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Fig. 2. Forewing, A. bolivianus, new species. A. Dorsal view. B in DESCRIPTION OF THE FIRST RECENT MACROPTEROUS SPECIES OF VIANAIDINAE (HETEROPTERA: TINGIDAE) WITH COMMENTS ON THE PHYLOGENETIC RELATIONSHIPS OF THE FAMILY WITHIN THE CIMICOMORPHA
Fig. 2. Forewing, A. bolivianus, new species. A. Dorsal view. B. Lateral view.
Fig. 9 in DESCRIPTION OF THE FIRST RECENT MACROPTEROUS SPECIES OF VIANAIDINAE (HETEROPTERA: TINGIDAE) WITH COMMENTS ON THE PHYLOGENETIC RELATIONSHIPS OF THE FAMILY WITHIN THE CIMICOMORPHA
Fig. 9. Phylogenetic relationships of Miroidea based on data presented in Tables 1 and 2.
FIG. 4 in Phylogenetic relationships of Nyctereutes Temminck, 1838 (Canidae, Carnivora, Mammalia) from early Pliocene of Çalta, Turkey
FIG. 4. — Length/Width dispersal diagrams of three upper (P4, M1 and M2) and three lower (p4, m1 and m2) cheek teeth for specimens from Perpignan, Layna and Çalta referred to N. donnezani, and N. tingi from Yushe Basin, China. Measurements for specimens from Çalta and Perpignan are our measurements; those for Layna are taken from Soria & Aguirre (1976) and for N. tingi from Tedford & Qiu (1991).
FIG. 5 in Phylogenetic relationships of Nyctereutes Temminck, 1838 (Canidae, Carnivora, Mammalia) from early Pliocene of Çalta, Turkey
FIG. 5. — Cladogram showing the relationships among the species of Nyctereutes. The two outgroup taxa are the extant Vulpes vulpes and Canis lupus. For data matrix see Tables 3 and 4. Character state changes at nodes 1 to 9 are reconstructed using DELTRAN assumptions for ambiguous (in normal digits) and unambiguous (in bold digits) character transformations.
Fig. 9 in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 9. Caudal-fin skeleton in Dastilbe moraesi as observed in: a. specimen CPUFMT 746, 28.0 mm TFL, anterior to right; b. specimen CPUFMT 736, 37.0 mm TFL, anterior to right and c. specimen CPUFMT 748, 21.0 mm TFL, anterior to left.
Fig. 8. a in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 8. a. Dorsal view of the posterior portion of skull in Dastilbe moraesi (CPUFMT 732.7 mm TFL) and b. Chanos chanos (modified from Poyato-Ariza et al., 2010). c. Dorsal view of the anterior portion of skull in Dastilbe moraesi (CPUFMT 735, 26.4 mm SL). Synapomorphies of Chanini observed are: 1- exoccipitals with a posterior concave-convex border, with a projection above basioccipital. 2- large mesethmoid, with broad posterolateral wing-like expansions.
Fig. 7 in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 7. Opercular region of Dastilbe moraesi (CPUFMT 745, 16.3 mm TFL) in lateral view, anterior to left: Synapomorphies of Chanidae observed are: opercular bone is expanded, at least one-third of the head length; and suprapreopercular bone is present as a relatively large, flat bone.
Fig. 5. a in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 5. a. Dastilbe moraesi (CPUFMT 5150, 16.0 mm TFL), anterior to left. b. Dastilbe moraesi (CPUFMT 730, 30.0 mm TFL), anterior to left. Synapomorphies of Gonorynchiformes observed are: 1-cephalic ribs; 2- parietals reduced and separated by supraoccipital, 3- absence of premaxillary ascending process.
Fig. 1 in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 1. Paratypes of Dastilbe moraesi: a. DGM 594P, 33.7 mm SL, anterior to left; b. DGM 595P, 39.2 mm TFL, anterior to right; c. DGM 596P (larger specimen), 58.0 mm SL, anterior to rigth; and d. DGM 600P (larger specimen), 58 mm SL, anterior to left.
Fig. 2. a. Dastilbe moraesi, DGM 593-P, 47.0 in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 2. a. Dastilbe moraesi, DGM 593-P, 47.0 mm SL, holotype, Fazenda São José do Geribá, Presidente Olegário, State of Minas Gerais, Brazil; b. Dastilbe crandalli, DGM 176-P, 153.6 mm SL, holotype of Dastilbe elongatus, Brazil, State of Ceará, Sítio Romualdo, 15 km from Crato, coll. C. G. Gomes, August 1934.
Fig. 4. a in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 4. a. Single most parsimonious tree (CI= 0.743; RI= 0.733; 166 steps long) depicting phylogenetic relationships of Dastilbe moraesi and other chanids. Clades 1 to 11 are supported by synapomorphies described in S2; b. highlighted vertical branch length expresses the occurrence of taxa in the fossil record.
Fig. 3 in Phylogenetic relationships of Chanidae (Teleostei: Gonorynchiformes) as impacted by Dastilbe moraesi, from the Sanfranciscana basin, Early Cretaceous of Brazil
Fig. 3. Outlines of the premaxilla and the maxilla in three chanid genera in order to compare the relative length and curvature of the premaxillary process of the maxilla in: a. Dastilbe elongatus, based mostly on specimens AMNH 31 and AMNH 12721 (redrawn from Poyato-Ariza, 1996a, figs. 2A and 7); b. Nanaichthys longipinnus, based on the holotype, DGM.1016-P (redrawn from Amaral, Brito, 2012, fig. 4C); and c. Rubiesichthys gregalis, based on the restoration of the skull from numerous specimens (redrawn from Poyato-Ariza, 1996b, fig. 2). All left side, lateral view. Scale bars = 1 mm.
Fig. 1 in Phylogenetic relationships of the family Tarumaniidae (Characiformes) based on nuclear and mitochondrial data
Fig. 1. Maximum likelihood tree resolving the phylogenetic placement of the family Tarumaniidae among 520 characiform species. Scale bar = 0.06 expected substitutions per position as estimated by RAxML.
Fig. 6. Moenkhausia flava. LBP 9031, 31.9 in Description of a new species of Moenkhausia (Characiformes: Characidae) from the upper Paraguay basin, Central Brazil, with comments on its phylogenetic relationships
Fig. 6. Moenkhausia flava. LBP 9031, 31.9 mm SL, paratype: right premaxilla (top), maxilla (middle), and dentary (bottom). Scale bar = 0.5 mm.
Fig. 7 in Description of a new species of Moenkhausia (Characiformes: Characidae) from the upper Paraguay basin, Central Brazil, with comments on its phylogenetic relationships
Fig. 7. Maximum likelihood phylogenetic tree based on Partial sequences of two mitochondrial genes and three nuclear genes. The series of three numbers (e.g. 100/94/1) at each of the main nodes represents the percentage of bootstrap support obtained by Maximum Likelihood (ML), the percentage of bootstrap support obtained by the Maximum Parsimony (MP) analysis and the posterior probability for that split obtained in Bayesian analysis (B),respectively (1000 bootstrap replicates). Dashes represent values <50% (ML, MP) or <0.5 (B).
Fig. 2 in Description of a new species of Moenkhausia (Characiformes: Characidae) from the upper Paraguay basin, Central Brazil, with comments on its phylogenetic relationships
Fig. 2. Moenkhausia flava, paratype, LBP 18414, 34.1 mm SL. Overall coloration darker, yellowish tan, where most of dark pigments are preserved.
Fig. 1 in Description of a new species of Moenkhausia (Characiformes: Characidae) from the upper Paraguay basin, Central Brazil, with comments on its phylogenetic relationships
Fig. 1. Moenkhausia flava, holotype, MZUSP 123719, 34.0 mm SL, Brazil, Mato Grosso, small stream tributary of rio Sepotuba.
Aligned DNA sequence matrix for phylogenetic analyses in the article "Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)"
<p>Aligned DNA sequence matrix for phylogenetic analyses in the article "Description and phylogenetic relationships of a new trans-Andean species of <em>Elachistocleis</em> Parker 1927 (Amphibia, Anura, Microhylidae)"</p> <p>Gene partitions are arranged as follows (tRNAs are included as part of larger adjacent genes):</p> <p>16S = 1-1165;<br> BDNFcodonPos1 = 1166 - 1874\3;<br> BDNFcodonPos2 = 1167 - 1875\3;<br> BDNFcodonPos3 = 1168 - 1876\3;<br> cmyccodonPos1 = 1878 - 2319\3;<br> cmyccodonPos2 = 1879 - 2320\3;<br> cmyccodonPos3 = 1877 - 2318\3;<br> CO1codonPos1 = 2321 - 2981\3;<br> CO1codonPos2 = 2322 - 2979\3;<br> CO1codonPos3 = 2323 - 2980\3;<br> histcodonPos1 = 2983 - 3307\3;<br> histcodonPos2 = 2984 - 3308\3;<br> histcodonPos3 = 2982 - 3309\3;<br> siacodonPos1 = 3311 - 3704\3;<br> siacodonPos2 = 3312 - 3705\3;<br> siacodonPos3 = 3310 - 3706\3;<br> tyrcodonPos1 = 3708 - 4263\3;<br> tyrcodonPos2 = 3709 - 4264\3;<br> tyrcodonPos3 = 3707 - 4262\3;<br> 28S = 4265-5084;<br> 12S = 5085-6171;</p> <p> </p>
Phylogeny for "Description and phylogenetic relationships of a new trans-Andean species of Elachistocleis Parker 1927 (Amphibia, Anura, Microhylidae)"
<p>Phylogeny for "Description and phylogenetic relationships of a new trans-Andean species of <em>Elachistocleis</em> Parker 1927 (Amphibia, Anura, Microhylidae)"</p> <p>Phylogenetic relationships of the family Microhylidae. Strict consensus for maximum-likelihood trees obtained from analyses of DNA sequences of mitochondrial (12S, 16S and CO1) and nuclear (BDNF, cmyc2, H3A, 28S, SIA1, and Tyr) genes from 302 terminals and up to 6171 bp. Numbers below branches are ML bootstrap support values.</p>
FIGURE 1 in Konradus leehermani - a new genus and species of Philonthina from the Neotropical region and its phylogenetic relationships (Coleoptera: Staphylinidae: Staphylininae)
FIGURE 1. Habitus of Konradus leehermani, female paratype [NHMUK ©]. Scale bar = 3 mm.
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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.