Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
170
datasets available to search
ShareScore release 0.9.0
Dataset results
170 results for “Phlebotominae”
FIGURE 9 in Description of a new species of the genus Lutzomyia França, 1924 (Diptera: Phlebotominae) and of the male of Lutzomyia fonsecai (Costa Lima, 1932)
FIGURE 9. Palpomeres (P) PII, PIII and PIV and Newstead's sensilla (sN): A. Lutzomyia dispar. B. Lutzomyia fonsecai. C. Lutzomyia itambe sp. n. Spermatechae: D. Lutzomyia dispar. E. Lutzomyia fonsecai. F. Lutzomyia itambe sp. n. (Bars: 100 µm).
FIGURE 6 in Description of a new species of the genus Lutzomyia França, 1924 (Diptera: Phlebotominae) and of the male of Lutzomyia fonsecai (Costa Lima, 1932)
FIGURE 6. Male of Lutzomyia fonsecai. A. Head. a. Labium. B. Pharynx and cibarium. C. Flagellomere I. D. Flagellomere II. E. Flagellomere III. F. Labrum-epipharynx. G. Palpomere I. H. Palpomere II. I. Palpomere III. J. Palpomere IV. K. Palpomere V. (Bars: 100 µm).
Sand fly (Phlebotominae) activity and abundance in vertical strata in a tropical dry forest in the Yucatan Peninsula, Mexico
Open the record for dataset details and reuse information.
Standing genetic variation in laboratory populations of insecticide-susceptible Phlebotomus papatasi and Lutzomyia longipalpis (Diptera: Psychodidae: Phlebotominae) for the evolution of resistance
<p>Insecticides can exert strong selection on insect pest species, including those that vector diseases, and have led to rapid evolution of resistance. Despite such rapid evolution, relatively little is known about standing genetic variation for resistance in insecticide-susceptible populations of many species. To help fill this knowledge gap, we generated genotyping-by-sequencing data from insecticide-susceptible Phlebotomus papatasi and Lutzomyia longipalpis sand flies that survived or died from a sub-diagnostic exposure to either permethrin or malathion using a modified version of the Centers for Disease Control and Prevention bottle bioassay. Multi-locus genome-wide association mapping methods were used to quantify standing genetic variation for insecticide resistance in these populations and to identify specific alleles associated with insecticide survival. For each insecticide treatment, we estimated the proportion of the variation in survival explained by the genetic data (i.e. 'chip' heritability) and the number and contribution of individual loci with measurable effects. For all treatments, survival to an insecticide exposure was heritable with a polygenic architecture. Both P. papatasi and L. longipalpis had alleles for survival that resided within many genes throughout their genomes. The implications for resistance conferred by many alleles, as well as inferences made about the utility of laboratory insecticide resistance association studies compared to field observations, are discussed in the manuscript that accompanies this data.</p>
FIGURES 66–67 in The immature stages of Micropygomyia (Coquillettimyia) chiapanensis (Dampf) (Diptera: Psychodidae, Phlebotominae)
FIGURES 66–67. Micropyle of Mi. chiapanensis eggs.
FIGURE 39 in The immature stages of Micropygomyia (Coquillettimyia) chiapanensis (Dampf) (Diptera: Psychodidae, Phlebotominae)
FIGURE 39. Setae types of L4 of Mi. chiapanensis.
Figs. 18–19 in Description of a new species of Psathyromyia Barreto (Diptera, Psychodidae, Phlebotominae) from Amazonas state, Brazil
Figs. 18–19. Psathyromyia barretti sp. nov. 18, Wing, holotype, male. 19, Wing, paratype, female. Bar = 100 µm.
FIGURE 1 in Immature stages of two species of Evandromyia (Aldamyia) and the systematic importance of larval mouthparts within Psychodidae (Diptera, Phlebotominae, Psychodinae)
FIGURE 1. Exochorion of egg of Evandromyia carmelinoi, bar = 50µm.
FIGURE 7 in Morphological description of immature stages of Trichophoromyia brachipyga (Mangabeira) (Diptera: Psychodidae: Phlebotominae)
FIGURE 7. Setae types of abdomen of Trichophoromyia brachipyga fourth-instar larva; bar = 50μm.
Figure 1. A in Two parasitic mite species on Phlebotominae sand flies (Diptera: Psychodidae) from Türkiye: Biskratrombium persicum (Microtrombidiidae) and Eustigmaeus johnstoni (Stigmaeidae)
Figure 1. A. Dorsal view of Eustigmaeus johnstoni (female), 400x, B. Scars on the lateral sides of the abdominal sternites belongs to a Phlebotomus tobbi individual, 40x.
Standing genetic variation in laboratory populations of insecticide-susceptible Phlebotomus papatasi and Lutzomyia longipalpis (Diptera: Psychodidae: Phlebotominae) for the evolution of resistance
Open the record for dataset details and reuse information.
FIGURE 5 in Geometric morphometry of the head in sand flies (Diptera: Psychodidae: Phlebotominae), an alternative approach to taxonomy studies
FIGURE 5. Canonical variable analysis of sand flies head. Head geometric morphometry analyzes showing the projection of the species of Chagasi Series on the canonical variates 1 and 2. CH = P. chagasi, CO = P. complexus, SM = P. s. maripaensis, SS = P. s. squamiventris, WE = P. wellcomei.
FIGURE 6 in Geometric morphometry of the head in sand flies (Diptera: Psychodidae: Phlebotominae), an alternative approach to taxonomy studies
FIGURE 6. Discriminant function analyzes of sand flies head. Discriminant function showing the mean heap-shapes between pair of species in female specimens. Light blue = first alphabetical species name; Dark Line = last alphabetical species name. CH = P. chagasi, CO = P. complexus, SM = P. s. maripaensis, SS = P. s. squamiventris, WE = P. wellcomei.
FIGURE 3 in Geometric morphometry of the head in sand flies (Diptera: Psychodidae: Phlebotominae), an alternative approach to taxonomy studies
FIGURE 3. Centroid size of the head of Chagasi Series species. Head centroid size showing the statistically significant different sizes (P <0.05) among the species of the Chagasi Series. * = P <0.05
FIGURE 4 in Geometric morphometry of the head in sand flies (Diptera: Psychodidae: Phlebotominae), an alternative approach to taxonomy studies
FIGURE 4. Principal components analysis of sand flies head. Head geometric morphometry analyzes showing the projection of the specimens of Chagasi Series on the principal components 1 and 2 and the shape variation display by each component. A. Specimens distribution in principal component 1 and 2. B. Principal component 1; C. Principal component 2. Light blue line = most negative points, dark blue line = most positive points.
FIGURE 2 in Geometric morphometry of the head in sand flies (Diptera: Psychodidae: Phlebotominae), an alternative approach to taxonomy studies
FIGURE 2. Landmark used to analyze the head of Chagasi Series species. Distribution of the landmarks used for head morphometric geometric analyzes in indistinguishable females from Chagasi Series.
FIGURE 1 in Geometric morphometry of the head in sand flies (Diptera: Psychodidae: Phlebotominae), an alternative approach to taxonomy studies
FIGURE 1. Map of Brazil, showing the capture sites assessed to obtain the five studied species of the Chagasi Series.
FIGURAS 51‑54 in Chave De Identificação Ilustrada Dos Phlebotominae (Diptera, Psychodidae) Do Estado De São Paulo, Brasil
FIGURAS 51‑54: Terminálias de Phlebotominae: 51. Lutzomyia amarali; 52. Migonemyia bursiformis; 53. Pintomyia monticola; 54. Migonemyia migonei.
FIGURAS 59‑63 in Chave De Identificação Ilustrada Dos Phlebotominae (Diptera, Psychodidae) Do Estado De São Paulo, Brasil
FIGURAS 59‑63: Terminálias de Phlebotominae: 59. Expapillata firmatoi; 60. Evandromyia termitophila; 61. Evandromyia carmelinoi; 62. Evandromyia lenti; 63. Evandromyia bourrouli.
FIGURAS 41‑46 in Chave De Identificação Ilustrada Dos Phlebotominae (Diptera, Psychodidae) Do Estado De São Paulo, Brasil
FIGURAS 41‑46: Terminálias de Phlebotominae: 41. Pintomyia misionensis; 42. Micropygomyia schreiberi; 43. Sciopemyia sordellii; 44. Evandromyia correalimai; 45. Sciopemyia microps; 46. Pressatia choti.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.