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Figure 11 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 11. - The asymmetric liver of an angler, Lophius piscatorius, dorsal view. l.h.l.: left hepatic lobe; r.h.l.: right hepatic lobe. The black arrow indicates the anterior part of the specimen. Scale = 50 mm.
Figure 12 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 12. - Schematic distribution of the supramedulary neurons among teleostean fishes [modified from Mola and Cuoghi (2004)]. A: Type I present in Salmonidae, Syngnathidae, Cottidae, Labridae, Percidae and some Pleuronectiformes; B: Type II present in Lophiiformes, Tetraodontiformes and Batrachoidiformes. Legend: 1: spinal cord; 2: central canal; 3: supramedulary neurons. The black arrow indicates the anterior part of the spinal cord.
Figure 10 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 10. - The central nervous system of an angler (SL = 28.8 cm), Lophius piscatorius, dorsal view. cr.n.: cranial nerves; e.: encephalon; f.t.: filum terminale; op.n.: optic nerves; s.c.: spinal cord. The black arrow indicates the anterior part of the specimen. Scale = 50 mm.
Figure 7 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 7. - The thyroid gland of an angler, Lophius piscatorius, right lateral view. ly.v: lymphatic vessels; th.a: thyroidian artery; th.s: thyroidian sinus. The black arrow indicates the anterior part of the specimen. Scale = 3 mm.
Figure 8 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 8. - Horizontal section in the thyroid gland of an ocean sunfish, Mola mola, ventral view. c.b.v: cut blood vessels; th.t: thyroidian tissue. The black arrow indicates the anterior part of the specimen. Scale = 30 mm.
Figure 9 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 9. - Parasagittal section on a frozen specimen of a black seabream, Spondyliosoma cantharus, left lateral view. k: kidney; ov: ovary; sb: swimbladder; s.c: spinal cord. The black arrow indicates the anterior part of the specimen. Scale = 20 mm.
Figure 6 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 6. - Sagittal section of a frozen of a black seabream, Spondyliosoma cantharus, left lateral view. b.cav: buccal cavity; e: encephalon; s.c: spinal cord; th.i: thyroidian islets; v: ventricle. The black arrow indicates the anterior part of the specimen. Scale = 10 mm.
Figure 5 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 5. - Visceral anatomy of a Buntal puffer, Tetraodon palembangensis, ventral view. The swimbladder and the digestive tract have been put away. ab.cav: abdominal cavity; c.oe: cut oesophagus; c.pc: cut pericardium; k: kidneys; v: ventricle. The black arrow indicates the anterior part of the specimen. Scale = 10 mm.
Figure 4 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 4. - Visceral anatomy of an angler, Lophius piscatorius, ventral view. The digestive tract has been put away. ab.cav: abdominal cavity; c.oe: cut oesophagus; k: kidneys; v: ventricle. The black arrow indicates the anterior part of the specimen. Scale = 10 mm.
Figure 2 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 2. - The restricted gill opening (black arrow) in a few lophiiform and tetraodontiform species. A: Lophius piscatorius (Lophiiformes, Lophiidae); B: Microlophichthys micro- lophus (Lophiiformes, Oneirodidae); C: Tetraodon sp., (Tetraodontiformes, Tetraodontidae); D: Mola mola (Tetraodontiformes, Molidae). All drawings from F. Dejouannet, excepted drawing B modified after Trewavas and Regan (1932).
Figure 1 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 1. - Phylogenetic position of Tetraodontiformes and Lophiiformes (modified from Li (2008); note that in Dettaï and Lecointre (2008) tetraodontiforms and lophiiforms are sister-groups). Drawings from F. Dejouannet. 1: Angler (Lophius piscatorius, Lophiiformes, Lophiidae); 2: Puffer (Tetraodon sp., Tetraodontiformes, Tetraodontidae); 3: Ocean Sunfish (Mola mola, Tetraodontiformes, Molidae); 4: Boarfish (Capros aper, Caproidae); 5: Porgy (Sparus sp., Sparidae); 6: Perch (Perca sp., Percidae).
Figure 3 in Evidence for a close phylogenetic relationship between the teleost orders Tetraodontiformes and Lophiiformes based on an analysis of soft anatomy
Figure 3. - Visceral anatomy of a sea bream, Sparus aurata, left lateral view. ep.m: epaxial musculature; k: kidney; l: liver; sb: swimbladder. The arrow indicates the anterior part of the specimen. Scale = 10 mm.
Linked collectors and determiners for: Huchimingia, a new genus segregated from Millettia (Leguminosae, Millettieae) based on morphological and molecular evidence.
Natural history specimen data linked to collectors and determiners held within, "Huchimingia, a new genus segregated from Millettia (Leguminosae, Millettieae) based on morphological and molecular evidence". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/9cb10461-a420-4771-8a40-afec4ced8332">https://bionomia.net/dataset/9cb10461-a420-4771-8a40-afec4ced8332</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/9cb10461-a420-4771-8a40-afec4ced8332">https://gbif.org/dataset/9cb10461-a420-4771-8a40-afec4ced8332</a>. Formatted as a Frictionless Data package.
FIG. 3 in A new species of Verbascum L. (Scrophulariaceae) from the Gilan province (Iran), based on morphological and molecular evidences
FIG. 3. — Distance based trees on morphological (left) and genetic (right) characters used to differentiate species of Verbascum parsana Sotoodeh, Attar & Civeyrel, sp. nov., V. punalense Boiss. & Buhse and V. shahsavarensis Sotoodeh, Attar & Civeyrel.
FIG. 1 in A new species of Verbascum L. (Scrophulariaceae) from the Gilan province (Iran), based on morphological and molecular evidences
FIG. 1. — Verbascum parsana Sotoodeh, Attar & Civeyrel, sp. nov.: A, herbarium specimen; B, C, a part of inflorescence and fruits, bract and no bracteole; D, co- rolla and androecium; E, arrows show two anterior anthers. Photographs from the type specimen by A. Sotoodeh. Scale bars: 1 cm.
FIG. 2 in A new species of Verbascum L. (Scrophulariaceae) from the Gilan province (Iran), based on morphological and molecular evidences
FIG. 2. — Distribution of Verbascum parsana Sotoodeh, Attar & Civeyrel, sp. nov. (ê) The magnified view on the right is from Google map (maps.google.com).
Figure 5 in Two new species from the Hygrobates nigromaculatus-complex (Acariformes, Hydrachnidia, Hygrobatidae), based on morphological and molecular evidence
Figure 5 Genital field: A-B –Hygrobates lacrima sp. nov., paratypes (A, ♂; B, ♀), Trebaljevo, Montenegro; C-F –Hygrobates limnocrenicus sp. nov. (C-D, F, ♀; E, ♂); C, holotype, Mareza, Montenegro; D, paratype, Struga, North Macedonia; E-F, Vitoja, Montenegro; G-HH –. setosus Besseling, 1942, ♂, G, Farver Au, Germany; H, redrawn from Besseling (1964).
Figure 9 in Two new species from the Hygrobates nigromaculatus-complex (Acariformes, Hydrachnidia, Hygrobatidae), based on morphological and molecular evidence
Figure 9 Sampling sites: A-B – River Tara near Trebaljevo; C – River Tara near Mateševo; D – the "Kraljičino Oko" (the Queen's Eye) spring near Podgorica; E – River Crni Drim near Struga; F – the Vitoja spring located on the north-eastern shore of Lake Skadar flooded in the winter and spring months.
Figure 3 in Two new species from the Hygrobates nigromaculatus-complex (Acariformes, Hydrachnidia, Hygrobatidae), based on morphological and molecular evidence
Figure 3 Hygrobates lacrima sp. nov., holotype ♀, Mateševo, Montenegro: A – idiosoma, ventral view; B – palp, lateral view; C – palp, medial view; D – chelicera; E – I-L-5 and -6; F – IV-L-5 and -6. Scale bars = 100 µm.
Figure 8 in Two new species from the Hygrobates nigromaculatus-complex (Acariformes, Hydrachnidia, Hygrobatidae), based on morphological and molecular evidence
Figure 8 Distribution of H. lacrima sp. nov. (green square) andH. limnocrenicus sp. nov. (purple circle). Sampling site numbers: 1, River Tara near Mateševo; 2, River Tara near Trebaljevo; 3, Mareza
ScienceDex guides
Understand access before you commit
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.