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111 results for “Aedes albopictus”
Dataset for Article: "Hitchhiking Mosquitoes: Direct Evidence of Adult Aedes albopictus Dispersal by Car"
<p>This is the dataset used for the analysis in the article Hitchhiking Mosquitoes: Direct Evidence of Adult Aedes albopictus Dispersal by Car, by Roger Eritja, John R.B. Palmer, David Roiz, Isis Sanpera-Calbet, and Frederic Bartumeus. </p>
Female pupa 1h Aedes albopictus
<p>X/ray tomography of female pupae of Aedes albopictus, 1 hour after pupation.</p>
Female pupa 6h Aedes albopictus
<p>X-ray tomography dataset of an Aedes albopictus female pupa at 6 hours after pupation</p>
Female pupa 2h Aedes albopictus
<p>X-ray tomography dataset of a female pupa of Aedes albopictus 2 hours after pupation</p>
Female pupa 5h Aedes albopictus
<p>X-ray tomography dataset of female pupa of <i>Aedes albopictus</i> 5 hours after pupation</p>
Female pupa 4h Aedes albopictus
<p>X-ray tomography dataset of Aedes albopictus pupa 4h after pupation</p>
Female pupa 7h Aedes albopictus
<p>X-ray tomography dataset of female pupa of Aedes albopictus 7 hours after pupation</p>
Female pupa 20h Aedes albopictus
<p>X-ray tomography of <i>Aedes albopictus</i> female pupa at 20 hours post pupation.</p><p> </p>
Female pupa 8h Aedes albopictus
<p>X/ray tomography dataset of female pupa of <i>Aedes albopictus</i> 8h after pupation</p>
Female pupa 30h Aedes albopictus
<p>X-ray tomography dataset of female pupa of <i>Aedes albopictus</i> 30h after pupation</p>
Larva Aedes albopictus
<p>X-ray tomography of Aedes albopictus larva</p>
Female pupa 40h Aedes albopictus
<p>X-ray tomography dataset of female pupa of <i>Aedes albopictus</i> 40 hours after pupation</p>
Adult female Aedes albopictus
<p>X-ray tomography dataset of an adult female of Aedes albopictus</p>
Literature based occurrence locations of Aedes aegypti and Aedes albopictus in India since 2015
<p>India has witnessed a five-fold increase in dengue incidence in the past decade. However, the nation-wide distribution of dengue vectors, and the impacts of climate change are not known. Species distribution models are a novel approach for determining the distribution of species based on biologically relevant environmental factors, and relies on known presence and absence locations of the species. The Global Biodiversity Information Facility (GBIF) contains 562 records of Aedes aegypti occurrence and 207 records of Aedes albopictus occurrence in India, most of which are derived from a large scale study that compiled the global geographic database of Aedes aegypti and Aedes albopictus locations up to 2014, based on peer reviewed literature, national entomological surveys and expert networks. However, there was a need to update the occurrence locations after 2014. To overcome this knowledge gap, we compiled data on the occurrences of Aedes aegypti and Aedes albopictus in India, based on published literature after 2014 that carried out entomological surveys in India. This dataset was combined with data from GBIF to map the present and future distributions of Aedes aegypti and Aedes albopictus in India based on different scenarios for climate change.</p>
Life-history stage and the population genetics of the tiger mosquito Aedes albopictus at a fine spatial scale
<p>As a widespread vector of disease, the mosquito species <em>Aedes albopictus </em>Skuse<em> </em>(Diptera: Culicidae) is a high priority for both public health and invasive species research and management. Like all mosquitoes, <em>A. albopictus </em>has a complex life history with aquatic egg, larval, and pupal stages and a terrestrial adult stage. This requires targeted management strategies for each life stage, coordinated across time and space. Researchers use population genetics to inform control of <em>A. albopictus</em>. However, these studies do not consider the impact on life stage on population genetic characteristics and subsequent conclusions. Our objective was to examine whether the life stage impacted patterns of <em>A. albopictus </em>genetic diversity and differentiation at a spatial scale relevant to management efforts. We first conducted a literature review of field-caught <em>A. albopictus </em>population genetic papers and identified 74 peer-reviewed publications, none of which compared results between life stages.<em> </em>We them examined population genetic patterns of egg and adult <em>A. albopictus </em>at five sites in Wake County, North Carolina USA using 8,425 single nucleotide polymorphisms. We found that level of genetic diversity and connectivity between sites varied between adults and eggs. This warrants further study and is critical for research aimed at informing local management.</p>
FIGURE 2 in The Asian tiger mosquito, Aedes (Stegomyia) albopictus (Skuse), a vector of dengue, chikungunya and zika viruses, reaches Portugal (Diptera: Culicidae)
FIGURE 2. Portuguese Aedes albopictus females seeking human blood. Note characteristic scutal white stripe, distinct silvery-white scales on the maxillary palpi and tarsi, as well as narrow scales over the wing root and silvery-white basolateral abdominal tergal markings.
FIGURE 1 in The Asian tiger mosquito, Aedes (Stegomyia) albopictus (Skuse), a vector of dengue, chikungunya and zika viruses, reaches Portugal (Diptera: Culicidae)
FIGURE 1. Distribution of Aedes albopictus in the Iberian Península. In green, distribution in Spain according to Collantes et al. (2016). In red, highlighted by arrow, new occurrence in Portugal.
FIGURE 3 in The Asian tiger mosquito, Aedes (Stegomyia) albopictus (Skuse), a vector of dengue, chikungunya and zika viruses, reaches Portugal (Diptera: Culicidae)
FIGURE 3. Biting activity of Ae. albopictus assessed by human-bait catches. Specimens arriving to bite were captured every 15 minutes to avoid recapture. The x axis is a timeline of 15-minute intervals; the y axis is an average of the three days of sampling.
Aedes albopictus has not become the dominant species in artificial container habitats in a temperate forest more than a decade after establishment
<p><i>Aedes albopictus </i>(Skuse) is one of the most invasive species globally, and has led to rapid declines and local extirpations of resident mosquitoes where it becomes established. A potential mechanism behind these displacements is the superior competitive ability of <i>Ae. albopictus</i> in larval habitats. Research on the context-dependent nature of competitive displacement predicts that <i>Ae. albopictus</i> will not replace native <i>Aedes triseriatus </i>(Say) in treeholes but could do so in artificial container habitats. <i>Ae. albopictus</i> remains rare in temperate treeholes but less is known about how <i>Ae. albopictus</i> fares in artificial containers in forests. Tyson Research Center (TRC) is a field station composed of mostly oak-hickory forest located outside Saint Louis, MO. The container community has been studied regularly at TRC since 2007 with permanently established artificial containers on the property since 2013. <i>Ae. albopictus</i> was detected each year these communities were sampled; however, its abundance remains low and it fails to numerically dominate other species in these communities. We present data that show <i>Ae. albopictus</i> numbers have not increased in the last decade. We compare egg counts from 2007 and 2016 and combine larval sample data from 2012-2017.We present average larval densities and prevalence of <i>Ae. albopictus</i> and two competitors, <i>Ae. triseriatus</i> and <i>Aedes japonicus </i>(Theobald) as well as monthly averages by year. These data highlight a circumstance in which <i>Ae. albopictus</i> fails to dominate the <i>Aedes</i> community despite it doing so in more human-impacted habitats. We present hypotheses for these patterns based upon abiotic and biotic environmental conditions.</p>
Supplementary material 14 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 on Aedes albopictus samples from all Connecticut samples (no temporal series) based on 15 microsatellite markers
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OpenNeuro
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