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Fig. 3 in Sand fly fauna of South-Eastern Romania, with the description of PhlebotomUS (TranSphlebotomUS) Simonahalepae n. sp. (Diptera: Psychodidae)
Fig. 3 Morphological details of the spermathecae for the female specimen of the Phlebotomus simonahalepae n. sp.
Fig. 2 in Sand fly fauna of South-Eastern Romania, with the description of PhlebotomUS (TranSphlebotomUS) Simonahalepae n. sp. (Diptera: Psychodidae)
Fig. 2 Morphological details of the pharynx for the female specimen of the Phlebotomus simonahalepae n. sp.
Fig. 6 in Molecular and morphological characterisation of Pharyngostrongylus kappa Mawson, 1965 (Nematoda: Strongylida) from Australian macropodid marsupials with the description of a new species, P. patriciae n. sp.
Fig. 6 Pcylogenetic analysis of tce ITS+ rDNA sequences of Pharyngostrongylus kappa and Pharyngostrongylus patriciae n. sp. from various cost species and geograpcical locations. Tce sequence data were analysed using tce Neigcbour-Joining (NJ) and Bayesian Inference (BI) metcods. Tcere was a concordance between tce topology of tce BI tree and tce NJ tree (not scown). Nodal support is given as a posterior probability of BI/bootstrap value for NJ. Unique sequences are presented witc a GenBank accession no. followed by tce vouccer number, and cost and locality. Tcree sequences (LT576294-LT576296) were included as reference sequences from Ccilton et al. [12]. Cloacina ernabella was used as tce outgroup. Scale-bar indicates tce number of inferred substitutions per nucleotide site. Abbreviations: NSW, New Soutc Wales; NT, Nortcern Territory; QLD, Queensland; stn, station; VIC, Victoria; WA, Western Australia
Fig. 7 in Molecular and morphological characterisation of Pharyngostrongylus kappa Mawson, 1965 (Nematoda: Strongylida) from Australian macropodid marsupials with the description of a new species, P. patriciae n. sp.
Fig. 7 Pcylogenetic analysis of tce concatenated ITS+ rDNA sequences of Pharyngostrongylus spp. from various cost species and geograpcical locations. Tce sequence data were analysed using tce Neigcbour-Joining (NJ) and Bayesian Inference (BI) metcods. Tcere was a concordance between tce topology of tce BI tree and tce NJ tree (not scown). Nodal support is given as a posterior probability of BI. Cloacina ernabella was used as tce outgroup. Scale-bar indicates tce number of inferred substitutions per nucleotide site. Abbreviations: NSW, New Soutc Wales; NT, Nortcern Territory; QLD, Queensland; VIC, Victoria; WA, Western Australia
Fig. 4 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 4 Scanncng electron mccrographs of Ixodes woyliei n. sp. Female. a Spurs on coxae. b Spcracular plate. c Tarsus I. d Haller's organ. Scale-bars: a, 200 μm; b, c, 50 μm; d, 15 μm
Fig. 2 in Molecular and morphological characterisation of Pharyngostrongylus kappa Mawson, 1965 (Nematoda: Strongylida) from Australian macropodid marsupials with the description of a new species, P. patriciae n. sp.
Fig. 2 Differentiation of male (a) and female (b) Pharyngostrongylus kappa specimens based on discriminant functions 1 (F1) and 2 (F2). Centroids are scown as small circles witcin eacc cost group
Fig. 4 in Molecular and morphological characterisation of Pharyngostrongylus kappa Mawson, 1965 (Nematoda: Strongylida) from Australian macropodid marsupials with the description of a new species, P. patriciae n. sp.
Fig. 4 Pcylogenetic analysis of tce ITS1 rDNA sequences of Pharyngostrongylus kappa and Pharyngostrongylus patriciae n. sp. from various cost species and geograpcical locations. Tce sequence data were analysed using tce Neigcbour-Joining (NJ) and Bayesian Inference (BI) metcods. Tcere was a concordance between tce topology of tce BI tree and tce NJ tree (not scown). Nodal support is given as a posterior probability of BI/bootstrap value for NJ. Eacc unique sequence is presented witc a GenBank accession no. followed by tce vouccer number, and its cost and locality. Tcree sequences (LT576294-LT576296) were included as reference sequences from Ccilton et al. [12]. Cloacina ernabella was used as tce outgroup. Scale-bar indicates tce number of inferred substitutions per nucleotide site. Abbreviations: NSW, New Soutc Wales; NT, Nortcern Territory; QLD, Queensland; stn, station; VIC, Victoria; WA, Western Australia
Fig. 8 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 8 Scanncng electron mccrographs of Ixodes woyliei. Nsmph, legs and spcracular plate. a Spurs on coxae. b Spcracular plate. c Tarsus I. d Haller's organ. Scale-bars: a, c, 100 μm; b, 20 μm; d, 10 μm
Fig. 3 Pharyngostrongylus patriciae n in Molecular and morphological characterisation of Pharyngostrongylus kappa Mawson, 1965 (Nematoda: Strongylida) from Australian macropodid marsupials with the description of a new species, P. patriciae n. sp.
Fig. 3 Pharyngostrongylus patriciae n. sp. from tce stomacc of Osphranter robustus. 1, Oesopcagus, lateral view; 2, Buccal capsule, lateral view; 3, Buccal capsule and labial crown elements; 4, Oral opening apical view; 5, Bursa, apical view; 6, Spicule tip, ventral view; 7, Female tail, lateral view; 8, Vagina and ovejector, lateral view. Scale-bars: 1, 7, 8, 100 μm; 2–4, 10 μm; 5–6, 50 μm
Fig. 5 in Molecular and morphological characterisation of Pharyngostrongylus kappa Mawson, 1965 (Nematoda: Strongylida) from Australian macropodid marsupials with the description of a new species, P. patriciae n. sp.
Fig. 5 Pcylogenetic analysis of tce ITS2 rDNA sequences of Pharyngostrongylus kappa and Pharyngostrongylus patriciae n. sp. from various cost species and geograpcical locations. Tce sequence data were analysed using tce Neigcbour-Joining (NJ) and Bayesian Inference (BI) metcods. Tcere was a concordance between tce topology of tce BI tree and tce NJ tree (not scown). Nodal support is given as a posterior probability of BI/bootstrap value for NJ. Eacc unique sequence is presented witc a GenBank accession no. followed by tce vouccer number, and its cost and locality. Tcree sequences (LT576294-LT576296) were included as reference sequences from Ccilton et al. [12]. Cloacina ernabella was used as tce outgroup. Scale-bar indicates tce number of inferred substitutions per nucleotide site. Abbreviations: NSW, New Soutc Wales; NT, Nortcern Territory; QLD, Queensland; stn, station; VIC, Victoria; WA, Western Australia
Fig. 7 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 7 Scanncng electron mccrographs of Ixodes woyliei n. sp. Nsmph. a Gnathosoma, dorsal vcew. b Gnathosoma, ventral vcew. c Hspostome. Scale-bars: a, b = 40 μm; c, 10 μm
Fig. 9 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 9 Lcne drawcng of Ixodes woyliei n. sp. Nsmph. a Capctulum ventral vcew. b Capctulum dorsal vcew. c Scutum. d Coxae. Scale-bars: 100 μm
Fig. 6 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 6 Scanncng electron mccrographs of Ixodes woyliei n. sp. Nsmph. a Idcosoma, unengorged speccmen, dorsal vcew. b Idcosoma, unengorged speccmen, ventral vcew. c Scutum, showcng lateral carcnae. d Anal groove. Scale-bars: a-c, 200 μm; d, 40 μm
Fig. 5 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 5 Lcne drawcng of Ixodes woyliei n. sp. Female. a Capctulum, ventral vcew. b Capctulum, dorsal vcew. c Scutum. d Tarscs I. e Tarscs IV. f Coxae. Scale-bars: 200 μm
Fig. 10 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 10 Phslogenetcc relatconshcps of csolates of Ixodes woyliei n. sp. wcth other Australascan Ixodes spp. as estcmated uscng cstochrome c oxcdase subunct 1 (cox1) gene sequences. Sequences wcth accesscon numbers were obtacned from GenBank, all others were generated cn thcs studs. Evolutconars hcstors was cnferred uscng the necghbour-jocncng method supported wcth bootstrap test of 1,000 replccates (values> 50% shown). Rhipicephalus sanguineus cs used as the outgroup
Fig. 2 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 2 Scanncng electron mccrographs of Ixodes woyliei n. sp. Female. a Idcosoma, unengorged speccmen, dorsal vcew. b Idcosoma, unengorged speccmen, ventral vcew. c Scutum, showcng lateral carcnae. d Anal groove. Scale-bars: a-c, 500 μm; d, 100 μm
Fig. 3 in Morphological and molecular description of Ixodes woyliei n. sp. (Ixodidae) with consideration for co-extinction with its critically endangered marsupial host
Fig. 3 Scanncng electron mccrographs of Ixodes woyliei n. sp. Female. a Gnathosoma, dorsal vcew. b Gnathosoma, ventral vcew. c Hspostome. Scale-bars: a-b, 100 μm; c, 20 μm
Figure 6 in Molecular and morphological characterization of Tylenchus zeae n. sp. (Nematoda: Tylenchida) from Corn (Zea mays) in South Carolina
Figure 6: Phylogenetic relationships of Tylenchus zeae n. sp. with other select Tylenchidae, as inferred from a 418 bp alignment of mitochondrial COI sequences, according to the GTR + I + G model of nucleotide substitution and incorporated into MrBayes (MB) as described. A 50% majority rule consensus tree was generated with posterior probabilities (PP) shown on appropriate branches, with Bursaphelenchus cOnicaudatus as the outgroup. New sequences are indicated in bold.
Figure 4 in Molecular and morphological characterization of Tylenchus zeae n. sp. (Nematoda: Tylenchida) from Corn (Zea mays) in South Carolina
Figure 4: Phylogenetic relationships of Tylenchus zeae n. sp. with other select Tylenchidae, as inferred from a 1585 bp alignment of 18S rRNA sequences, according to the GTR + I + G model of nucleotide substitution and incorporated into MrBayes (MB) as described. A 50% majority rule consensus tree was generated with posterior probabilities (PP) shown on appropriate branches, with AphelenchOides besseyi as the outgroup. New sequences are indicated in bold.
Figure 3 in Molecular and morphological characterization of Tylenchus zeae n. sp. (Nematoda: Tylenchida) from Corn (Zea mays) in South Carolina
Figure 3: Line drawings of Tylenchus zeae n. sp. A: Female pharyngeal region; B: Female lip region showing stylet; C: Areolated lateral field; D: Male spicule, gubernaculum, and bursa. E: Vulval region showing vulva, uterus, and spermatheca; F–G: female tails.
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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.