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Fig. 4. Phylogenetic relationships generated from the 16S rRNA gene for 16 in A survey of auchenorrhynchan insects for identification of potential vectors of the 16SrIV-D phytoplasma in Florida
Fig. 4. Phylogenetic relationships generated from the 16S rRNA gene for 16SrIV phytoplasmas by using maximum likelihood (1,000 replicates) methods in MEGA. The 16S partial sequence amplified from Haplaxius crudus (indicated by the black triangle) and unidentified Cicadellidae specimen (indicated by the white triangle) from this study were included in the analysis.
Fig. 10 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 10. Proximal tarsal bones of Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. Right calcaneus in lateral view (A) and stereopair in anterior view (B). Right astragalus in anterodorsal view (C) and stereopair in posterior view (D).
Fig. 11 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 11. Partial right tarsus of Dissacus zanabazari sp. nov., holotype, MAE− BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. A1, anterior view, A2, explanatory drawing of the same; B1, medial view, B2, explanatory drawing of the same.
Fig. 9 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 9. Anterior views of right femur (A) and right tibia and fibula (B) of Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene.
Fig. 8 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 8. Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. A. Lateral view of pelvis with lumbar and sacral vertebrae. B. Right femur in distal view.
Fig. 4 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 4. Mandible and lower dentition of Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. A. Anterior view of the lower canines and incisors. Note the weakly trilobed morphology, most evident on i2. B. Stereopair of the left mandible in dorsal view. C. Medial view of the left mandible. D. Lingual view of the left p4 through m3.
Fig. 3. A. Right P4 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 3. A. Right P4 to M3 of Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. B. Explanantory drawing of the same. Hatched areas in B indicate crushed and distorted enamel, and shading denotes missing enamel, with features reconstructed from left dentition.
Fig. 2. A in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 2. A. Stereopair of the right basicranium of Dissacus zanabazari sp. nov., holotype, MAE−BU− 97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. B. Explanatory drawing of the same.
Fig. 1 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 1. Skull of Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene, in dorsal (A), lateral (B), and ventral (C) views. The antorbital and postorbital portions of the skull are completely separate and were positioned based on more complete mesonychid skulls.
Fig. 5 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 5. Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. Left scapula shown in ventral (A) and lateral (B) views C. Stereopair of left manus, in anterior view. Abbreviations: ce, centrale; Mc, metacarpal; mg, magnum; td, trapezoid.
Fig. 6 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 6. Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. A. Left radius and ulna in medial view. B. Right humerus in anterior view.
Fig. 7. A in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 7. A. Medial view of the left manus of Dissacus zanabazari sp. nov., holotype, MAE−BU−97−13786, Tsagaan Khushuu, Gobi Desert, Mongolia, early Eocene. B. Explanatory drawing of the same.
Fig. 12 in A new species of mesonychian mammal from the lower Eocene of Mongolia and its phylogenetic relationships
Fig. 12. Phylogenetic position of Dissacus zanabazari as depicted in a strict consensus of 8 most parsimonious trees, each 220 steps in length. Bremer support values are placed below and to the left of each node. Abbreviation: H, Hapalodectidae.
Fig. 8 in A new Miocene penguin from Patagonia and its phylogenetic relationships
Fig. 8. Single most parsimonious tree of the Spheniscidae resulting from analysis of the character matrix in Appendix 3. Filled circles are unambiguous synapormorphies, open circles are homoplasious characters (both at state level), numbers above and below circles are character number and state numbers respectively. Asterisks indicate fossil species. Abbreviations: E., Eudyptula; S., Spheniscus; M., Madrynornis; Me., Megadyptes; P., Pygoscelis; A., Aptenodytes.
Fig. 5 in A new Miocene penguin from Patagonia and its phylogenetic relationships
Fig. 5. Miocene penguin Madrynornis mirandus gen. et sp. nov., MEF−PV 100 (holotype), Puerto Madryn Formation, early late Miocene, Playa Villarino, Península Valdés, Chubut Province, Argentina. A. Right tibiotarsus, anterior (A1) and posterior (A2) views. B. Pelvic girdle, right side, lateral view. C. Right femur, caudal view. D. Left tarsometatarsus, cranial (D1) and caudal (D2) views. E. Right patella, lateral view.
Fig. 4 in A new Miocene penguin from Patagonia and its phylogenetic relationships
Fig. 4. Miocene penguin Madrynornis mirandus gen. et sp. nov., MEF−PV 100 (holotype), Puerto Madryn Formation, early late Miocene, Playa Villarino, Península Valdés, Chubut Province, Argentina. A. Left coracoid, anterior view. B. Right cubit, anterior view. C. Right radius, anterior view. D. Sternum, anterior view. E. Right carpometacarpus, anterior (E1) and posterior (E2) views. F. Right humerus, anterior (F1) and posterior (F2) views. G. Right scapula, anterior view.
Fig. 3 in A new Miocene penguin from Patagonia and its phylogenetic relationships
Fig. 3. Miocene penguin Madrynornis mirandus gen. et sp. nov., MEF−PV 100 (holotype), Puerto Madryn Formation, early late Miocene, Playa Villarino, Península Valdés, Chubut Province, Argentina. A. Skull, dorsal (A1), palatal (A2), lateral (A3), and occipital (A4) views. B. Mandible, internal (B1) and dorsal (B2) views. C. Quadrate, lateral view of the left quadrate. D. Atlas, cranial view. E. Caudal vertebra, cranial view. F. Cervical vertebra, cranial view. G. Pygostyle, lateral view.
Fig. 1 in A new Miocene penguin from Patagonia and its phylogenetic relationships
Fig. 1. Map of Península Valdés, Chubut Province (Argentina) indicating Playa Villarino, Puerto Madryn Formation, early late Miocene, the locality from which the holotype of Madrynornis mirandus gen. et sp. nov., MEF−PV 100, was collected. The penguin locality is indicated by an arrow.
Fig. 6 in A new Miocene penguin from Patagonia and its phylogenetic relationships
Fig. 6. Miocene penguin Madrynornis mirandus gen. et sp. nov., MEF−PV 100 (holotype), Puerto Madryn Formation, early late Miocene, Playa Villarino, Península Valdés, Chubut Province, Argentina. A. Skull, dorsal (A1) and lateral (A2) views. B. Mandible, dorsal (B1) and lateral (B2) views. All reconstructions.
Phylogenetic relationships and evolution of the major groups of Siluriformes
<p>In the book chapter we offer a reappraisal of the phylogenetic relationships of the order Siluriformes. Results are based on an original supermatrix ML analysis of sequence data in combination with previously published hypotheses based on both morphology and molecular data. Relationships proposed are summarized in a revised classification of the Siluriformes to family level. The position of Diplomystidae is corroborated as the sister group to all other catfishes, with Loricarioidei as the next sister group to the rest of the order. Other results include a monophyletic group composed of Pangasiidae, Ictaluridae and Cranoglanididae and another including Austroglanididae, Ariidae and Anchariidae. Previously proposed large clades in Africa and Asia are mostly corroborated. A possible narrative biogeographic scenario is described where siluriform continental diversification occurred in tandem with the separation of Gondwana, in close association with the expanding coastal waterways and their occupation of lowland and estuarine environments. All datasets used to generate the trees, including a spreadsheet with GenBank accession numbers, independent alignments of nuclear and mitochondrial genomic markers, concatenated matrices and best-fit partitioning schemes, RAxML log files, and the best ML trees, are available for download at the Zenodo repository (10.5281/zenodo.10535451).</p> <div> <div> <p>Prelim chapter citation:</p> <p>de Pinna, M.C.C. L. Peixoto, V. Tagliacollo and M. Britto. 2024. Phylogenetic relationships of the major groups of Siluriformes. pp. xx–xx. In: G. Arratia and R.E. Reis [eds.]. Catfishes, a Highly Diversified Group. Science Publishers, Inc., Enfield, Jersey, Plymouth.</p> </div> </div>
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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.