)2021 05 13.
Artigo em Inglês | MEDLINE | ID: mdl-34068017

RESUMO

The mulberry silkworm, Bombyx mori (L.), is a model organism of lepidopteran insects with high economic importance. The viral diseases of the silkworm caused by Bombyx mori nucleopolyhedrovirus (BmNPV) and Bombyx mori bidensovirus (BmBDV) inflict huge economic losses and significantly impact the sericulture industry of India and other countries. To understand the distribution of Indian isolates of the BmNPV and to investigate their genetic composition, an in-depth population structure analysis was conducted using comprehensive and newly developed genomic analysis methods. The seven new Indian BmNPV isolates from Anantapur, Dehradun, Ghumarwin, Jammu, Kashmir, Mysore and Salem grouped in the BmNPV clade, and are most closely related to Autographa californica multiple nucleopolyhedrovirus and Rachiplusia ou multiple nucleopolyhedrovirus on the basis of gene sequencing and phylogenetic analyses of the partial polh, lef-8 and lef-9 gene fragments. The whole genome sequencing of three Indian BmNPV isolates from Mysore (-My), Jammu (-Ja) and Dehradun (-De) was conducted, and intra-isolate genetic variability was analyzed on the basis of variable SNP positions and the frequencies of alternative nucleotides. The results revealed that the BmNPV-De and BmNPV-Ja isolates are highly similar in their genotypic composition, whereas the population structure of BmNPV-My appeared rather pure and homogenous, with almost no or few genetic variations. The BmNPV-De and BmNPV-Ja samples further contained a significant amount of BmBDV belonging to the Bidnaviridae family. We elucidated the genotype composition within Indian BmNPV and BmBDV isolates, and the results presented have broad implications for our understanding of the genetic diversity and evolution of BmNPV and co-occurring BmBDV isolates.


Assuntos
Bombyx/virologia , Genótipo , Vírus de Insetos/genética , Nucleopoliedrovírus/genética , Animais , DNA Viral , Genes Virais , Genoma Viral , Índia , Vírus de Insetos/classificação , Vírus de Insetos/isolamento & purificação , Nucleopoliedrovírus/classificação , Nucleopoliedrovírus/isolamento & purificação , Fases de Leitura Aberta , Filogenia , Filogeografia , Polimorfismo de Nucleotídeo Único , Análise de Sequência de DNA , Sequenciamento Completo do Genoma
10.
Viruses ; 14(1)2021 12 21.
Artigo em Inglês | MEDLINE | ID: mdl-35062206

RESUMO

Insects are crucial for ecosystem functions and services and directly influence human well-being and health [...].


Assuntos
Evolução Molecular , Vírus de Insetos/genética , Vírus de Insetos/fisiologia , Insetos/virologia , Animais , Vírus de Insetos/isolamento & purificação
11.
Viruses ; 12(11)2020 11 16.
Artigo em Inglês | MEDLINE | ID: mdl-33207597

RESUMO

In recent years, there has been growing evidence that certain types of honeybee viruses could be transmitted between different pollinators. Within a voluntary monitoring programme, 180 honeybee samples (Apis mellifera carnica) were collected from affected apiaries between 2007 and 2018. Also from August 2017 to August 2018, a total 148 samples of healthy bumblebees (Bombus lapidarius, B. pascuorum, B. terrestris, B. lucorum, B. hortorum, B. sylvarum, B. humilis) were collected at four different locations in Slovenia, and all samples were tested by using RT-PCR methods for six honeybee viruses. Direct sequencing of a total 158 positive samples (acute bee paralysis virus (ABPV n = 33), black queen cell virus (BQCV n = 75), sacbrood bee virus (SBV n = 25) and Lake Sinai virus (LSV n = 25)) was performed from obtained RT-PCR products. The genetic comparison of identified positive samples of bumblebees and detected honeybee field strains of ABPV, BQCV, SBV, and LSV demonstrated 98.74% to 100% nucleotide identity between both species. This study not only provides evidence that honeybees and bumblebees are infected with genetically identical or closely related viral strains of four endemically present honeybee viruses but also detected a high diversity of circulating strains in bumblebees, similar as was observed among honeybees. Important new genetic data for endemic strains circulating in honeybees and bumblebees in Slovenia are presented.


Assuntos
Abelhas/classificação , Abelhas/virologia , Dicistroviridae/classificação , Vírus de Insetos/classificação , Vírus de RNA/classificação , Animais , Dicistroviridae/genética , Dicistroviridae/isolamento & purificação , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Filogenia , Vírus de RNA/genética , Vírus de RNA/isolamento & purificação , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Eslovênia
12.
Viruses ; 12(11)2020 11 09.
Artigo em Inglês | MEDLINE | ID: mdl-33182262

RESUMO

The COVID-19 pandemic has shown that understanding the genomics of a virus, diagnostics and breaking virus transmission is essential in managing viral pandemics. The same lessons can apply for plant viruses. There are plant viruses that have severely disrupted crop production in multiple countries, as recently seen with maize lethal necrosis disease in eastern and southern Africa. High-throughput sequencing (HTS) is needed to detect new viral threats. Equally important is building local capacity to develop the tools required for rapid diagnosis of plant viruses. Most plant viruses are insect-vectored, hence, biological insights on virus transmission are vital in modelling disease spread. Research in Africa in these three areas is in its infancy and disjointed. Despite intense interest, uptake of HTS by African researchers is hampered by infrastructural gaps. The use of whole-genome information to develop field-deployable diagnostics on the continent is virtually inexistent. There is fledgling research into plant-virus-vector interactions to inform modelling of viral transmission. The gains so far have been modest but encouraging, and therefore must be consolidated. For this, I propose the creation of a new Research Centre for Africa. This bold investment is needed to secure the future of Africa's crops from insect-vectored viral diseases.


Assuntos
Produtos Agrícolas/virologia , Insetos Vetores/virologia , Doenças das Plantas/prevenção & controle , Viroses/prevenção & controle , África Austral , Agricultura/métodos , Animais , COVID-19 , Genoma Viral , Interações entre Hospedeiro e Microrganismos , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Vírus de Insetos/patogenicidade , Doenças das Plantas/virologia , Vírus de Plantas/patogenicidade , Viroses/transmissão , Zea mays/virologia
13.
Arch Virol ; 165(12): 2989-2992, 2020 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-32951134

RESUMO

Negeviruses are insect-specific enveloped RNA viruses that have been detected in mosquitoes and sandflies from various geographical locations. Here, we describe a new negevirus from Northern Europe, isolated from pool of Aedes vexans mosquitoes collected in Finland, designated as Mekrijärvi negevirus (MEJNV). MEJNV had a typical negevirus genome organization, is 9,740 nucleotides in length, and has a GC content of 47.53%. The MEJNV genome contains three ORFs, each containing the following identified conserved domains: ORF1 (7,068 nt) encodes a viral methyltransferase, an FtsJ-like methyltransferase, a viral RNA helicase, and an RNA-dependent RNA polymerase, ORF2 (1,242 nt) encodes a putative virion glycoprotein, and ORF3 (660 nt) encodes a putative virion membrane protein. A distinctive feature relative to other currently known negeviruses is a 7-nucleotide-long overlap between ORF1 and ORF2. MEJNV shares the highest sequence identity with Ying Kou virus from China, with 67.71% nucleotide and 75.19% and 59.00% amino acid sequence identity in ORF 1 and ORF 2, respectively. ORF3 had the highest amino acid sequence similarity to Daeseongdong virus 1 and negevirus Nona 1, both with 77.61% identity, and to Ying Kou virus, with 71.22% identity. MEJNV is currently the northernmost negevirus described. Our report supports the view that negeviruses are a globally distributed, diverse group of viruses that can be found from mosquitoes in a wide range of terrestrial biomes from tropical to boreal forests.


Assuntos
Aedes/virologia , Vírus de Insetos/classificação , Vírus de RNA/classificação , Sequência de Aminoácidos , Distribuição Animal , Animais , Linhagem Celular , Finlândia , Genoma Viral , Vírus de Insetos/isolamento & purificação , Fases de Leitura Aberta , Filogenia , Vírus de RNA/isolamento & purificação , RNA Viral/genética , RNA Polimerase Dependente de RNA/genética , Proteínas Virais/genética
14.
mSphere ; 5(5)2020 09 09.
Artigo em Inglês | MEDLINE | ID: mdl-32907949

RESUMO

Traditional screening for arboviruses in mosquitoes requires a priori knowledge and the utilization of appropriate assays for their detection. Mosquitoes can also provide other valuable information, including unexpected or novel arboviruses, nonarboviral pathogens ingested from hosts they feed on, and their own genetic material. Metagenomic analysis using next-generation sequencing (NGS) is a rapidly advancing technology that allows us to potentially obtain all this information from a mosquito sample without any prior knowledge of virus, host, or vector. Moreover, it has been recently demonstrated that pathogens, including arboviruses and parasites, can be detected in mosquito excreta by molecular methods. In this study, we investigated whether RNA viruses could be detected in mosquito excreta by NGS. Excreta samples were collected from Aedes vigilax and Culex annulirostris experimentally exposed to either Ross River or West Nile viruses and from field mosquitoes collected across Queensland, Australia. Total RNA was extracted from the excreta samples, reverse transcribed to cDNA, and sequenced using the Illumina NextSeq 500 platform. Bioinformatic analyses from the generated reads demonstrate that mosquito excreta provide sufficient RNA for NGS, allowing the assembly of near-full-length viral genomes. We detected Australian Anopheles totivirus, Wuhan insect virus 33, and Hubei odonate virus 5 and identified seven potentially novel viruses closely related to members of the order Picornavirales (2/7) and to previously described, but unclassified, RNA viruses (5/7). Our results suggest that metagenomic analysis of mosquito excreta has great potential for virus discovery and for unbiased arbovirus surveillance in the near future.IMPORTANCE When a mosquito feeds on a host, it ingests not only its blood meal but also an assortment of microorganisms that are present in the blood, thus acting as an environmental sampler. By using specific tests, it is possible to detect arthropod-borne viruses (arboviruses) like dengue and West Nile viruses in mosquito excreta. Here, we explored the use of next-generation sequencing (NGS) for unbiased detection of RNA viruses present in excreta from experimentally infected and field-collected mosquitoes. We have demonstrated that mosquito excreta provide a suitable template for NGS and that it is possible to recover and assemble near-full-length genomes of both arboviruses and insect-borne viruses, including potentially novel ones. These results importantly show the direct practicality of the use of mosquito excreta for NGS, which in the future could be used for virus discovery, environmental virome sampling, and arbovirus surveillance.


Assuntos
Aedes/virologia , Culex/virologia , Fezes/virologia , Vírus de Insetos/classificação , Viroma/genética , Animais , Arbovírus/classificação , Arbovírus/isolamento & purificação , Austrália , Genoma Viral , Sequenciamento de Nucleotídeos em Larga Escala , Vírus de Insetos/isolamento & purificação , Metagenômica
15.
PLoS One ; 15(9): e0237544, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-32898160

RESUMO

Honey bees (Apis mellifera) are important pollinators of plants, including those that produce nut, fruit, and vegetable crops. Therefore, high annual losses of managed honey bee colonies in the United States and many other countries threaten global agriculture. Honey bee colony deaths have been associated with multiple abiotic and biotic factors, including pathogens, but the impact of virus infections on honey bee colony population size and survival are not well understood. To further investigate seasonal patterns of pathogen presence and abundance and the impact of viruses on honey bee colony health, commercially managed colonies involved in the 2016 California almond pollination event were monitored for one year. At each sample date, colony health and pathogen burden were assessed. Data from this 50-colony cohort study illustrate the dynamic nature of honey bee colony health and the temporal patterns of virus infection. Black queen cell virus, deformed wing virus, sacbrood virus, and the Lake Sinai viruses were the most readily detected viruses in honey bee samples obtained throughout the year. Analyses of virus prevalence and abundance revealed pathogen-specific trends including the overall increase in deformed wing virus abundance from summer to fall, while the levels of Lake Sinai virus 2 (LSV2) decreased over the same time period. Though virus prevalence and abundance varied in individual colonies, analyses of the overall trends reveal correlation with sample date. Total virus abundance increased from November 2015 (post-honey harvest) to the end of the almond pollination event in March 2016, which coincides with spring increase in colony population size. Peak total virus abundance occurred in late fall (August and October 2016), which correlated with the time period when the majority of colonies died. Honey bee colonies with larger populations harbored less LSV2 than weaker colonies with smaller populations, suggesting an inverse relationship between colony health and LSV2 abundance. Together, data from this and other longitudinal studies at the colony level are forming a better understanding of the impact of viruses on honey bee colony losses.


Assuntos
Abelhas/virologia , Vírus de Insetos/isolamento & purificação , Viroses/veterinária , Agricultura , Animais , Estações do Ano , Viroses/virologia
16.
Viruses ; 12(9)2020 08 31.
Artigo em Inglês | MEDLINE | ID: mdl-32878245

RESUMO

Arthropod-borne viruses contribute significantly to global mortality and morbidity in humans and animals. These viruses are mainly transmitted between susceptible vertebrate hosts by hematophagous arthropod vectors, especially mosquitoes. Recently, there has been substantial attention for a novel group of viruses, referred to as insect-specific viruses (ISVs) which are exclusively maintained in mosquito populations. Recent discoveries of novel insect-specific viruses over the past years generated a great interest not only in their potential use as vaccine and diagnostic platforms but also as novel biological control agents due to their ability to modulate arbovirus transmission. While arboviruses infect both vertebrate and invertebrate hosts, the replication of insect-specific viruses is restricted in vertebrates at multiple stages of virus replication. The vertebrate restriction factors include the genetic elements of ISVs (structural and non-structural genes and the untranslated terminal regions), vertebrate host factors (agonists and antagonists), and the temperature-dependent microenvironment. A better understanding of these bottlenecks is thus warranted. In this review, we explore these factors and the complex interplay between ISVs and their hosts contributing to this host restriction phenomenon.


Assuntos
Arbovírus/fisiologia , Artrópodes/virologia , Vírus de Insetos/fisiologia , Viroses/virologia , Animais , Arbovírus/classificação , Arbovírus/genética , Arbovírus/isolamento & purificação , Artrópodes/classificação , Artrópodes/fisiologia , Especificidade de Hospedeiro , Humanos , Vírus de Insetos/classificação , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Viroses/transmissão
17.
Viruses ; 12(8)2020 08 14.
Artigo em Inglês | MEDLINE | ID: mdl-32823841

RESUMO

The health of honey bees is threatened by multiple factors, including viruses and parasites. We screened 557 honey bee (Apis mellifera) colonies from 155 beekeepers distributed all over Belgium to determine the prevalence of seven widespread viruses and two parasites (Varroa sp. and Nosema sp.). Deformed wing virus B (DWV-B), black queen cell virus (BQCV), and sacbrood virus (SBV) were highly prevalent and detected by real-time RT-PCR in more than 95% of the colonies. Acute bee paralysis virus (ABPV), chronic bee paralysis virus (CBPV) and deformed wing virus A (DWV-A) were prevalent to a lower extent (between 18 and 29%). Most viruses were only present at low or moderate viral loads. Nevertheless, about 50% of the colonies harbored at least one virus at high viral load (>107 genome copies/bee). Varroa mites and Nosema sp. were found in 81.5% and 59.7% of the honey bee colonies, respectively, and all Nosema were identified as Nosema ceranae by real time PCR. Interestingly, we found a significant correlation between the number of Varroa mites and DWV-B viral load. To determine the combined effect of these and other factors on honey bee health in Belgium, a follow up of colonies over multiple years is necessary.


Assuntos
Abelhas/virologia , Vírus de Insetos/classificação , Viroses/veterinária , Animais , Abelhas/parasitologia , Bélgica/epidemiologia , Dicistroviridae/genética , Dicistroviridae/isolamento & purificação , Vírus de Insetos/isolamento & purificação , Nosema/genética , Nosema/isolamento & purificação , Vírus de RNA/genética , Vírus de RNA/isolamento & purificação , Varroidae/fisiologia , Carga Viral , Viroses/epidemiologia
18.
Viruses ; 12(7)2020 06 27.
Artigo em Inglês | MEDLINE | ID: mdl-32604989

RESUMO

Negeviruses are a proposed group of insect-specific viruses that can be separated into two distinct phylogenetic clades, Nelorpivirus and Sandewavirus. Negeviruses are well-known for their wide geographic distribution and broad host range among hematophagous insects. In this study, the full genomes of two novel negeviruses from each of these clades were identified by RNA extraction and sequencing from a single dungfly (Scathophaga furcata) collected from the Arctic Yellow River Station, where these genomes are the first negeviruses from cold zone regions to be discovered. Nelorpivirus dungfly1 (NVD1) and Sandewavirus dungfly1 (SVD1) have the typical negevirus genome organization and there was a very high coverage of viral transcripts. Small interfering RNAs derived from both viruses were readily detected in S. furcata, clearly showing that negeviruses are targeted by the host antiviral RNA interference (RNAi) pathway. These results and subsequent in silico analysis (studies) of public database and published virome data showed that the hosts of nege-like viruses include insects belonging to many orders as well as various non-insects in addition to the hematophagous insects previously reported. Phylogenetic analysis reveals at least three further groups of negeviruses, as well as several poorly resolved solitary branches, filling in the gaps within the two sub-groups of negeviruses and plant-associated viruses in the Kitaviridae. The results of this study will contribute to a better understanding of the geographic distribution, host range, evolution and host antiviral immune responses of negeviruses.


Assuntos
Dípteros/virologia , Vírus de RNA/isolamento & purificação , Animais , Regiões Árticas , Genoma Viral , Especificidade de Hospedeiro , Vírus de Insetos/classificação , Vírus de Insetos/genética , Vírus de Insetos/isolamento & purificação , Vírus de Insetos/fisiologia , Filogenia , Vírus de RNA/classificação , Vírus de RNA/genética , Vírus de RNA/fisiologia
19.
Arch Virol ; 165(9): 1987-1994, 2020 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-32588240

RESUMO

A new virus belonging to the family Dicistroviridae was identified in the hibiscus-infesting cotton mealybug Phenacoccus solenopsis. Using high-throughput sequencing (HTS) on an Illumina HiSeq platform, a single contig of the complete genome sequence was assembled. The authenticity of the sequence obtained by HTS was validated by RT-PCR and Sanger sequencing of the amplicons, which was also employed for the 3' untranslated region (UTR). The 5' UTR was sequenced using a rapid amplification of cDNA ends kit. A large segment encompassing the whole genome was amplified by RT-PCR using viral RNA extracted from mealybugs. A whole-genome nucleotide sequence comparison showed 89% sequence identity to aphid lethal paralysis virus (ALPV), covering a short segment of 44 bp. Pairwise amino acid sequence comparisons of the protein encoded by open reading frame (ORF) 2 with its counterparts in the GenBank database, showed less than 40% identity to several members of the genus Cripavirus, including ALPV. Phylogenetic analysis based on the deduced amino acid sequence of the ORF 2 protein showed that the new virus grouped with members of the genus Cripavirus. The intergenic region (IGR) internal ribosome entry site (IRES) showed the conserved nucleotides of a type I IGR IRES and had two bulge sites, three pseudoknots, and two stem-loops. Virus morphology visualized by transmission electron microscopy demonstrated spherical particles with a diameter of ~30 nm. This virus was the only arthropod virus identified in the sampled mealybugs, and the purified virus was able to infect cotton mealybugs. To the best of our knowledge, this is the first report of a Dicistroviridae family member infecting P. solenopsis, and we have tentatively named this virus Phenacoccus solenopsis virus (PhSoV).


Assuntos
Dicistroviridae/isolamento & purificação , Hemípteros/virologia , Vírus de Insetos/isolamento & purificação , Regiões 5' não Traduzidas , Animais , Sequência de Bases , Dicistroviridae/classificação , Dicistroviridae/genética , Genoma Viral , Vírus de Insetos/classificação , Vírus de Insetos/genética , Sítios Internos de Entrada Ribossomal , Fases de Leitura Aberta , Filogenia , Proteínas Virais/genética
20.
Arch Virol ; 165(9): 2053-2056, 2020 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-32556548

RESUMO

Chronic bee paralysis virus (CBPV) is a positive single-stranded RNA virus that exhibits a worldwide distribution. Although the effects of this virus on honeybees' health are well known, its presence in other bee species has not been fully studied. In this work, CBPV was detected in several native bees from Argentina, including Bombus pauloensis, Halictillus amplilobus, Peponapis fervens, and members of the genus Xylocopa. Here, we report for the first time the presence of CBPV in native bees from South America.


Assuntos
Abelhas/virologia , Vírus de Insetos/isolamento & purificação , Vírus de RNA/isolamento & purificação , Animais , Argentina , Abelhas/classificação , Vírus de Insetos/classificação , Vírus de Insetos/genética , Filogenia , Vírus de RNA/classificação , Vírus de RNA/genética
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