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2,052 results for “Species tree”
FIGURE 5. 28S gene tree for 33 in Revision of the genus Devadatta Kirby, 1890 in Borneo based on molecular and morphological methods, with descriptions of four new species (Odonata: Zygoptera: Devadattidae)
FIGURE 5. 28S gene tree for 33 specimens of Devadatta and one outgroup taxon, from Bayesian Inference analysis. Posterior probability values are shown (as percentages) if less than 100%. RMNH collection codes are shown for each specimen, with the RMNH.INS. prefix omitted for clarity.
FIGURE 3. 16S gene tree for 33 in Revision of the genus Devadatta Kirby, 1890 in Borneo based on molecular and morphological methods, with descriptions of four new species (Odonata: Zygoptera: Devadattidae)
FIGURE 3. 16S gene tree for 33 specimens of Devadatta and one outgroup taxon, from Bayesian Inference analysis. Posterior probability values are shown (as percentages) if less than 100%. RMNH collection codes are shown for each specimen, with the RMNH.INS. prefix omitted for clarity.
FIGURE 4. ITS gene tree for 33 in Revision of the genus Devadatta Kirby, 1890 in Borneo based on molecular and morphological methods, with descriptions of four new species (Odonata: Zygoptera: Devadattidae)
FIGURE 4. ITS gene tree for 33 specimens of Devadatta and one outgroup taxon, from Bayesian Inference analysis. Posterior probability values are shown (as percentages) if less than 100%. RMNH collection codes are shown for each specimen, with the RMNH.INS. prefix omitted for clarity.
FIGURE 2. COI gene tree for the 33 in Revision of the genus Devadatta Kirby, 1890 in Borneo based on molecular and morphological methods, with descriptions of four new species (Odonata: Zygoptera: Devadattidae)
FIGURE 2. COI gene tree for the 33 specimens of Devadatta also used in the analysis with other markers and one outgroup taxon. Posterior probability values are shown (as percentages) if less than 100%. RMNH collection codes are shown for each specimen, with the RMNH.INS. prefix omitted for clarity.
FIGURE 1. COI gene tree for 73 in Revision of the genus Devadatta Kirby, 1890 in Borneo based on molecular and morphological methods, with descriptions of four new species (Odonata: Zygoptera: Devadattidae)
FIGURE 1. COI gene tree for 73 specimens of Devadatta and one outgroup taxon, from Bayesian Inference analysis. Posterior probability values are shown (as percentages) if less than 100%. RMNH collection codes are shown for each specimen, with the RMNH.INS. prefix omitted for clarity.
FIGURE 36. Neighbour joining tree generated using K2P in A new species of spider belonging to the Pardosa lugubris - group (Araneae: Lycosidae) from Far East Asia
FIGURE 36. Neighbour joining tree generated using K2P distances of COI for ten species of the genus Pardosa belonging to five species groups [1—agrestis, palustris; 2—amentata; 3—paludicola; 4—caucasica, koponeni, lugubris, alacris; 5— hortensis, proxima]. The sequences are sometimes collapsed into triangles, with the horizontal dimension indicating the genetic divergence within that species. Bootstrap support values are shown above the branches.
FIGURE 2 in Tardigrades of the Tree Canopy: Milnesium swansoni sp. nov. (Eutardigrada: Apochela: Milnesiidae) a new species from Kansas, U. S. A.
FIGURE 2. Tardigrade species with four peribuccal lamellae group, comparison of pt values for Buccal Tube Width (BTW) vs Stylet Support Attachment (SSA) point. pt = trait/Buccal Tube Length. Error bars = trait range (BTW/SSA). The numbers in the graph indicate the stylet support attachment and buccal tube width pt values of the holotype specimen of each species.
FIGURE 1 in Tardigrades of the Tree Canopy: Milnesium swansoni sp. nov. (Eutardigrada: Apochela: Milnesiidae) a new species from Kansas, U. S. A.
FIGURE 1. Milnesium swansoni sp. nov. A. Body of holotype showing smooth cuticle, B. Mouth showing holotype with narrow buccal tube and four peribuccal lamellae, C. showing secondary characteristic of male paratype, D. Claw I of paratype showing [3-3] claw formation, E. showing claw IV with [3-3] claw.
FIGURES 21–24. Ambaeolothrips. Meso and metanotum 21–23 in Ambaeolothrips: a new genus of Neotropical Aeolothripidae (Thysanoptera), with observations on the type-species from mango trees in Mexico
FIGURES 21–24. Ambaeolothrips. Meso and metanotum 21–23: (21) romanruizi; (22) microstriatus; (23) pampeanus. (24) romanruizi female sternite VII (left side), marginal setae 1–4; paired accessory setae (acc.s.)
FIGURES 15–20 in Ambaeolothrips: a new genus of Neotropical Aeolothripidae (Thysanoptera), with observations on the type-species from mango trees in Mexico
FIGURES 15–20. Ambaeolothrips. (15) microstriatus male. Fore wings 16–18: (16) microstriatus, (17) romanruizi, (18) pampeanus. (19) romanruizi male tergite IX. (20) pampeanus female.
FIGURES 1–14. Aeolothripidae species. Terminal antennal segments 1–8 in Ambaeolothrips: a new genus of Neotropical Aeolothripidae (Thysanoptera), with observations on the type-species from mango trees in Mexico
FIGURES 1–14. Aeolothripidae species. Terminal antennal segments 1–8: (1) Aeolothrips nitidus; (2) Ae. fasciatus; (3) Ae. bicolor; (4) Ae. nasturtii; (5) Desmothrips australis; (6) Ambaeolothrips microstriatus segments I–IX; (7) Am. pampeanus segments III–IX; (8) Am. romanruizi segments IV–IX. Meso and metanota 9–14: (9) Stomatothrips septenarius; (10) Aduncothrips?asiaticus; (11) Erythrothrips arizonae; (12) Lamprothrips miltoni; (13) Gelothrips cinctus; (14) Aeolothrips nitidus.
FIGURE 2. Maximum likelihood tree for P. defectus, P. solani and P in Are Phenacoccus solani Ferris and P. defectus Ferris (Hemiptera: Pseudococcidae) distinct species?
FIGURE 2. Maximum likelihood tree for P. defectus, P. solani and P. solenopsis based on COI and 28S sequences. Numbers on the nodes refer to ML bootstrap and Bayesian posterior probability values. The data for the outgroup was obtained by using the Genbank sequences for COI (FJ786963) and 28S (JQ651165) for Planococcus citri.
FIGURE 5. Neighbour-joining tree obtained using K2P in New species and phylogenetic relationships of the spider genus Coptoprepes using morphological and sequence data (Araneae: Anyphaenidae)
FIGURE 5. Neighbour-joining tree obtained using K2P distances, downloaded from BOLD, showing the relationships for Coptoprepes Simon. Data presented as: Species name | Collection number | Sex | Country. Region or province | BIN number. Each color represents a different Barcode Index Number (BIN).
FIGURE 8. Bayesian tree inferred from D2–D3 in Molecular characterisation of five nematode species (Chromadorida, Selachinematidae) from shelf and upper slope sediments off New Zealand, with description of three new species
FIGURE 8. Bayesian tree inferred from D2–D3 of LSU sequences under the general time-reversible (GTR) + proportion of invariable sites (I) + gamma distribution (G) model. Posterior probabilities greater than or equal to 50% are given on appropriate clades. New sequences provided in the present study are shown in bold. The scale (bottom left) stands for substitutions per site.
FIGURE 8. Bayesian phylogenetic tree inferred from D2D3 in First record of the root knot nematode, Meloidogyne minor in New Zealand with description, sequencing information and key to known species of Meloidogyne in New Zealand
FIGURE 8. Bayesian phylogenetic tree inferred from D2D3 gene DNA sequences of Meloidogyne minor. Posterior probabilities greater than 50% are given on appropriate clades. Nematode species, GenBank accession numbers and locations are listed for each taxon, if known.
FIGURES 7–8 in A new species of Neobaryssinus Monné & Martins, and two new species of Baryssiniella new genus (Coleoptera: Cerambycidae), reared from trees in the Brazil nut family (Lecythidaceae)
FIGURES 7–8. Lateral views of Neobaryssinus and Baryssiniella: 7, N. marianae Martins & Monné, male, with distinct central basal cristae; 8, B. hieroglyphica Berkov & Monné, male, with a slight central basal gibbosity.
FIGURES 5–6 in A new species of Neobaryssinus Monné & Martins, and two new species of Baryssiniella new genus (Coleoptera: Cerambycidae), reared from trees in the Brazil nut family (Lecythidaceae)
FIGURES 5–6. Species of Baryssiniella, habitus: 5, B. hieroglyphica Berkov & Monné sp. nov., holotype, male; 6, B. tavakiliani Berkov & Monné sp. nov., female.
FIGURES 15–20 in A new species of Neobaryssinus Monné & Martins, and two new species of Baryssiniella new genus (Coleoptera: Cerambycidae), reared from trees in the Brazil nut family (Lecythidaceae)
FIGURES 15–20. Male and female genitalia: 15, N. altissimus tegmen; 16, N. altissimus median lobe; 17, N. altissimus spermatheca; 18, B. hieroglyphica tegmen; 19, B. hieroglyphica median lobe; 20, B. hieroglyphica spermatheca.
FIGURES 1–4 in A new species of Neobaryssinus Monné & Martins, and two new species of Baryssiniella new genus (Coleoptera: Cerambycidae), reared from trees in the Brazil nut family (Lecythidaceae)
FIGURES 1–4. Species of Neobaryssinus, habitus: 1, N. marianae Martins & Monné, male, French Guiana; 2, N. altissimus Berkov & Monné sp. nov., female; 3, N. phalarus Monné & Martins, female (MNRJ); 4, N. capixaba Monné & Delfino, male (MNRJ).
Figure 1. Neighbour joining COI gene tree using uncorrected p in Description of larvae of two species of Coeliccia Selys, 1865 from Sarawak, identified using DNA barcoding (Odonata: Platycnemididae)
Figure 1. Neighbour joining COI gene tree using uncorrected p-distance for species of the Coeliccia borneensis-group, including both adults and larvae of C. campioni and C.flavostriata, and their sampling sites (except for Lestes dissimulans all from Sarawak, East Malaysia). Coeliccia didyma and Lestes dissimulans are used as outgroups.
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.