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Fig. 3 in Flea infestation of rodent and their community structure in frequent and non-frequent plague outbreak areas in Mbulu district, northern Tanzania

Fig. 3. Flea abundance for different flea species across habitat types in each locality and rodent species.

opencc-by-4.0Apr 2024View details →
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Fig. 2 in Flea infestation of rodent and their community structure in frequent and non-frequent plague outbreak areas in Mbulu district, northern Tanzania

Fig. 2. Flea abundance in the (a) localities, (b) habitats and (c) seasons. Error bars represent the standard error. There were no statistically significant differences that were observed.

opencc-by-4.0Apr 2024View details →
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Fig. 1. A in Flea infestation of rodent and their community structure in frequent and non-frequent plague outbreak areas in Mbulu district, northern Tanzania

Fig. 1. A map of Mbulu district indicating the two study localities, Endeshi-Arri (Persistent locality and Mongahay (non-persistent locality), along with the two study habitats (Farmland and forests) in each locality.

opencc-by-4.0Apr 2024View details →
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Figure 1 in Étude de l'infestation par des larves d'Anisakidés de trois espèces de poissons d'intérêt économique en Mauritanie

Figure 1. - Carte de la zone d'étude avec localisation des 23 stations échantillonnées durant la campagne expérimentale par le bateau N/O Al Awam en mai 2010. Les stations en gras, les plus proches de la côte, sont positionnées à des profondeurs inférieures à 50 m et celles en noir, plus au large, à des profondeurs supérieures à 50 m. L'échantillonnage temporel (zone grisée T) se situe légèrement au sud de Nouakchott. [Map of the study area with localisation of the 23 sampled stations during the experimental campaign of the boat N / A Al Awam in May 2010. Stations in bold, close to the coast, are at depths lower than 50 m; station in black offshore, are at depths greater than 50 m. Temporal sampling (T area in grey) is south of Nouakchott.]

opencc-by-4.0Apr 2013View details →
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Figure 2. - Larve d in Étude de l'infestation par des larves d'Anisakidés de trois espèces de poissons d'intérêt économique en Mauritanie

Figure 2. - Larve d'Anisakis vivante libre (flèche) dans la cavité générale d'un chinchard (photo ONISPA). [Anisakis larvae living freely (arrow) in the body cavity of a horse mackerel, Trachurus trachurus (picture ONISPA).]

opencc-by-4.0Apr 2013View details →
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Fig. 4 in Analysis on infestation and related ecology of chigger mites on large Chinese voles (Eothenomys miletus) in five provincial regions of Southwest China

Fig. 4. The species abundance distribution of chigger mites on large Chinese voles (E. miletus) fitted by Preston's lognormal distribution model with the ̂– [0.27(R– 2)] 2 theoretical equation of S(R) = 34e.

opencc-by-4.0Dec 2022View details →
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Fig. 2 in Analysis on infestation and related ecology of chigger mites on large Chinese voles (Eothenomys miletus) in five provincial regions of Southwest China

Fig. 2. Niche breaths of the 18 main chigger species on large Chinese voles (E. miletus) along the combined environment series (multidimensional environment series) in the five provincial regions of Southwest China (2001–2019).

opencc-by-4.0Dec 2022View details →
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Fig. 1 in Analysis on infestation and related ecology of chigger mites on large Chinese voles (Eothenomys miletus) in five provincial regions of Southwest China

Fig. 1. Investigation sites (n = 91) in the five provincial regions of Southwest China between 2001 and 2019 (The sites marked "▴" were newly increased sites after 2013 and those marked "*" were the sites where large Chinese voles, E. miletus, were captured. The name abbreviations of the investigation sites were shown in "Appendix").

opencc-by-4.0Dec 2022View details →
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Fig. 3 in Analysis on infestation and related ecology of chigger mites on large Chinese voles (Eothenomys miletus) in five provincial regions of Southwest China

Fig. 3. The dendrogram of niche overlaps of the 18 main chigger species on large Chinese voles (E. miletus) along the combined environment series (multidimensional environment series) in the five provincial regions of Southwest China (2001–2019).

opencc-by-4.0Dec 2022View details →
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Fig. 5 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA

Fig. 5. Maximum Likelihood phylogenetic reconstruction of Conoideocrella species, using an SSU-LSU-tef1-ITS concatenated dataset with Metarhizium granulomatis (Sigler) Kepler, S.A. Rehner & Humber (Clavicipitaceae) as designated outgroup taxon, and showing host, sexual state and county of isolation. Ex-type species denoted as ExT.

opencc-by-4.0Apr 2022View details →
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Fig. 4 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA

Fig. 4. Features of Conoideocrella luteorostrata: (A) stromatic tissue (white arrow) on Fiorinia externa (black arrow); (B) details of stromatic hyphae on 10% KOH, 40×; (C) 1 mo old culture on PDA (lef) and oatmeal agar (right); (D) conidiophore; and (E) spores, 100×.

opencc-by-4.0Apr 2022View details →
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Fig. 3 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA

Fig. 3. Field view of Fiorinia externa collected on Abies fraseri from Glade Creek, North Carolina, USA (FDACS-DPI, sample #2019-6449) (A); its slide-mounted view (B); antennae on submargin of the head with short spur (C); anterior spiracle with pores (D); pygidium with five marginal macroducts (E); close-up of wide macroduct (F); antennae on the margin of head, with a long spur, of F. fioriniae collected on Chamaerops humilis from Ocala, Florida, USA (2019-4546) (G); antennae on the margin of head, with a short spur and processing between antennae, of F. phantasma collected on Ligustrum japonicum from Boynton Beach, Florida, USA (2020-1365) (H); pygidium with 4 marginal macroducts (I); close-up of narrow macroduct (J).

opencc-by-4.0Apr 2022View details →
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Fig. 2 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA

Fig. 2. Original localities of intercepted shipments of Christmas trees in 2019 (shown as circle) and 2020 (triangle). Samples with entomopathogenic fungus Conoideocrella luteorostrata are colored in blue and without fungus in red. Major cities are shown as black diamonds.

opencc-by-4.0Apr 2022View details →
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Fig. 1 in Characterization of the entomopathogenic fungal species Conoideocrella luteorostrata on the scale insect pest Fiorinia externa infesting the Christmas tree Abies fraseri in the USA

Fig. 1. Features of Fiorinia externa: (A) 30× view of alive first instar (crawler); (B) 30× view of adult female body (inside cover) with exuviae of first and second instar; (C) naked eye view of entomopathogenic fungus Conoideocrella luteorostrata on different stages of F. externa (black arrow heads); (D) close-up of C. luteorostrata covering F. externa (black arrow heads).

opencc-by-4.0Apr 2022View details →
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Fig. 1 in Current status of Acarapis woodi mite infestation in Africanized honey bee Apis mellifera in Brazil

Fig. 1. States evaluated for the presence of Acarapis woodi in Brazil. The blank area represents the states not surveyed; dark grey areas show the states surveyed in this study which presented negative results (circles with negative sign); light grey areas show previous studies from the 1970s.

opencc-by-4.0Jan 2020View details →
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Figures 1-9 in Notes on oak-infesting species of scale insects (Hemiptera: Coccoidea) in Korea

Figures 1-9. Two species of scale insects on oak trees in Korea. 1-4. Asterodiaspis luteola (Russell). 1) Habitus. 2) Female. 3) Apical setae. 4) Anterior and posterior spiracular furrows (arrow: quinquelocular pores). 5-9. Nidularia japonica Kuwana. 5) Habitus. 6) Female. 7) Antenna. 8) Anal ring. 9) Tubular ducts on dorsal abdominal segments.

opencc-by-4.0May 2017View details →
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Figure 1 in Trichodina modesta Lom, 1970 (Ciliophora: Peritrichia) infestations of an endemic Toothcarp Aphanius danfordii Boulenger, 1890 (Pisces: Cyprinodontidae) in Sinop, Turkey

Figure 1. (A) Diagrammatic drawings of the denticles of Trichodina modesta; (B) a silver nitrate-stained specimen of T. modesta. Scale bar: 10 Mm.

opencc-by-4.0Dec 2010View details →
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Figure 1 in First record, current status, symptoms, infested cultivars and potential impact of the blueberry bud mite, Acalitus vaccinii (Keifer) (Prostigmata: Eriophyidae) in South Africa

Figure 1 Acalitus vaccinii (Keifer, 1939) in South Africa: A – colony at the base of a symptomatic flower bud bract of Vaccinium corymbosum 'Berkeley'; B – enlarged part of the colony shown in Figure 1A; C – relatively small colony between corolla and calyx ofV. corymbosum 'Elliott' flower with callus-like tissue caused by the mites. Symptoms caused byA. vaccinii in South Africa: D – flower galls on V. virgatum 'Centurion' which are more compact than those on V. corymbosum 'Berkeley'in Figure 1E; E – rosette-like flower galls on V. corymbosum 'Berkeley'; F – hypertrophic red "roughened" callus-like tissue of a flower gall on V. corymbosum 'Ivanhoe'; G – red callus-like tissue on outside of corolla ofV. corymbosum 'Elliott' flower.

opencc-by-4.0Jul 2018View details →
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Figure 1 in Biological effects of three bacterial species on Tetranychus urticae (Acari: Tetranychidae) infesting eggplant under laboratory and greenhouse conditions

Figure 1 Pictures of dead mite individuals after spray with the pathogenic bacteria: A – Acinetobacter sp.; B –B. subtilis and C –B. qassimus

opencc-by-4.0Aug 2020View details →
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Figures 22–25. Tergum 8 in Stick-tight fleas in the nostrils and below the tongue: evolution of an extraordinary infestation site in Hectopsylla (Siphonaptera: Pulicidae)

Figures 22–25. Tergum 8 and sensilium in Hectopsylla females. Fig. 22. H. narium sp. nov. (paratype). Fig. 23.

opencc-by-4.0Jan 2007View details →

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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.

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OpenNeuro

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Last verified 2026-04-29Open record