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Figure 5 in Phlebotomus (Paraphlebotomus) chabaudi and Phlebotomus riouxi: closely related species or synonyms?
Figure 5. Phylogenetic tree inferred from Phlebotomus chabaudi and Ph. riouxi specimens using the data of D1-D2 domain of 28S rDNA. Sequences of Ph. chabaudi published by Tabbabi et al. (2014) were added to the analyses. The phylogram results from bootstrapped data sets obtained using the PhyML 3.0 program [21] using the HKY85 model [25]. The tree was visualized using the TreeDyn program, version 198.3 [7]. The percentages above the branches are the frequencies with which a given branch appeared in 500 bootstrap replications. Only bootstrap values higher than 50% on the early branches are shown. A sequence of Ph. sergenti (KY764627) was used as the outgroup.
Figure 2 in Phlebotomus (Paraphlebotomus) chabaudi and Phlebotomus riouxi: closely related species or synonyms?
Figure 2. Illustration of the procedure of morphometrical measures of area and perimeter of the basal lobe of the coxite. Left, unmarked; right, marked with perimeter and area.
Figure 6 in Phlebotomus (Paraphlebotomus) chabaudi and Phlebotomus riouxi: closely related species or synonyms?
Figure 6. Phylogenetic tree inferred by concatenation of the three loci under study. The phylogram was obtained by a partitioned ML analysis with a GTR (general time reversible) + G (gamma distribution of rates with four rate categories) + I (proportion of invariant sites) model using RAxML software [39]. The tree was visualized using the TreeDyn program, version 198.3 [7]. The percentages above the branches are the frequencies with which a given branch appeared in 500 bootstrap replications. Only bootstrap values higher than 50% on branches are shown. Concatenated sequences of Ph. sergenti were used as the outgroup.
Fig. 1 in To The Knowledge Of Some Closely Related Species Of The Genus Pachyrhynchus Germar, 1824 (Coleoptera: Curculionidae: Pachyrhynchini) From Luzon Island (Philippines), With Usage Of Eversion Of Endophallus
Fig. 1. Dorsal habitus with inflated base of endophallus of certain Pachyrhynchus species. 1 – P. pinorum Pascoe, 1871; 2 – P. semperi Heller, 1912; 3 – P. loheri Schultze, 1917; 4 – P. sumptuosoides Yoshitake, 2017.
Fig. 3 in To The Knowledge Of Some Closely Related Species Of The Genus Pachyrhynchus Germar, 1824 (Coleoptera: Curculionidae: Pachyrhynchini) From Luzon Island (Philippines), With Usage Of Eversion Of Endophallus
Fig. 3. Dorsal habitus of 1, 2 – P. consobrinus Schultze, 1922; 3 – P. septentrionalis Yoshitake, 2017.
Fig. 13 in Review of Eudyasmus, with descriptions of a new species from Waigeo Island, Indonesia, and a closely related new genus (Coleoptera: Curculionidae, Molytinae, Eudyasmini)
Fig. 13 – Detail of pro- and mesothorax, ventral view (PSC = prosternal canal, MVR = mesoventral receptacle) – a, Eudyasmus albertisii Pascoe, male; b, Protrachyasmus planidorsis (Heller, 1908) comb. nov., male.
Fig. 12 in Review of Eudyasmus, with descriptions of a new species from Waigeo Island, Indonesia, and a closely related new genus (Coleoptera: Curculionidae, Molytinae, Eudyasmini)
Fig. 12 – Prothoracic leg details; a, Eudyasmus albertisii Pascoe, 1885, female (PM = premucro, U = uncus, SUP = supra-uncal projection); b, same, male; c, Protrachyasmus planidorsis (Heller, 1908) comb. nov., male.
Fig. 11 in Review of Eudyasmus, with descriptions of a new species from Waigeo Island, Indonesia, and a closely related new genus (Coleoptera: Curculionidae, Molytinae, Eudyasmini)
Fig. 11 – Protrachyasmus planidorsis (Heller, 1908) comb. nov.; a, Lectotype female, dorsal view; b, same, lateral view; c, same, labels.
Fig. 9 in Review of Eudyasmus, with descriptions of a new species from Waigeo Island, Indonesia, and a closely related new genus (Coleoptera: Curculionidae, Molytinae, Eudyasmini)
Fig. 9 – Eudyasmus praecox Faust, 1898; a, Lectotype male, dorsal view; b, same, lateral view; c, same, labels.
Fig. 5 in Review of Eudyasmus, with descriptions of a new species from Waigeo Island, Indonesia, and a closely related new genus (Coleoptera: Curculionidae, Molytinae, Eudyasmini)
Fig. 5 – Eudyasmus basalis sp. nov., Female genitalia; a, sternite VIII; b, spermatheca, lateral view; c, hemisternites; d, tergite VII; e, tergite VIII.
Fig. 2 in Review of Eudyasmus, with descriptions of a new species from Waigeo Island, Indonesia, and a closely related new genus (Coleoptera: Curculionidae, Molytinae, Eudyasmini)
Fig. 2 – Eudyasmus basalis sp. nov.; a, Holotype male, dorsal view; b, Paratype female, dorsal view.
Fig. 1 in Review of Eudyasmus, with descriptions of a new species from Waigeo Island, Indonesia, and a closely related new genus (Coleoptera: Curculionidae, Molytinae, Eudyasmini)
Fig. 1 – Distribution of the species of Eudyasmus Pascoe, 1885 and Protrachyasmus Setliff gen. nov. Filled in symbols = type locality. Base map from MapCreator 3.0.
Fig. 3 in Morphological Differentiation of the Skull in Two Closely-related Mustelid Species (Carnivora: Mustelidae)
Fig. 3. Projections specific (M. putorius and M. eversmanii) morphospace models on first two coordinates E1-E2 and K1-K2.
Fig. 2 in Morphological Differentiation of the Skull in Two Closely-related Mustelid Species (Carnivora: Mustelidae)
Fig. 2. NJ trees of skull measurements in M. putorius and M. eversmanii based on the absolute values of Spearman Rank Order Correlation coefficients from Tables 3-4.
Fig. 1 in Morphological Differentiation of the Skull in Two Closely-related Mustelid Species (Carnivora: Mustelidae)
Fig. 1. Two-species (M. putorius, M. eversmanii) morphospace models: (A) skull size morphospace based on NMDS axes E1, E2, and skull shape morphospace based on NMDS axes K1, K2; (B) three-dimensional joint 'size/shape' diversity morphospace based on principal components PC1-PC3.
Fig. 5 in Morphological Differentiation of the Skull in Two Closely-related Mustelid Species (Carnivora: Mustelidae)
Fig. 5. (A) Allometry of (CbL), the neurocranium length (NcL), the viscerocranium length (VcL) in M. putorius. (B-D) allometry of the postorbital width (PoW), width of auditory bulla (AbW) and the minimal palatal width (MpW) in M. putorius and M. eversmanii. First coordinate of the morphospaces (E1) is a general size factor of the skull.
Fig. 4 in Morphological Differentiation of the Skull in Two Closely-related Mustelid Species (Carnivora: Mustelidae)
Fig. 4. Scatterplots of PC1 vs. PC2 (A) and PC1 vs. PC3 (B) showing the relative positions of the European and steppe polecats and other mustelines species. (C) UPGMA dendrogram of morphological diversity macroparameters based on factor loadings from Table 6: ds, df - dimensionality of the morphospace models, Hs, Hf - entropy, Hds, Hdf - the average entropy, MOs, MOf - the measures of morphosystem organization; abbreviations s and f mark the macroparameters of 'size' diversity and 'shape' diversity of the skull correspondently.
Fig. 3 in Field and experimental evidence of a new caiman trypanosome species closely phylogenetically related to fish trypanosomes and transmitted by leeches
Fig. 3. Proposed life cycle of T. clandestinus and its developmental and morphological features in caiman blood and leeches. Giemsa-stained blood smears showed blood trypomastigotes of experimentally-infected Caiman yacare, and epi- and trypomastigotes found in the gut of one leech of the genus Haementeria sp. collected in the mouth of a wild Cayman yacare captured in the Pantanal wetland of Brazil. The caiman and the leech trypanosomes were molecularly identified as T. clandestinus. (a‾c) epimastigotes; (b) epimastigote dividing by binary fission; (d, g) short trypomastigote; (e,f) long and thin trypomastigotes. Arrow points to the long and thin posterior extremity of very long and slender trypomastigotes. K, kinetoplast; N, nucleus; F, flagellum.
Fig. 2 in Field and experimental evidence of a new caiman trypanosome species closely phylogenetically related to fish trypanosomes and transmitted by leeches
Fig. 2. Phylogenetic tree (ML) based on gGAPDH sequences showing the Terrestrial and Aquatic clades of Trypanosoma and the positioning of T. clandestinus. The Crocodilian clade, which is formed by T. terena, T. ralphi, T. gray and Cay03 nests in the Terrestrial Clade whereas the Clandestinus clade comprising T. clandestinus nests in Aquatic clade. Typanosomatid genera other than Trypanosoma were used as outgroups in the phylogenetic trees (608 characters, Ln = —7611.897017). Numbers at nodes are bootstrap support (P/ML)>50% and Bayesian posterior probability>0.25 derived from 500 replicates.
Fig. 1 in Field and experimental evidence of a new caiman trypanosome species closely phylogenetically related to fish trypanosomes and transmitted by leeches
Fig. 1. Geographical origin of crocodilian trypanosomes included in the V7V8 SSU rRNA dendrogram inferred to compare the barcode sequences between the new and known trypanosomes from crocodilians and other species of aquatic and semi aquatic hosts. The clade comprising T. clandestinus n. sp. nested into the Aquatic clade closely related to fish trypanosomes whereas sequences of the other new species formed the clade Cay03, which clustered with T. terena, T. grayi and T. ralphi in the Crocodilian Terrestrial clade. The host species and geographic origin and Genbank accession numbers of sequences from the crocodilian trypanosomes are shown in Table 1. Numbers at nodes are bootstrap support values>50% (P/ML) derived from 500 replicates.
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.