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Figure 4 from: Scheffrahn RH, Roisin Y (2018) Anenteotermes cherubimi sp. n., a tiny dehiscent termite from Central Africa (Termitidae: Apicotermitinae). ZooKeys 793: 53-62. https://doi.org/10.3897/zookeys.793.28342
Figure 4 Enteric valve armature of Anenteotermescherubimi sp. n. worker. Top: paddles folded (see Figure 3C); bottom: paddles fully extended.
Figure 1 from: Scheffrahn RH, Roisin Y (2018) Anenteotermes cherubimi sp. n., a tiny dehiscent termite from Central Africa (Termitidae: Apicotermitinae). ZooKeys 793: 53-62. https://doi.org/10.3897/zookeys.793.28342
Figure 1 Worker of Anenteotermescherubimi sp. n. A dorsal B lateral view of head and prothorax C mandibles.
Figure 2 from: Scheffrahn RH, Roisin Y (2018) Anenteotermes cherubimi sp. n., a tiny dehiscent termite from Central Africa (Termitidae: Apicotermitinae). ZooKeys 793: 53-62. https://doi.org/10.3897/zookeys.793.28342
Figure 2 Worker of Anenteotermescherubimi sp. n. A Gut contents expelled after tear of dehiscence line. Dehiscence line slightly open in lateral B and dorsal C views.
Figure 5 from: Scheffrahn RH, Roisin Y (2018) Anenteotermes cherubimi sp. n., a tiny dehiscent termite from Central Africa (Termitidae: Apicotermitinae). ZooKeys 793: 53-62. https://doi.org/10.3897/zookeys.793.28342
Figure 5 Male imago of Anenteotermescherubimi sp. n. A dorsal view B dorsal nota C dorsal D lateral view of head.
Figure 4 from: Scheffrahn RH (2018) Neotermes costaseca: a new termite from the coastal desert of Peru and the redescription of N. chilensis (Isoptera, Kalotermitidae). ZooKeys 811: 81-90. https://doi.org/10.3897/zookeys.811.30809
Figure 4 Live habitus photographs of Neotermescostaseca; A physogastric queen and pseudergate, colony 1 B soldier, colony 1 C various castes, colony 2 D exposed galleries of live tree from where colony 2 was removed.
Figure 3 from: Scheffrahn RH (2018) Neotermes costaseca: a new termite from the coastal desert of Peru and the redescription of N. chilensis (Isoptera, Kalotermitidae). ZooKeys 811: 81-90. https://doi.org/10.3897/zookeys.811.30809
Figure 3 Open mandible, dorsal, lateral, and ventral views of soldier head capsule and pronotum of Neotermes soldiers. A–DNeotermescostaseca and E–HN.chilensis.
Figure 1 from: Scheffrahn RH (2018) Neotermes costaseca: a new termite from the coastal desert of Peru and the redescription of N. chilensis (Isoptera, Kalotermitidae). ZooKeys 811: 81-90. https://doi.org/10.3897/zookeys.811.30809
Figure 1 Dorsal and lateral views of head and pronotum and fore tarsi of Neotermes alates. A–CN.ostaseca (arrow = arolium) D–FN.chilensis.
FIGURE 6 in Tonsuritermes, a new soldierless termite genus and two new species from South America (Blattaria: Isoptera: Termitidae: Apicotermitinae)
FIGURE 6. Distribution map of the species of Tonsuritermes gen. nov.
Figure 8 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 8 - Ophiocordyceps termiticola (BBH5634, BCC 1920) A stroma of fungus emerging from termite B part of stroma showing perithecia C perithecia D ascus E ascospore F phialides with conidia on synnema G conidium H colony on PDA at 20 d obverse and reverse I phialides with conidia on PDA J conidium K–O scanning electron micrographs of phialides with conidia on PDA P colony on PSA at 20 d obverse and reverse Q phialides with conidia on PSA R colony on SDYA/4 at 20 d obverse and reverse S phialides with conidia. Scale bars: 2 cm (A); 1 μm (B, K, O); 100 μm (C); 15 μm (D); 8 μm (E); 5 μm (F, G); 7 mm (H, P, R); 3 μm (I, J, L, M, N, Q, S).
Figure 6 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 6 - Ophiocordyceps pseudocommunis (BBH10001, BCC16757) A stroma of fungus emerging from termite B part of stroma showing superficial perithecia C perithecium D ascospore E phialides with conidia from synnema F conidia from synnema G, L, M, N, O, P scanning electron micrographs of phialides with conidia on PDA H colony on PDA at 20 d obverse and reverse I, J phialides with conidia on PDA K conidium Q colony on PDA at 20 d obverse and reverse R phialides with conidia on PSA S conidium T colony on SDYA/4 at 20 d obverse and reverse U phialides with conidia V conidium. Scale bars: 10 mm (A); 0.5 mm (B); 150 µm(C); 6 µm (D); 7 µm (E); 2 µm (F); 4 µm (G); 8 mm (H, Q, T); 8 µm (I); 5 µm (J, K, U, V); 3 µm (R, S).
Figure 3 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 3 - Ophiocordyceps brunneirubra (BBH 9008, BCC14478) A, B fungus on termite C part of stroma showing perithecia D immersed perithecia E asci F ascospore G, H colony on PDA at 20 d (G) colony obverse (H) colony reverse I, J, K phialides with conidia on PDA L, M conidia on PDA N, P, O sclerotia formed in culture Q, R, S scanning electron micrographs of phialides with conidia T, U colony on PSA at 20 d (T) colony obverse (U) colony reverse V, W, X phialides with conidia on PSA Y conidia on PSA. Scale bars: 25 mm (A); 15 mm (B, G, H, T, U); 1 mm (C); 130 μm (D); 10 μm (I, Q, W); 15 μm (J); 3 μm (K, R); 5 μm (L); 4 μm (M, S, Y); 6 μm (V); 7 μm (X).
Figure 7 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 7 - Ophiocordyceps pseudorhizoidea (BBH45361, BCC86431) A stroma of fungus emerging from termite B part of stroma showing perithecia C perithecia D, E ascus F ascospore G, H phialides with conidia from synnema I colony on PDA at 20 d obverse and reverse J, K, L phialides with conidia on PDA M, N, O conidium P colony on PSA at 20 d obverse and reverse Q, R, S phialides with conidia on PSA T, U conidia with mucous sheath. Scale bars: 15 mm (A); 1 mm (B); 120 μm (C); 8 μm (D, E); 10 μm (F, G); 3 μm (H, R); 6 mm (I, P); 5 μm (J, K, L, Q); 2 μm (M, N, O, T, U); 4 μm (S).
Figure 4 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 4 - Ophiocordyceps khokpasiensis (BBH32173, BCC48071) A fungus on termite B part of stroma showing perithecia C pseudo-immersed perithecia D asci E ascospore F phialides with conidia from synnema G conidia from synnema H colony on PDA at 20 d colony obverse and reverse I, J phialides with conidia on PDA K, L conidium M, N, O scanning electron micrographs of phialides with conidia on PDA P colony on PSA at 20 d obverse and reverse Q, R, S phialides with conidia on PDA T, U conidium V colony on SDYA/4 at 20 d obverse and reverse W, X, Y phialides with conidia Z conidium. Scale bars: 2.5 cm (A); 1 mm (B); 100 µm (C); 5 µm (D, G, I, J, K, L); 20 µm (E); 6 µm (F); 7 mm (H, P, V); 3 µm (M, N, O, Q, R, S, T, U); 4 µm (W, X, Y); 2 µm (Z).
Figure 2 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 2 - Ophiocordyceps asiatica (BBH38718, BCC30516) A stroma of fungus emerging from termite B phialide on specimen C part of stroma showing perithecia D perithecium E asci F ascospores G colony on PDA at 20 d obverse and reverse H, I phialides with conidia on PDA J, K conidium L colony on PSA at 20 d obverse and reverse M, N phialides with conidia on PSA O conidium P colony on SDYA/4 at 20 d obverse and reverse Q, R phialides with conidia S conidia T–X scanning electron micrographs of phialides with conidia on PDA. Scale bars: 10 mm (A, G, L, P); 5 μm (B); 1 mm (C); 8 μm (D); 15 μm (E); 10 μm (F, I); 3 μm (H, J, K, M, N, S, T, V); 2 μm (O, Q, R, U, W, X).
Figure 5 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 5 - Ophiocordyceps mosingtoensis (BBH26809, BCC36921) A stroma of fungus emerging from termite B part of stroma showing perithecia C pseudo-immersed perithecia D, E ascus F ascospore G, L, Q, V scanning electron micrographs of phialides with conidia on PDA H colony on PDA at 20 d obverse and reverse I, J phialides with conidia K conidium M colony on PSA at 20 d obverse and reverse N, O phialides with conidia P conidium R colony on SDYA/4 at 20 d obverse and reverse S, T phialides with conidia U conidium. Scale bars: 10 mm (A); 1 mm (B); 150 µm (C); 25 µm (D); 4 µm (E); 30 µm (F); 10 µm (G); 8 mm (H, M, R); 3 µm (I, J, N, O, S, T); 2 µm (K, L, P, Q, U); 1 µm (V).
Figure 1 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 1 - Phylogenetic tree based on combined data set of ITS, LSU, TEF , RPB1 and RPB2 sequences showing the relationship of seven new species on termites from Thailand with other species of Ophiocordyceps . Numbers above lines at significant nodes represent Maximum Likelihood bootstrap values, Bayesian posterior probabilities and MP bootstrap values. Bold lines mean support for the tree analyses were 100%.
FIGURA 1 in A preliminary list of the Herpetofauna from termite mounds of the cerrado in the Upper Tocantins river valley
FIGURA 1: Collecting sites of termitaria in the State of Goiás.
FIGURA 2 in A preliminary list of the Herpetofauna from termite mounds of the cerrado in the Upper Tocantins river valley
FIGURA 2: Opening of a termite mound at Serra da Mesa site (Photo NJSJ).
Data from: Global genetic analysis reveals the putative native source of the invasive termite, Reticulitermes flavipes, in France
Biological invasions are recognized as a major threat to both natural and managed ecosystems. Phylogeographic and population genetic analyses can provide information about the geographical origins and patterns of introduction and explain the causes and mechanisms by which introduced species have become successful invaders. Reticulitermes flavipes is a North American subterranean termite that has been introduced into several areas, including France where introduced populations have become invasive. To identify likely source populations in the USA and to compare the genetic diversity of both native and introduced populations, an extensive molecular genetic study was undertaken using the COII region of mtDNA and 15 microsatellite loci. Our results showed that native northern US populations appeared well differentiated from those of the southern part of the US range. Phylogenetic analysis of both mitochondrial and nuclear markers showed that French populations probably originated from southeastern US populations, and more specifically from Louisiana. All of the mtDNA haplotypes shared between the United States and France were found in Louisiana. Compared to native populations in Louisiana, French populations show lower genetic diversity at both mtDNA and microsatellite markers. These findings are discussed along with the invasion routes of R. flavipes as well as the possible mechanisms by which French populations have evolved after their introduction.
Fig. 3 in Redescription of Formosan subterranean termite, Coptotermes formosanus (Blattodea: Rhinotermitidae), with three new synonyms from China
Fig. 3. Morphological variation of fontanelle shape and head shape of Coptotermes formosanus Shiraki, 1909. a–h – variability of head shapes: a–d – gradual shape change from rounded to pear-shape; e–h – gradual shape change from rounded rectangle to pear-shape. i–l – variability of fontanelle shapes: i–k – triangle; l – arched.
ScienceDex guides
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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.