Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 530
Filtrar
1.
Recurso na Internet em Português | LIS, LIS-bvsms, LIS-SMS-SP | ID: lis-49745

RESUMO

O site atua como uma plataforma central para conectar cidadãos, profissionais de saúde, pesquisadores e gestores públicos, facilitando o acesso a informações e serviços essenciais para a saúde no Brasil. informações atualizadas sobre políticas, programas e ações de saúde pública, além de dados epidemiológicos e estatísticas de saúde. Campanhas de conscientização sobre prevenção de doenças, saúde da mulher, saúde infantil, saúde do idoso, entre outras áreas. Legislação e Regulamentação: Publicar e atualizar normas, portarias, resoluções e diretrizes relacionadas ao sistema de saúde e à prática médica no Brasil, etc


Assuntos
Infecções por Bunyaviridae/prevenção & controle , Orthobunyavirus , Insetos/virologia , Ceratopogonidae/virologia
2.
Methods Mol Biol ; 2838: 77-89, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-39126624

RESUMO

Epizootic hemorrhagic disease virus (EHDV), like other orbiviruses, infects and replicates in mammalian and insect vector cells. Within its ruminant hosts EHDV, like bluetongue virus (BTV), it has mainly been associated with infection of endothelial cells of capillaries as well as leukocyte subsets. Furthermore, EHDV infects and replicates within its biological vector, Culicoides biting midges and Culicoides-derived cells. A wide range of common laboratory cell lines such as BHK, BSR, and Vero cells are susceptible to infection with certain EHDV strains. Cell culture supernatants of infected cells are commonly used for both in vivo and in vitro infection studies. For specific virological or immunological studies, using highly purified virus particles, however, might be beneficial or even required. Here we describe a purification method for EHDV particles, which had been originally developed for certain strains of BTV.


Assuntos
Vírus da Doença Hemorrágica Epizoótica , Vírion , Animais , Vírus da Doença Hemorrágica Epizoótica/isolamento & purificação , Linhagem Celular , Vírion/isolamento & purificação , Chlorocebus aethiops , Células Vero , Orbivirus/isolamento & purificação , Ceratopogonidae/virologia , Insetos/virologia , Infecções por Reoviridae/virologia , Infecções por Reoviridae/veterinária , Cricetinae
3.
Methods Mol Biol ; 2838: 221-237, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-39126636

RESUMO

Epizootic hemorrhagic disease virus (EHDV) is transmitted by Culicoides biting midges. Studies aiming to predict the likely spread of EHDV require an understanding of the viral infection and replication kinetics within these insects, including the proportion of the insect population that are able to support virus transmission. Here, we describe methods for the infection of Culicoides with EHDV in the laboratory via oral infection using an artificial membrane system or a cotton pledget and intrathoracic (IT) inoculation. Each method can be used to explore determinants of vector competence of Culicoides species and populations for EHDV.


Assuntos
Ceratopogonidae , Vírus da Doença Hemorrágica Epizoótica , Insetos Vetores , Infecções por Reoviridae , Animais , Ceratopogonidae/virologia , Vírus da Doença Hemorrágica Epizoótica/fisiologia , Insetos Vetores/virologia , Infecções por Reoviridae/transmissão , Infecções por Reoviridae/virologia , Infecções por Reoviridae/veterinária
4.
Vet Med Sci ; 10(5): e1555, 2024 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-39180313

RESUMO

INTRODUCTION: Culicoides Latreille biting midges are vectors of high concern as they can transmit serious veterinary diseases such as bluetongue virus or epizootic haemorrhagic disease virus, among others. Little is known about these vectors in Galicia, so a comprehensive literature review and an intensive monitoring were carried out in the region. MATERIAL AND METHODS: The Autonomous Community of Galicia was sampled through three different vector surveillance projects between 2004 and 2023. A total of 239 sampling points were deployed alongside the Galician territory. In addition, a literature review of Culicoides in Galicia related content was made by consulting several digital repositories. RESULTS: A total of 33 species of Culicoides belonging to 8 subgenera were identified. Among them, 15 are considered or suspected to be potential vectors of several pathogens of medical and/or veterinary interest. In addition, 20 of them are reported for the first time in the region. Updated distribution maps of the Culicoides biting midges of Galicia were provided, including several notes regarding their ecology and relevance for both public health and animal welfare. CONCLUSIONS: The present work is one of the most complete works made at regional level in Spain to date. As Galicia's economy relies heavily on livestock farming, this work will provide a solid baseline in order to develop new research lines in the future regarding prevention to vector-borne diseases.


Assuntos
Ceratopogonidae , Insetos Vetores , Ceratopogonidae/fisiologia , Ceratopogonidae/virologia , Animais , Espanha , Insetos Vetores/virologia , Insetos Vetores/fisiologia , Distribuição Animal , Biodiversidade
5.
Parasit Vectors ; 17(1): 354, 2024 Aug 21.
Artigo em Inglês | MEDLINE | ID: mdl-39169433

RESUMO

BACKGROUND: Culicoides biting midges exhibit a global spatial distribution and are the main vectors of several viruses of veterinary importance, including bluetongue (BT) and African horse sickness (AHS). Many environmental and anthropological factors contribute to their ability to live in a variety of habitats, which have the potential to change over the years as the climate changes. Therefore, as new habitats emerge, the risk for new introductions of these diseases of interest to occur increases. The aim of this study was to model distributions for two primary vectors for BT and AHS (Culicoides imicola and Culicoides bolitinos) using random forest (RF) machine learning and explore the relative importance of environmental and anthropological factors in a region of South Africa with frequent AHS and BT outbreaks. METHODS: Culicoides capture data were collected between 1996 and 2022 across 171 different capture locations in the Western Cape. Predictor variables included climate-related variables (temperature, precipitation, humidity), environment-related variables (normalised difference vegetation index-NDVI, soil moisture) and farm-related variables (livestock densities). Random forest (RF) models were developed to explore the spatial distributions of C. imicola, C. bolitinos and a merged species map, where both competent vectors were combined. The maps were then compared to interpolation maps using the same capture data as well as historical locations of BT and AHS outbreaks. RESULTS: Overall, the RF models performed well with 75.02%, 61.6% and 74.01% variance explained for C. imicola, C. bolitinos and merged species models respectively. Cattle density was the most important predictor for C. imicola and water vapour pressure the most important for C. bolitinos. Compared to interpolation maps, the RF models had higher predictive power throughout most of the year when species were modelled individually; however, when merged, the interpolation maps performed better in all seasons except winter. Finally, midge densities did not show any conclusive correlation with BT or AHS outbreaks. CONCLUSION: This study yielded novel insight into the spatial abundance and drivers of abundance of competent vectors of BT and AHS. It also provided valuable data to inform mathematical models exploring disease outbreaks so that Culicoides-transmitted diseases in South Africa can be further analysed.


Assuntos
Doença Equina Africana , Bluetongue , Ceratopogonidae , Insetos Vetores , Aprendizado de Máquina , Animais , Bovinos , Doença Equina Africana/epidemiologia , Doença Equina Africana/transmissão , Doença Equina Africana/virologia , Bluetongue/epidemiologia , Bluetongue/transmissão , Bluetongue/virologia , Vírus Bluetongue , Ceratopogonidae/virologia , Clima , Surtos de Doenças , Ecossistema , Cavalos , Insetos Vetores/virologia , Algoritmo Florestas Aleatórias , África do Sul/epidemiologia , Ovinos
6.
Viruses ; 16(8)2024 Jul 30.
Artigo em Inglês | MEDLINE | ID: mdl-39205195

RESUMO

Most mathematical models that assess the vectorial capacity of disease-transmitting insects typically focus on the influence of climatic factors to predict variations across different times and locations, or examine the impact of vector control interventions to forecast their potential effectiveness. We combine features of existing models to develop a novel model for vectorial capacity that considers both climate and vector control. This model considers how vector control tools affect vectors at each stage of their feeding cycle, and incorporates host availability and preference. Applying this model to arboviruses of veterinary importance in Europe, we show that African horse sickness virus (AHSV) has a higher peak predicted vectorial capacity than bluetongue virus (BTV), Schmallenberg virus (SBV), and epizootic haemorrhagic disease virus (EHDV). However, AHSV has a shorter average infectious period due to high mortality; therefore, the overall basic reproduction number of AHSV is similar to BTV. A comparable relationship exists between SBV and EHDV, with both viruses showing similar basic reproduction numbers. Focusing on AHSV transmission in the UK, insecticide-treated stable netting is shown to significantly reduce vectorial capacity of Culicoides, even at low coverage levels. However, untreated stable netting is likely to have limited impact. Overall, this model can be used to consider both climate and vector control interventions either currently utilised or for potential use in an outbreak, and could help guide policy makers seeking to mitigate the impact of climate change on disease control.


Assuntos
Infecções por Arbovirus , Arbovírus , Ceratopogonidae , Clima , Insetos Vetores , Animais , Infecções por Arbovirus/transmissão , Infecções por Arbovirus/prevenção & controle , Arbovírus/fisiologia , Insetos Vetores/virologia , Insetos Vetores/fisiologia , Ceratopogonidae/virologia , Ceratopogonidae/fisiologia , Modelos Teóricos , Europa (Continente)/epidemiologia , Número Básico de Reprodução , Vírus Bluetongue/fisiologia
7.
Prev Vet Med ; 230: 106290, 2024 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-39079192

RESUMO

Bluetongue disease is an infectious disease transmitted by Culicoides as vectors, mainly infecting ruminants. Because ruminants play an important role in animal husbandry in China, the outbreak of bluetongue disease can cause serious economic losses. Maxent model was applied to predict the distribution of bluetongue in China based on the data derived from domestic and foreign academic literature databases including CNKI, Wanfang Database, PubMed, Web of Science and Google Scholar. The results showed that annual mean temperature (BIO1), precipitation in driest month (BIO14), sheep density (SD) and altitude (Elev) were the relevant variables of bioclimatic suitable zones for bluetongue disease. Precipitation in wettest month (BIO13), BIO1, BIO14, Elev were the main variables affecting the habitat of the bluetongue vector Culicoides. The most suitable climate for bluetongue infection occurs in southern China, central China and parts of Xinjiang. The suitable living areas of Culicoides are mainly located in southern, central and eastern China, and the overlap of the two suitable areas is high. The study suggested that southern, central, and eastern China are high-risk areas for bluetongue due to the significant overlap of suitable habitats for both the disease and its vector. Implementing effective surveillance and targeted control strategies in these regions is crucial for mitigating the impact of bluetongue disease.


Assuntos
Bluetongue , Ceratopogonidae , Bluetongue/transmissão , Bluetongue/epidemiologia , Animais , China/epidemiologia , Ceratopogonidae/virologia , Ovinos , Insetos Vetores/virologia , Vírus Bluetongue/fisiologia , Clima
8.
Viruses ; 16(7)2024 Jul 19.
Artigo em Inglês | MEDLINE | ID: mdl-39066322

RESUMO

Biting midges (Culicoides) are vectors of many pathogens of medical and veterinary importance, but their viromes are poorly characterized compared to certain other hematophagous arthropods, e.g., mosquitoes and ticks. The goal of this study was to use metagenomics to identify viruses in Culicoides from Mexico. A total of 457 adult midges were collected in Chihuahua, northern Mexico, in 2020 and 2021, and all were identified as female Culicoides reevesi. The midges were sorted into five pools and homogenized. An aliquot of each homogenate was subjected to polyethylene glycol precipitation to enrich for virions, then total RNA was extracted and analyzed by unbiased high-throughput sequencing. We identified six novel viruses that are characteristic of viruses from five families (Nodaviridae, Partitiviridae, Solemoviridae, Tombusviridae, and Totiviridae) and one novel virus that is too divergent from all classified viruses to be assigned to an established family. The newly discovered viruses are phylogenetically distinct from their closest known relatives, and their minimal infection rates in female C. reevesi range from 0.22 to 1.09. No previously known viruses were detected, presumably because viral metagenomics had never before been used to study Culicoides from the Western Hemisphere. To conclude, we discovered multiple novel viruses in C. reevesi from Mexico, expanding our knowledge of arthropod viral diversity and evolution.


Assuntos
Ceratopogonidae , Filogenia , Animais , Ceratopogonidae/virologia , México , Feminino , Metagenômica , Viroma , Sequenciamento de Nucleotídeos em Larga Escala , Insetos Vetores/virologia , Genoma Viral
9.
J Gen Virol ; 105(6)2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38921821

RESUMO

Schmallenberg virus (SBV) belongs to the Simbu serogroup within the family Peribunyaviridae, genus Orthobunyavirus and is transmitted by Culicoides biting midges. Infection of naïve ruminants in a critical phase of gestation may lead to severe congenital malformations. Sequence analysis from viremic animals revealed a very high genome stability. In contrast, sequence variations are frequently described for SBV from malformed fetuses. In addition to S segment mutations, especially within the M segment encoding the major immunogen Gc, point mutations or genomic deletions are also observed. Analysis of the SBV_D281/12 isolate from a malformed fetus revealed multiple point mutations in all three genome segments. It also has a large genomic deletion in the antigenic domain encoded by the M segment compared to the original SBV reference strain 'BH80/11' isolated from viremic blood in 2011. Interestingly, SBV_D281/12 showed a marked replication deficiency in vitro in Culicoides sonorensis cells (KC cells), but not in standard baby hamster kidney cells (BHK-21). We therefore generated a set of chimeric viruses of rSBV_D281/12 and wild-type rSBV_BH80/11 by reverse genetics, which were characterized in both KC and BHK-21 cells. It could be shown that the S segment of SBV_D281/12 is responsible for the replication deficit and that it acts independently from the large deletion within Gc. In addition, a single point mutation at position 111 (S to N) of the nucleoprotein was identified as the critical mutation. Our results suggest that virus variants found in malformed fetuses and carrying characteristic genomic mutations may have a clear 'loss of fitness' for their insect hosts in vitro. It can also be concluded that such mutations lead to virus variants that are no longer part of the natural transmission cycle between mammalian and insect hosts. Interestingly, analysis of a series of SBV sequences confirmed the S111N mutation exclusively in samples of malformed fetuses and not in blood from viremic animals. The characterization of these changes will allow the definition of protein functions that are critical for only one group of hosts.


Assuntos
Infecções por Bunyaviridae , Ceratopogonidae , Genoma Viral , Orthobunyavirus , Animais , Orthobunyavirus/genética , Orthobunyavirus/classificação , Orthobunyavirus/isolamento & purificação , Infecções por Bunyaviridae/virologia , Infecções por Bunyaviridae/veterinária , Ceratopogonidae/virologia , Cricetinae , Linhagem Celular , Replicação Viral , Mutação Puntual , Bovinos , Ovinos , Filogenia , RNA Viral/genética
12.
Viruses ; 16(5)2024 04 25.
Artigo em Inglês | MEDLINE | ID: mdl-38793556

RESUMO

Yunnan province in China shares its borders with three neighboring countries: Myanmar, Vietnam, and Laos. The region is characterized by a diverse climate and is known to be a suitable habitat for various arthropods, including midges which are notorious for transmitting diseases which pose significant health burdens affecting both human and animal health. A total of 431,100 midges were collected from 15 different locations in the border region of Yunnan province from 2015 to 2020. These midges were divided into 37 groups according to the collection year and sampling site. These 37 groups of midges were then homogenized to extract nucleic acid. Metatranscriptomics were used to analyze their viromes. Based on the obtained cytochrome C oxidase I gene (COI) sequences, three genera were identified, including one species of Forcipomyia, one species of Dasyhelea, and twenty-five species of Culicoides. We identified a total of 3199 viruses in five orders and 12 families, including 1305 single-stranded positive-stranded RNA viruses (+ssRNA) in two orders and seven families, 175 single-stranded negative-stranded RNA viruses (-ssRNA) in two orders and one family, and 1719 double-stranded RNA viruses in five families. Six arboviruses of economic importance were identified, namely Banna virus (BAV), Japanese encephalitis virus (JEV), Akabane virus (AKV), Bluetongue virus (BTV), Tibetan circovirus (TIBOV), and Epizootic hemorrhagic disease virus (EHDV), all of which are capable, to varying extents, of causing disease in humans and/or animals. The survey sites in this study basically covered the current distribution area of midges in Yunnan province, which helps to predict the geographic expansion of midge species. The complexity and diversity of the viral spectrum carried by midges identified in the study calls for more in-depth research, which can be utilized to monitor arthropod vectors and to predict the emergence and spread of zoonoses and animal epidemics, which is of great significance for the control of vector-borne diseases.


Assuntos
Ceratopogonidae , Filogenia , Animais , China , Ceratopogonidae/virologia , Ceratopogonidae/genética , Vírus de RNA/genética , Vírus de RNA/classificação , Vírus de RNA/isolamento & purificação , Transcriptoma , Insetos Vetores/virologia , Viroma/genética , Humanos
13.
Viruses ; 16(5)2024 05 11.
Artigo em Inglês | MEDLINE | ID: mdl-38793647

RESUMO

(1) Background: Epizootic hemorrhagic disease virus (EHDV) and bluetongue virus (BTV) are orbiviruses that cause hemorrhagic disease (HD) with significant economic and population health impacts on domestic livestock and wildlife. In the United States, white-tailed deer (Odocoileus virginianus) are particularly susceptible to these viruses and are a frequent blood meal host for various species of Culicoides biting midges (Diptera: Ceratopogonidae) that transmit orbiviruses. The species of Culicoides that transmit EHDV and BTV vary between regions, and larval habitats can differ widely between vector species. Understanding how midges are distributed across landscapes can inform HD virus transmission risk on a local scale, allowing for improved animal management plans to avoid suspected high-risk areas or target these areas for insecticide control. (2) Methods: We used occupancy modeling to estimate the abundance of gravid (egg-laden) and parous (most likely to transmit the virus) females of two putative vector species, C. stellifer and C. venustus, and one species, C. haematopotus, that was not considered a putative vector. We developed a universal model to determine habitat preferences, then mapped a predicted weekly midge abundance during the HD transmission seasons in 2015 (July-October) and 2016 (May-October) in Florida. (3) Results: We found differences in habitat preferences and spatial distribution between the parous and gravid states for C. haematopotus and C. stellifer. Gravid midges preferred areas close to water on the border of well and poorly drained soil. They also preferred mixed bottomland hardwood habitats, whereas parous midges appeared less selective of habitat. (4) Conclusions: If C. stellifer is confirmed as an EHDV vector in this region, the distinct spatial and abundance patterns between species and physiological states suggest that the HD risk is non-random across the study area.


Assuntos
Animais Selvagens , Vírus Bluetongue , Ceratopogonidae , Cervos , Vírus da Doença Hemorrágica Epizoótica , Insetos Vetores , Infecções por Reoviridae , Animais , Ceratopogonidae/virologia , Ceratopogonidae/fisiologia , Vírus da Doença Hemorrágica Epizoótica/fisiologia , Cervos/virologia , Insetos Vetores/virologia , Insetos Vetores/fisiologia , Vírus Bluetongue/fisiologia , Animais Selvagens/virologia , Infecções por Reoviridae/transmissão , Infecções por Reoviridae/veterinária , Infecções por Reoviridae/virologia , Ecossistema , Estações do Ano , Fazendas , Aves/virologia
14.
Parasit Vectors ; 17(1): 212, 2024 May 10.
Artigo em Inglês | MEDLINE | ID: mdl-38730488

RESUMO

BACKGROUND: As a primary vector of bluetongue virus (BTV) in the US, seasonal abundance and diel flight activity of Culicoides sonorensis has been documented, but few studies have examined how time of host-seeking activity is impacted by environmental factors. This knowledge is essential for interpreting surveillance data and modeling pathogen transmission risk. METHODS: The diel host-seeking activity of C. sonorensis was studied on a California dairy over 3 years using a time-segregated trap baited with CO2. The relationship between environmental variables and diel host-seeking activity (start, peak, and duration of activity) of C. sonorensis was evaluated using multiple linear regression. Fisher's exact test and paired-sample z-test were used to evaluate the seasonal difference and parity difference on diel host-seeking activity. RESULTS: Host-seeking by C. sonorensis began and reached an activity peak before sunset at a higher frequency during colder months relative to warmer months. The time that host-seeking activity occurred was associated low and high daily temperature as well as wind speed at sunset. Colder temperatures and a greater diurnal temperature range were associated with an earlier peak in host-seeking. Higher wind speeds at sunset were associated with a delayed peak in host-seeking and a shortened duration of host-seeking. Parous midges reached peak host-seeking activity slightly later than nulliparous midges, possibly because of the need for oviposition by gravid females before returning to host-seeking. CONCLUSIONS: This study demonstrates that during colder months C. sonorensis initiates host-seeking and reaches peak host-seeking activity earlier relative to sunset, often even before sunset, compared to warmer months. Therefore, the commonly used UV light-baited traps are ineffective for midge surveillance before sunset. Based on this study, surveillance methods that do not rely on light trapping would provide a more accurate estimate of host-biting risk across seasons. The association of environmental factors to host-seeking shown in this study can be used to improve modeling or prediction of host-seeking activity. This study identified diurnal temperature range as associated with host-seeking activity, suggesting that Culicoides may respond to a rapidly decreasing temperature by shifting to an earlier host-seeking time, though this association needs further study.


Assuntos
Ceratopogonidae , Estações do Ano , Animais , Ceratopogonidae/fisiologia , Ceratopogonidae/virologia , California , Feminino , Temperatura , Indústria de Laticínios , Insetos Vetores/fisiologia , Insetos Vetores/virologia , Comportamento de Busca por Hospedeiro , Bovinos , Meio Ambiente , Vírus Bluetongue/fisiologia , Bluetongue/transmissão
15.
Virus Genes ; 60(3): 325-331, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38492201

RESUMO

Whole-genome sequencing of a virus isolated from Culicoides biting midges in southern Japan in 2020 revealed that it is a strain of Balagodu virus (BLGV; genus Orthobunyavirus; family Peribunyaviridae; order Bunyavirales). A solitary instance of BLGV isolation occurred in India in 1963. All assembled segments comprise complete protein-coding sequences that are similar to those of other orthobunyaviruses. The consensus 3'- and 5'-terminal sequences of orthobunyaviruses' genomic RNAs are also conserved in the Japanese BLGV strain. Here, we update the geographic distribution of BLGV and provide its complete sequence, contributing to the clarification of orthobunyavirus phylogeny.


Assuntos
Genoma Viral , Orthobunyavirus , Filogenia , Sequenciamento Completo do Genoma , Japão , Genoma Viral/genética , Orthobunyavirus/genética , Orthobunyavirus/isolamento & purificação , Orthobunyavirus/classificação , Animais , RNA Viral/genética , Ceratopogonidae/virologia , Infecções por Bunyaviridae/virologia
16.
J Virol ; 96(15): e0075122, 2022 08 10.
Artigo em Inglês | MEDLINE | ID: mdl-35867566

RESUMO

Lumpy skin disease virus (LSDV) is a poxvirus that causes severe systemic disease in cattle and is spread by mechanical arthropod-borne transmission. This study quantified the acquisition and retention of LSDV by four species of Diptera (Stomoxys calcitrans, Aedes aegypti, Culex quinquefasciatus, and Culicoides nubeculosus) from cutaneous lesions, normal skin, and blood from a clinically affected animal. The acquisition and retention of LSDV by Ae. aegypti from an artificial membrane feeding system was also examined. Mathematical models of the data were generated to identify the parameters which influence insect acquisition and retention of LSDV. For all four insect species, the probability of acquiring LSDV was substantially greater when feeding on a lesion compared with feeding on normal skin or blood from a clinically affected animal. After feeding on a skin lesion LSDV was retained on the proboscis for a similar length of time (around 9 days) for all four species and for a shorter time in the rest of the body, ranging from 2.2 to 6.4 days. Acquisition and retention of LSDV by Ae. aegypti after feeding on an artificial membrane feeding system that contained a high titer of LSDV was comparable to feeding on a skin lesion on a clinically affected animal, supporting the use of this laboratory model as a replacement for some animal studies. This work reveals that the cutaneous lesions of LSD provide the high-titer source required for acquisition of the virus by insects, thereby enabling the mechanical vector-borne transmission. IMPORTANCE Lumpy skin disease virus (LSDV) is a high consequence pathogen of cattle that is rapidly expanding its geographical boundaries into new regions such as Europe and Asia. This expansion is promoted by the mechanical transmission of the virus via hematogenous arthropods. This study quantifies the acquisition and retention of LSDV by four species of blood-feeding insects and reveals that the cutaneous lesions of LSD provide the high titer virus source necessary for virus acquisition by the insects. An artificial membrane feeding system containing a high titer of LSDV was shown to be comparable to a skin lesion on a clinically affected animal when used as a virus source. This promotes the use of these laboratory-based systems as replacements for some animal studies. Overall, this work advances our understanding of the mechanical vector-borne transmission of LSDV and provides evidence to support the design of more effective disease control programmes.


Assuntos
Sangue , Dípteros , Comportamento Alimentar , Insetos Vetores , Doença Nodular Cutânea , Vírus da Doença Nodular Cutânea , Aedes/anatomia & histologia , Aedes/virologia , Animais , Bovinos/virologia , Ceratopogonidae/anatomia & histologia , Ceratopogonidae/virologia , Culex/anatomia & histologia , Culex/virologia , Dípteros/anatomia & histologia , Dípteros/fisiologia , Dípteros/virologia , Insetos Vetores/anatomia & histologia , Insetos Vetores/fisiologia , Insetos Vetores/virologia , Doença Nodular Cutânea/virologia , Vírus da Doença Nodular Cutânea/isolamento & purificação , Vírus da Doença Nodular Cutânea/fisiologia , Membranas Artificiais , Muscidae/anatomia & histologia , Muscidae/virologia , Fatores de Tempo
17.
J Virol ; 96(13): e0053122, 2022 07 13.
Artigo em Inglês | MEDLINE | ID: mdl-35727032

RESUMO

Segmented RNA viruses are a taxonomically diverse group that can infect plant, wildlife, livestock and human hosts. A shared feature of these viruses is the ability to exchange genome segments during coinfection of a host by a process termed "reassortment." Reassortment enables rapid evolutionary change, but where transmission involves a biological arthropod vector, this change is constrained by the selection pressures imposed by the requirement for replication in two evolutionarily distant hosts. In this study, we use an in vivo, host-arbovirus-vector model to investigate the impact of reassortment on two phenotypic traits, virus infection rate in the vector and virulence in the host. Bluetongue virus (BTV) (Reoviridae) is the causative agent of bluetongue (BT), an economically important disease of domestic and wild ruminants and deer. The genome of BTV comprises 10 linear segments of dsRNA, and the virus is transmitted between ruminants by Culicoides biting midges (Diptera: Ceratopogonidae). Five strains of BTV representing three serotypes (BTV-1, BTV-4, and BTV-8) were isolated from naturally infected ruminants in Europe and ancestral/reassortant lineage status assigned through full genome sequencing. Each strain was then assessed in parallel for the ability to replicate in vector Culicoides and to cause BT in sheep. Our results demonstrate that two reassortment strains, which themselves became established in the field, had obtained high replication ability in C. sonorensis from one of the ancestral virus strains, which allowed inferences of the genome segments conferring this phenotypic trait. IMPORTANCE Reassortment between virus strains can lead to major shifts in the transmission parameters and virulence of segmented RNA viruses, with consequences for spread, persistence, and impact. The ability of these pathogens to adapt rapidly to their environment through this mechanism presents a major challenge in defining the conditions under which emergence can occur. Utilizing a representative mammalian host-insect vector infection and transmission model, we provide direct evidence of this phenomenon in closely related ancestral and reassortant strains of BTV. Our results demonstrate that efficient infection of Culicoides observed for one of three ancestral BTV strains was also evident in two reassortant strains that had subsequently emerged in the same ecosystem.


Assuntos
Vetores Artrópodes , Vírus Bluetongue , Bluetongue , Ceratopogonidae , Doenças dos Ovinos , Animais , Vetores Artrópodes/virologia , Bluetongue/transmissão , Bluetongue/virologia , Vírus Bluetongue/classificação , Vírus Bluetongue/genética , Vírus Bluetongue/patogenicidade , Ceratopogonidae/virologia , Cervos , Fenótipo , Vírus Reordenados/metabolismo , Ovinos , Doenças dos Ovinos/transmissão , Doenças dos Ovinos/virologia , Replicação Viral
18.
Sci Rep ; 12(1): 1748, 2022 02 02.
Artigo em Inglês | MEDLINE | ID: mdl-35110661

RESUMO

African horse sickness is a vector-borne, non-contagious and highly infectious disease of equines caused by African horse sickness viruses (AHSv) that mainly affect horses. The occurrence of the disease causes huge economic impacts because of its high fatality rate, trade ban and disease control costs. In the planning of vectors and vector-borne diseases like AHS, the application of Ecological niche models (ENM) used an enormous contribution in precisely delineating the suitable habitats of the vector. We developed an ENM to delineate the global suitability of AHSv based on retrospective outbreak data records from 2005 to 2019. The model was developed in an R software program using the Biomod2 package with an Ensemble modeling technique. Predictive environmental variables like mean diurnal range, mean precipitation of driest month(mm), precipitation seasonality (cv), mean annual maximum temperature (oc), mean annual minimum temperature (oc), mean precipitation of warmest quarter(mm), mean precipitation of coldest quarter (mm), mean annual precipitation (mm), solar radiation (kj /day), elevation/altitude (m), wind speed (m/s) were used to develop the model. From these variables, solar radiation, mean maximum temperature, average annual precipitation, altitude and precipitation seasonality contributed 36.83%, 17.1%, 14.34%, 7.61%, and 6.4%, respectively. The model depicted the sub-Sahara African continent as the most suitable area for the virus. Mainly Senegal, Burkina Faso, Niger, Nigeria, Ethiopia, Sudan, Somalia, South Africa, Zimbabwe, Madagascar and Malawi are African countries identified as highly suitable countries for the virus. Besides, OIE-listed disease-free countries like India, Australia, Brazil, Paraguay and Bolivia have been found suitable for the virus. This model can be used as an epidemiological tool in planning control and surveillance of diseases nationally or internationally.


Assuntos
Vírus da Doença Equina Africana , Doença Equina Africana , Ecossistema , Modelos Estatísticos , África/epidemiologia , Doença Equina Africana/epidemiologia , Doença Equina Africana/transmissão , Animais , Ceratopogonidae/virologia , Surtos de Doenças/veterinária , Cavalos , Índia/epidemiologia , Insetos Vetores/virologia , Software , África do Sul/epidemiologia , América do Sul/epidemiologia , Temperatura , Doenças Transmitidas por Vetores/epidemiologia , Doenças Transmitidas por Vetores/transmissão , Doenças Transmitidas por Vetores/veterinária
19.
Parasit Vectors ; 14(1): 564, 2021 Nov 03.
Artigo em Inglês | MEDLINE | ID: mdl-34732239

RESUMO

BACKGROUND: Bluetongue virus (BTV) and epizootic hemorrhagic disease virus (EHDV) are orbiviruses that can cause fatal vector-borne diseases in white-tailed deer (Odocoileus virginianus). Trapping methods for collecting potential Culicoides vectors of orbiviruses were compared to optimize surveillance studies. METHODS: The number of captured midges and the virus infection rates of midge pools were compared for dry ice-baited Centers for Disease Control and Prevention (CDC) traps with or without black light. The number of individual midges of different Culicoides species captured at different crepuscular and nocturnal periods using rotator traps also was determined. The number of species/specimens of Culicoides was measured using five different trap methods including three animal-baited methods, a CDC trap with black light, and a CDC trap with no light. RESULTS: In trial one, there was no significant difference (P = 0.37) in the proportion of BTV-infected flies caught in traps with light compared to traps without light. However, there was a significant difference (P = 0.026) for EHDV-infected flies, and 89% were captured in traps with light. In trial two, more specimens of C. debilipalpis were captured in the morning hours (06:00-08:00) than in the evening hours (18:00-20:00). For trial three, the animal-baited traps did not capture any species of Culicoides that were not captured in the CDC light traps. There was no significant difference (P = 0.22) in total specimens captured among all five trap types. CONCLUSIONS: Specimens of Culicoides infected with BTV were not repelled by light traps in the first trial, while the majority of the specimens positive for EHDV were caught in traps with light. For the second trial, specimens of C. debilipalpis were most abundant during early morning hours, and thus spray applications of insecticides for control of that species may be more effective at sunrise rather than sunset. For objective three, no animal-baited trapping method collected different species of midges when compared to the CDC traps with light, which is unlike certain studies conducted in other geographical regions.


Assuntos
Ceratopogonidae/fisiologia , Cervos/virologia , Controle de Insetos/métodos , Insetos Vetores/fisiologia , Infecções por Reoviridae/veterinária , Animais , Ceratopogonidae/virologia , Controle de Insetos/instrumentação , Insetos Vetores/virologia , Orbivirus/fisiologia , Infecções por Reoviridae/transmissão , Infecções por Reoviridae/virologia
20.
Viruses ; 13(11)2021 11 02.
Artigo em Inglês | MEDLINE | ID: mdl-34835014

RESUMO

Bluetongue virus serotypes 1 to 24 are transmitted primarily by infected Culicoides midges, in which they also replicate. However, "atypical" BTV serotypes (BTV-25, -26, -27 and -28) have recently been identified that do not infect and replicate in adult Culicoides, or a Culicoides derived cell line (KC cells). These atypical viruses are transmitted horizontally by direct contact between infected and susceptible hosts (primarily small ruminants) causing only mild clinical signs, although the exact transmission mechanisms involved have yet to be determined. We used reverse genetics to generate a strain of BTV-1 (BTV-1 RGC7) which is less virulent, infecting IFNAR(-/-) mice without killing them. Reassortant viruses were also engineered, using the BTV-1 RGC7 genetic backbone, containing individual genome segments derived from BTV-26. These reassortant viruses were used to explore the genetic control of horizontal transmission (HT) in the IFNAR(-/-) mouse model. Previous studies showed that genome segments 1, 2 and 3 restrict infection of Culicoides cells, along with a minor role for segment 7. The current study demonstrates that genome segments 2, 5 and 10 of BTV-26 (coding for proteins VP2, NS1 and NS3/NS3a/NS5, respectively) are individually sufficient to promote HT.


Assuntos
Vírus Bluetongue/genética , Transmissão de Doença Infecciosa , Vírus Reordenados/genética , Animais , Bluetongue/virologia , Ceratopogonidae/virologia , Modelos Animais de Doenças , Engenharia Genética , Camundongos , Camundongos Knockout , Receptor de Interferon alfa e beta , Sorogrupo
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA
...