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111 results for “Aedes albopictus”
Supplementary material 12 from: Gloria-Soria A, Shragai T, Ciota AT, Duval TB, Alto BW, Martins AJ, Westby KM, Medley KA, Unlu I, Campbell SR, Kawalkowski M, Tsuda Y, Higa Y, Indelicato N, Leisnham PT, Caccone A, Armstrong PM (2022) Population genetics of an invasive mosquito vector, Aedes albopictus in the Northeastern USA. NeoBiota 78: 99-127. https://doi.org/10.3897/neobiota.78.84986
Population structure of Aedes albopictus at the United States northeastern invasion front (New York, Connecticut, Massachusetts) based on 15 microsatellite markers
Supplementary material 11 from: Gloria-Soria A, Shragai T, Ciota AT, Duval TB, Alto BW, Martins AJ, Westby KM, Medley KA, Unlu I, Campbell SR, Kawalkowski M, Tsuda Y, Higa Y, Indelicato N, Leisnham PT, Caccone A, Armstrong PM (2022) Population genetics of an invasive mosquito vector, Aedes albopictus in the Northeastern USA. NeoBiota 78: 99-127. https://doi.org/10.3897/neobiota.78.84986
Population structure of Aedes albopictus from the United States and Japan based on 15 microsatellite markers
Supplementary material 10 from: Gloria-Soria A, Shragai T, Ciota AT, Duval TB, Alto BW, Martins AJ, Westby KM, Medley KA, Unlu I, Campbell SR, Kawalkowski M, Tsuda Y, Higa Y, Indelicato N, Leisnham PT, Caccone A, Armstrong PM (2022) Population genetics of an invasive mosquito vector, Aedes albopictus in the Northeastern USA. NeoBiota 78: 99-127. https://doi.org/10.3897/neobiota.78.84986
Estimates of effective population size based of Connecticut populations obtained with NeEstimator (Do et al. 2014)
Supplementary material 8 from: Gloria-Soria A, Shragai T, Ciota AT, Duval TB, Alto BW, Martins AJ, Westby KM, Medley KA, Unlu I, Campbell SR, Kawalkowski M, Tsuda Y, Higa Y, Indelicato N, Leisnham PT, Caccone A, Armstrong PM (2022) Population genetics of an invasive mosquito vector, Aedes albopictus in the Northeastern USA. NeoBiota 78: 99-127. https://doi.org/10.3897/neobiota.78.84986
Genetic clusters inferred from all Connecticut collections using discriminant analysis of principal components in the ADEGENET package
Supplementary material 5 from: Gloria-Soria A, Shragai T, Ciota AT, Duval TB, Alto BW, Martins AJ, Westby KM, Medley KA, Unlu I, Campbell SR, Kawalkowski M, Tsuda Y, Higa Y, Indelicato N, Leisnham PT, Caccone A, Armstrong PM (2022) Population genetics of an invasive mosquito vector, Aedes albopictus in the Northeastern USA. NeoBiota 78: 99-127. https://doi.org/10.3897/neobiota.78.84986
Probability of a recent bottleneck at each Aedes albopictus location, under the infinite allele model (IAM) and the two-phase model (TPM) with variance of 0.36
Chikungunya intra-vector infection dynamics in a French Aedes albopictus population reveals low vector barrier intensity and supports an explosive epidemic potential
<p>Arbovirus emergence and epidemic potential, as approximated by the vectorial capacity formula, depends on host and vector parameters, including the vector’s intrinsic ability to replicate then transmit the pathogen known as vector competence. Vector competence is a complex, time-dependent, quantitative phenotype influenced by biotic and abiotic factors. A combination of experimental and modelling approaches is required to assess arbovirus intra-vector dynamics and estimate its epidemic potential. In this study, we measured infection, dissemination, and transmission dynamics of chikungunya virus (CHIKV) in a field-derived <em>Aedes albopictus</em> population (Lyon metropolis, France) after oral exposure to a range of virus doses spanning human viraemia. Statistical modelling indicates rapid and efficient CHIKV progression in the vector mainly due to an absence of a dissemination barrier, with 100% of the infected mosquitoes ultimately exhibiting a disseminated infection, regardless of the virus dose. Transmission rate data revealed a time-dependent, but overall weak, transmission barrier, with individuals transmitting as soon as 2 days post-exposure (dpe) and >50% infectious mosquitoes at 6 dpe for the highest dose. Based on these experimental intra-vector dynamics data, epidemiological simulations conducted with an agent-based model showed that even at low mosquito biting rates, CHIKV could trigger explosive outbreaks. Together, this reveals the high epidemic potential of CHIKV upon transmission by <em>Aedes albopictus</em> in mainland France.</p>
Female pupa 0h Aedes albopictus
<p>Tomogram of <em>Aedes albopictus</em> pupa soon after pupation.</p>
Aedes albopictus has not become the dominant species in artificial container habitats in a temperate forest more than a decade after establishment
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Data from: Bionomics and insecticide resistance of the arboviral vector Aedes albopictus in northern Lao PDR
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Literature based occurrence locations of Aedes aegypti and Aedes albopictus in India since 2015
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Data from: Rapid adaptation to novel climate at the northern range edge of the invasive Asian tiger mosquito Aedes albopictus: a moving target
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Life-history stage and the population genetics of the tiger mosquito Aedes albopictus at a fine spatial scale
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Investigating the impact of human settlements upon the availability of larval habitats and Aedes albopictus population
<b>Description: </b><p>This experiment analysed the impact of human settlements upon Aedes albopictus populations. Surveys were conducted in natural environments (twice-logged forest) and human settlements in oil palm and logged forest. At each study site, three surveys were conducted: <br><br>1) Aquatic Habitat Survey: within the study area, all bodies of water were analysed for abiotic characteristics – container type, water volume, air temperature, water temperature, canopy cover and turbidity. <br>2) Larval Survey: for each body of water, the number of and stage of larvae/pupae was recorded. Larvae/pupae were extracted from the water, reared to adults and Ae. albopictus were identified. <br>3) Adult Population Survey: human landing catches were conducted to collect Ae. albopictus adults. Abundance and sex ratio was recorded for each location, and the wing span of each individual was taken. </p><p><b>Project: </b>This dataset was collected as part of the following SAFE research project: <a href="https://www.safeproject.net/projects/project_view/202"><b>Investigating the impact of human settlements upon the availability of larval habitats and Aedes albopictus populations</b></a></p><p><b>Funding: </b>These data were collected as part of research funded by: </p><ul><li>SAFE - Tropical Forest Ecology Masters (Studentship)</li></ul><p>This dataset is released under the CC-BY 4.0 licence, requiring that you cite the dataset in any outputs, but has the additional condition that you acknowledge the contribution of these funders in any outputs.</p><p></p><p><b>Permits: </b>These data were collected under permit from the following authorities:</p><ul><li>Sabah Biodiversity Centre (Research licence JKM/MBS.1000-2/2 JDL.8 (59))</li><li>Medical Research & Ethics Committee (Ethics licence NMRR-17-3242-39250 (IIR))</li></ul><p></p><p><b>XML metadata: </b>GEMINI compliant metadata for this dataset is available <a href="https://www.safeproject.net/datasets/xml_metadata?id=3929764">here</a></p><p><b>Files: </b>This dataset consists of 4 files: M_Vollans_Larval_Habitats_19v2.xlsx, Larval_Adult_ID.zip, HLC_Wing_Length.zip, Larval_Habitat_Photos.zip</p><p><b>M_Vollans_Larval_Habitats_19v2.xlsx</b></p><p>This file contains dataset metadata and 4 data tables:</p><ol><li><p><b>Aquatic Habitat Survey</b> (described in worksheet AquaticHabitatSurvey)</p><p>Description: AquaticHabitatSurvey</p><p>Number of fields: 30</p><p>Number of data rows: 89</p><p>Fields: </p><ul><li><b>Date</b>: Date of survey (Field type: date)</li><li><b>Land_Type</b>: Details of Land-Type (Field type: categorical)</li><li><b>Location</b>: Details of location. OP = Oil Palm, LF = Logged Forest (Field type: categorical)</li><li><b>Replicate</b>: Details location, as named in location sheet. To 'replicate' resolution. (Field type: location)</li><li><b>Number_10m^2_Square</b>: Number 10m^2 surveyed (Field type: replicate)</li><li><b>Sampling_Region</b>: Details of 10m^2 the aquatic habitat corresponds to: in human settlements, this is the type of building, and in natural environments, the compass direction of the square from the second order point (N/S/E/W). (Field type: replicate)</li><li><b>Elevation</b>: Elevation from GPS (Field type: numeric)</li><li><b>GPS_file_name</b>: File name saved on GPS (Field type: id)</li><li><b>Access_Available</b>: Record of whether able to access the aquatic habitat (Field type: categorical)</li><li><b>Comments</b>: General comments on aquatic habitat (Field type: comments)</li><li><b>Canopy_cover</b>: Record of canopy cover. NA where inside. Data incomplete. (Field type: numeric)</li><li><b>Inside/Outside</b>: Record of whether the aquatic habitat is inside or outside (NA for natural land types, where all larval habitats are outside). (Field type: categorical)</li><li><b>Water_Turbidity</b>: Water turbidity, subjective categorization by a consistant surveyer. (Field type: categorical)</li><li><b>Water_Temperature</b>: Temperature of the water in the aquatic habitat. NOTE: potential faulty equipment. This data was not used in analysis. (Field type: numeric)</li><li><b>Air_Temperature</b>: Temperature of the air directly above the aquatic habitat. (Field type: numeric)</li><li><b>Type_Aquatic_Habitat</b>: Record of the type of aquatic habitat (Field type: categorical)</li><li><b>In_Constant_Use</b>: Record of whether the aquatic habitat is in constant use. (Field type: categorical)</li><li><b>Water_Volume</b>: Total water volume of the aquatic habitat (Field type: numeric)</li><li><b>Radius</b>: Radius of the aquatic habitat (Field type: numeric)</li><li><b>Diameter</b>: Diameter of the aquatic habitat (Field type: numeric)</li><li><b>Length</b>: Length of the aquatic habitat (Field type: numeric)</li><li><b>Width</b>: Width of the aquatic habitat (Field type: numeric)</li><li><b>Water_Depth</b>: Depth of the water in the aquatic habitat (Field type: numeric)</li><li><b>Larval/Pupal_Presence</b>: Record of whether larvae/ pupae are present in the aquatic habitat. (Field type: categorical)</li><li><b>Total_Number_Larvae/Pupae</b>: The total number of larvae / pupae found within an aquatic habitat. (Field type: numeric)</li><li><b>1/2_Instar_Larvae_Number</b>: The number of 1st and 2nd instar larvae found within an aquatic habitat. (Field type: numeric)</li><li><b>3/4_Instar_Larvae_Number</b>: The number of 3rd and 4th instar larvae found within an aquatic habitat. (Field type: numeric)</li><li><b>Pupae_Number</b>: The number of pupae found within an aquatic habitat. (Field type: numeric)</li><li><b>Further_comments</b>: Further comments on aquatic habitat. (Field type: comments)</li><li><b>Photo.folder.name</b>: Folder name containing photos of the study site. (Field type: id)</li></ul></li><li><p><b>Larva lAdult ID</b> (described in worksheet LarvalAdultID)</p><p>Description: LarvalAdultID</p><p>Number of fields: 6</p><p>Number of data rows: 76</p><p>Fields: </p><ul><li><b>Date_of_ID</b>: Date of survey (Field type: date)</li><li><b>Ae.albopictus</b>: Record of whether adults are Ae. albopictus, or some other member of the Culicidae (Field type: taxa)</li><li><b>Location</b>: Details of location. (Field type: location)</li><li><b>Wing_length</b>: Measurement of wing length. (Field type: numeric trait)</li><li><b>Photo_folder_ID</b>: Folder name containing photos for adult ID and wing length. (Field type: id)</li><li><b>Comments</b>: General comments about identification / wingspan measurement. (Field type: comments)</li></ul></li><li><p><b>HLC overview</b> (described in worksheet HLCoverview)</p><p>Description: HLCoverview</p><p>Number of fields: 8</p><p>Number of data rows: 16</p><p>Fields: </p><ul><li><b>Date</b>: Date of survey (Field type: date)</li><li><b>Location</b>: Broad location of where HLC occurred. (Field type: location)</li><li><b>Comments</b>: Qualitative details about exact location. (Field type: comments)</li><li><b>Ae.albopictus</b>: Number of Ae. albopictus obtained during a single 1.5 hour sample. (Field type: abundance)</li><li><b>Number_of_males</b>: Number of Ae. albopictus males (Field type: numeric)</li><li><b>Sex_Ratio_(M/Total)</b>: Sex Ratio (number of males / total number) (Field type: numeric)</li><li><b>Survey_complete</b>: Record if it was possible to complete the HLC survey. (Field type: categorical)</li><li><b>Further_comments</b>: Further comments (Field type: comments)</li></ul></li><li><p><b>HLC adult ID</b> (described in worksheet HLCadultID)</p><p>Description: HLCadultID</p><p>Number of fields: 8</p><p>Number of data rows: 111</p><p>Fields: </p><ul><li><b>Date</b>: Date of sampling (Field type: date)</li><li><b>Location</b>: Broad location of where HLC occurred. (Field type: location)</li><li><b>Specific_Location</b>: Qualitative details about exact location. (Field type: comments)</li><li><b>Sex</b>: Sex (Field type: categorical)</li><li><b>Wing Length</b>: Wing length measurement (Field type: numeric trait)</li><li><b>Weather</b>: Weather description (Field type: categorical)</li><li><b>Comments</b>: Comments on wing dissection issues. (Field type: comments)</li><li><b>Photo_Code</b>: Folder name containing wing length photos. (Field type: id)</li></ul></li></ol><p><b>Larval_Adult_ID.zip</b></p><p>Description: Zip file containing JPEG images to ID adult mosquitoes reared from collected larvae. </p><p><b>HLC_Wing_Length.zip</b></p><p>Description: Zip file containing JPEG images of the wingspan of adult mosquitoes collected via HLC. </p><p><b>Larval_Habitat_Photos.zip</b></p><p>Description: Zip file containing photos of some of the larval habitats encountered, and some general landscapes. </p><p><b>Date range: </b>2019-04-03 to 2019-05-06</p><p><b>Latitudinal extent: </b>4.5000 to 5.0700</p><p><b>Longitudinal extent: </b>116.7500 to 117.8200</p><p><b>Taxonomic coverage: </b><br> All taxon names are validated against the GBIF backbone taxonomy. If a dataset uses a synonym, the accepted usage is shown followed by the dataset usage in brackets. Taxa that cannot be validated, including new species and other unknown taxa, morphospecies, functional groups and taxonomic levels not used in the GBIF backbone are shown in square brackets.</p><div> -  Animalia <br> -  -  Arthropoda <br> -  -  -  Insecta <br> -  -  -  -  Diptera <br> -  -  -  -  -  Culicidae <br> -  -  -  -  -  -  <i>Aedes</i> <br> -  -  -  -  -  -  -  <i>Aedes albopictus</i> <br></div><p></p>
Vectorial capacity of Aedes albopictus across an environmental gradient
<b>Description: </b><p>Dataset of Aedes albopictus mosquito life history traits across a land-use gradient. <br></p><p><b>Project: </b>This dataset was collected as part of the following SAFE research project: <a href="https://www.safeproject.net/projects/project_view/38"><b>Vectorial Capacity across an Environmental Gradient</b></a></p><p><b>Funding: </b>These data were collected as part of research funded by: </p><ul><li>Imperial College London Grantham Institute Science and Solutions for a Changing Planet DTP (Studentship, NE/L002515/1, <a href="https://www.imperial.ac.uk/grantham/education/science-and-solutions-for-a-changing-planet-dtp/">https://www.imperial.ac.uk/grantham/education/science-and-solutions-for-a-changing-planet-dtp/</a>)</li></ul><p>This dataset is released under the CC-BY 4.0 licence, requiring that you cite the dataset in any outputs, but has the additional condition that you acknowledge the contribution of these funders in any outputs.</p><p></p><p><b>XML metadata: </b>GEMINI compliant metadata for this dataset is available <a href="https://www.safeproject.net/datasets/xml_metadata?id=3994260">here</a></p><p><b>Files: </b>This consists of 1 file: Aedes_life_history.xlsx</p><p><b>Aedes_life_history.xlsx</b></p><p>This file contains dataset metadata and 2 data tables:</p><ol><li><p><b>Larval development time</b> (described in worksheet Larval_development)</p><p>Description: Dataset of Ae. albopictus larval development time across a land-use gradient. Larval experiments were reared according to methods described in Gregory et al. (2019) Env. Res. Lett. </p><p>Number of fields: 12</p><p>Number of data rows: 1329</p><p>Fields: </p><ul><li><b>date</b>: Date of mosquito observation (Field type: date)</li><li><b>location</b>: SAFE sampling location where larval experiments were conducted (Field type: location)</li><li><b>tank</b>: ID of the larval rearing tank (Field type: id)</li><li><b>type</b>: land-use type (Field type: categorical)</li><li><b>temp_mean</b>: average daily temperature at sampling site (Field type: numeric)</li><li><b>temp_range</b>: average daily temperature range at sampling sites (Field type: numeric)</li><li><b>temp_max</b>: average daily maximum temperature at sampling sites (Field type: numeric)</li><li><b>temp_min</b>: average daily minimum temperature at sampling sites (Field type: numeric)</li><li><b>dev_days</b>: number of days from egg hatching to adult emergence (Field type: numeric)</li><li><b>wings</b>: wing length (from distal end of alula to peripheral vein R3, excluding fringe) (Field type: numeric)</li><li><b>sex</b>: sex of mosquito (Field type: categorical)</li><li><b>taxa</b>: species (Field type: taxa)</li></ul></li><li><p><b>Adult mosquito abundance</b> (described in worksheet Host-seeking_adults)</p><p>Description: Dataset of host-seeking adult Aedes albopictus abundance and parity status. Mosquito abundance data was determined by human landing catches conducted in human settlements in logged forest and oil palm plantations. Parity assessment determined by dissection and ovary tracheation. </p><p>Number of fields: 9</p><p>Number of data rows: 276</p><p>Fields: </p><ul><li><b>date</b>: date of human landing catch (Field type: date)</li><li><b>locations</b>: location of HLC (Field type: location)</li><li><b>type</b>: Land-use type classification of HLC sampling location (Field type: categorical)</li><li><b>taxa</b>: mosquito species (Field type: taxa)</li><li><b>sex</b>: sex of mosquito (Field type: categorical)</li><li><b>wing_</b>: wing length of mosquito (Field type: numeric)</li><li><b>parity</b>: parity status of mosquito (Field type: categorical)</li><li><b>sperm</b>: mating status of mosquito (Field type: categorical)</li><li><b>nematodes</b>: number of nematode parasites in mosquito (Field type: numeric)</li></ul></li></ol><p><b>Date range: </b>2016-03-15 to 2018-03-08</p><p><b>Latitudinal extent: </b>4.3812 to 5.0700</p><p><b>Longitudinal extent: </b>116.7500 to 117.8200</p><p><b>Taxonomic coverage: </b><br> All taxon names are validated against the GBIF backbone taxonomy. If a dataset uses a synonym, the accepted usage is shown followed by the dataset usage in brackets. Taxa that cannot be validated, including new species and other unknown taxa, morphospecies, functional groups and taxonomic levels not used in the GBIF backbone are shown in square brackets.</p><div> -  Animalia <br> -  -  Arthropoda <br> -  -  -  Insecta <br> -  -  -  -  Diptera <br> -  -  -  -  -  Culicidae <br> -  -  -  -  -  -  <i>Aedes</i> <br> -  -  -  -  -  -  -  <i>Aedes albopictus</i> <br></div><p></p>
A linkage-based genome assembly for the mosquito Aedes albopictus and identification of chromosomal regions affecting diapause
<p>The Asian tiger mosquito, Aedes albopictus, is an invasive vector mosquito of substantial public health concern. The large genome size (~1.19-1.28 Gb by cytofluorometric estimates), comprised of ~68% repetitive DNA sequences, has made it difficult to produce a high-quality genome assembly for this species. We constructed a high-density linkage map for Ae. albopictus based on 111,328 informative SNPs obtained by RNAseq. We then performed a linkage-map anchored reassembly of AalbF2, the genome assembly produced by Palatini et al. (2020). Our re-assembled genome sequence, AalbF3, represents several improvements relative to AalbF2. First, the size of the AalbF3 assembly is 1.45 Gb, almost half the size of AalbF2. Furthermore, relative to AalbF2, AalbF3 contains a higher proportion of complete and single-copy BUSCO genes (84.3%) and a higher proportion of aligned RNAseq reads that map concordantly to a single location of the genome (46%). We demonstrate the utility of AalbF3 by using it as reference for a bulk segregant-based comparative genomics analysis which identifies chromosomal regions with clusters of candidate SNPs putatively associated with photoperiodic diapause, a crucial ecological adaptation underpinning the rapid range expansion and climatic adaptation of Ae. albopictus.</p>
Data from: Bacterial microbiota assemblage in Aedes albopictus mosquitoes and its impacts on larval development
Interactions between bacterial microbiota and mosquitoes play an important role in mosquitoes' capacity to transmit pathogens. However, microbiota assemblages within mosquitoes and the impact of microbiota in environments on mosquito development and survival remain unclear. This study examined microbiota assemblages and the effects of aquatic environment microbiota on the larval development of the Aedes albopictus mosquito, an important dengue virus vector. Life table studies have found that reducing bacterial load in natural aquatic habitats through water filtering and treatment with antibiotics significantly reduced the larva-to-adult emergence rate. This finding was consistent in two types of larval habitats examined—discarded tires and flowerpots, suggesting that bacteria play a crucial role in larval development. Pyrosequencing of the bacterial 16S rRNA gene was used to determine the diversity of bacterial communities in larval habitats and the resulting numbers of mosquitoes under both laboratory and field conditions. The microbiota profiling identified common shared bacteria among samples from different years; further studies are needed to determine whether these bacteria represent a core microbiota. The highest microbiota diversity was found in aquatic habitats, followed by mosquito larvae, and the lowest in adult mosquitoes. Mosquito larvae ingested their bacterial microbiota and nutrients from aquatic habitats of high microbiota diversity. Taken together, the results support the observation that Ae. albopictus larvae are able to utilize diverse bacteria from aquatic habitats, and that live bacteria from aquatic habitats play an important role in larval mosquito development and survival. These findings provide new insights into bacteria's role in mosquito larval ecology.
Data from: Epigenetic alterations and decreasing insecticide sensitivity of the Asian tiger mosquito Aedes albopictus
A range of environmental factors, including chemicals, can affect epigenetic processes in organisms leading to variations in phenotype. Thus, epigenetics displays an important environmentally responsive element. The transgenerational impact of environmental stressors on DNA methylation and phenotype was the focus of this study. The influence of two known DNA methylation-changing agents, the phytoestrogen genistein and the fungicide vinclozolin, on the overall DNA methylation level in the Asian tiger mosquito Aedes albopictus was investigated. The experiment comprised four generations in a full life-cycle design with an exposed parental generation and three consecutive non-exposed offspring generations. Application of the methylation agents to the parental generation of the study led to an alteration of the global DNA methylation level of the exposed individuals and those in two subsequent generations. The phenotypic variability of the offspring generations was assessed by examining their insecticide sensitivity. Here, a significant decrease in sensitivity (p<0.01) towards the model insecticide imidacloprid revealed alterations of the mosquito's phenotype in two subsequent generations. Thus, the evaluation of A. albopictus from an epigenetic perspective can contribute important information to the study of the high adaptability of this invasive disease vector to new environments, and its underlying mechanisms.
Differential impacts of environmental yeasts on larval development and oviposition behavior of the Asian tiger mosquito Aedes albopictus
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The mouth development during pupal stage in Aedes albopictus females
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High genetic diversity but no geographic structure of Aedes albopictus populations in Reunion Island _ Dataset
<p>Microsatellite dataset of <em>Aedes albopictus</em> individuals sampled in Reunion Island. </p>
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