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2,052 results for “Species tree”
Figure 15 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 15. Scanning electron microscopy images of egg surface of Argolebias guarani. A, general view. B, C, detail of chorion surface. D, micropyle.
Figure 7 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 7. Colour pattern variability of Argolebias guarani females. A, immediately after capture. B–D, in aquarium.
Figure 5 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 5. Argolebias guarani detail of diagnostic characters. A, orange-yellowish background coloration on the base of unpaired fins and yellowish belly in juveniles and young adults. B, scattered small dark brown to grey irregular blotches on the laterodorsal surface of the head and anterior portion of the trunk. C, abundant and relatively big sub-square irregular iridescent turquoise to light blue blotches on unpaired fins, evenly distributed, with those on the distal portion elongated and merging; trunk and tail of mature males with anterocentral portion of scales iridescent turquoise with grey borders, generating a reticulated pattern; and thin border of scales below dorsal fin in dorsal portion of trunk iridescent turquoise.
Figure 3 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 3. Argolebias diagnostic characters: black blotch on most anterior region of dorsal fin (A, B); fused iridescent marks on distal portion of dorsal fin (C, D); a wide dark grey to black border on most scales on ventral half portion of flank, above anal fin, in mature dominant males (not considering bands; E, F); and iridescent spots on medial distal portion of pectoral fin (G, H).
Figure 6 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 6. Colour pattern variability of Argolebias guarani males. A, male immediately after capture. B–D, in aquarium.
Figure 4. Argolebias guarani IBIGEO-I 473, 51.0 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 4. Argolebias guarani IBIGEO-I 473, 51.0 mm standard length, male, holotype, in left lateral view. A, picture of live animal taken in aquarium. B, holotype preserved in alcohol after fixation in formaldehyde.
Figure 13 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 13. Type locality of Argolebias guarani. A, B, November 2017. C, D, November 2018. E, F, June 2019.
Figure 9 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 9. Ontogenetic changes in colour patterns in Argolebias guarani females. A, juvenile ~1 cm standard length (SL). B, young adult ~1.5 cm SL. C, adult individual ~2.5 cm SL.
Figure 1 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 1. Phylogenetic relationships of the Austrolebias genus group based on morphological characters (191) and molecular markers [four mitochondrial markers (12s, 16s, cytb and cox1) and six nuclear markers (glyt, rag1, enc1, rh1, sh3px3 and 28s)]. Analysis was performed under implied weighting (K = 3). Numbers on nodes represent symmetric resampling (GC values). The colours of terminal taxa represent data analysed for the taxon as follows: black, morphology and two or more molecular markers; green, only morphology; blue, two or more molecular markers; orange, only one molecular marker. *Type species of the genus.
Figure 12 in From the mud to the tree: phylogeny of Austrolebias killifishes, new generic structure and description of a new species (Cyprinodontiformes: Rivulidae)
Figure 12. Map showing the known distribution of the Argolebias genus as defined herein. Stars represent type localities and circles other records. Each symbol can represent more than one record. Colours of symbols are coded as follows: red, Argolebias guarani; yellow, Argolebias nigripinnis; and orange, Argolebias paranaensis. Based on the studies by Calviño (2007), Calviño et al. (2016), Costa (2006a), Volcan et al. (2017) and this study.
FIGURE4. Maximum-likelihood tree inferred from 694 bp of COI using a HKY+G substitution model implemented in MEGAX (Kumar et al. 2018). Bootstrap values are indicated on the nodes. in --Molecular--and--acoustic--evidence--support--the--species--status--of--Anthus rubescens rubescens and--Anthus [rubescens] japonicus--(Passeriformes:--Motacillidae)
FIGURE4. Maximum-likelihood tree inferred from 694 bp of COI using a HKY+G substitution model implemented in MEGAX (Kumar et al. 2018). Bootstrap values are indicated on the nodes.
FIGURE3. Maximum-likelihood tree inferred from 998 bp of CR using a HKY+G substitution model implemented in MEGAX (Kumar et al. 2018). Bootstrap values are indicated on the nodes. in --Molecular--and--acoustic--evidence--support--the--species--status--of--Anthus rubescens rubescens and--Anthus [rubescens] japonicus--(Passeriformes:--Motacillidae)
FIGURE3. Maximum-likelihood tree inferred from 998 bp of CR using a HKY+G substitution model implemented in MEGAX (Kumar et al. 2018). Bootstrap values are indicated on the nodes.
Model outputs and species-level data for "Functional traits and climate drive interspecific differences in disturbance-induced tree mortality".V2
<p>A minor coding error was found in the pre-formatted data of <a href="https://onlinelibrary.wiley.com/doi/abs/10.1111/gcb.16630">Barrere et al. (2023)</a>. This error did not affect the main results of the paper, but led to minor change in the value of the posterior estimates, stored in data/sensitivity/jags_dominance.Rdata. This repository contains the new version of the parameters. </p>
Occurrence data download from GBIF for 115 tree species in Burundi
<p>Cleaned occurrence data from GBIF for 115 tree species in Burundi </p>
FIGURE 8—Phylogenetic tree inferred using Bayesian Inference derived from cytochrome c oxidase subunit I in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 8—Phylogenetic tree inferred using Bayesian Inference derived from cytochrome c oxidase subunit I (COI) gene dataset. Numbers in the nodes represent posterior probability (<0.95 are not shown).
FIGURE 5 A–G in Tree-dwelling wolves: a new arboreal Hogna species (Araneae: Lycosidae) from Taiwan
FIGURE 5 A–G. Habitus of Hogna arborea sp. nov. (A, C, E, G, Holotype, TESRI- Ar3045; B, D, F, Paratype, TESRIAr5507). A–B, general appearance, dorsal view; C–D, prosoma, lateral view; E–F, eyes; G, metatarsus I and tarsus I, prolateral view. Scale bar = 5mm (A–D); 0.5mm (E–F), 1mm (G).
FIGURE 6 in Tree-dwelling wolves: a new arboreal Hogna species (Araneae: Lycosidae) from Taiwan
FIGURE 6. Maximum likelihood phylogenetic tree of Hogna arborea sp. nov. and related species based on COI gene dataset. Number above branches are ultrafast bootstrap (UFBoot) and SH-like approximate likelihood ratio test (SH-aLRT) values (both values less than 70 were omitted). Scale bar shows substitutions per site. Species marked with an asterisk indicates the type species of the genus.
FIGURE 2 A–D in Tree-dwelling wolves: a new arboreal Hogna species (Araneae: Lycosidae) from Taiwan
FIGURE 2 A–D. Habitats and maternal care of the egg sac of Hogna arborea sp. nov. (B–D, photographed by Mr. Ren-Jie Chen). A, paratype (TESRI-Ar5507), nesting in tree holes, 10 Feb. 2020, Hualien County; B, female at the entrance of a tree hole, 21 Sep 2021, Pingtung County; C, silken retreat built on a tree hole, 14 Sep 2014, Pingtung County; D, female carrying egg sac at entrance of a tree hole, 26 Jun 2015, Hualien County.
FIGURE 3 A–E in Tree-dwelling wolves: a new arboreal Hogna species (Araneae: Lycosidae) from Taiwan
FIGURE 3 A–E. Epigyne and left palp organ of Hogna arborea sp. nov. (A–B, Holotype, TESRI- Ar3045; C–E, Paratype, TESRI-Ar5507). A, ventral view; B, dorsal view; C, prolateral view; D, ventral view; E, retrolateral view. Scale bar = 0.05mm. Abbreviations: BS- base of spermatheca, C- conductor, CD- copulatory duct, Em- embolus, H- hood, HS- head of spermatheca, MA- median apophysis, MF- massive fold, P- palea, S- septum, SB- septum base, St- subtegulum, T- tegulum, TA- terminal apophysis.
FIGURE 4 in Priopoda macrophyae (Hymenoptera, Ichneumonidae, Ctenopelmatinae), a new species of parasitoid of Macrophya satoi (Tenthredinidae), a serious pest of Japanese ash tree (Oleaceae)
FIGURE 4. Larva of Macrophya satoi Shinohara & Li, 2015 attacked by Priopoda macrophyae sp. nov. (photo by M. Isono).
ScienceDex guides
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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.