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FIGURE 10 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 10. Microplana terrestris (Müller 1774). Müller's description of 1774 (as Fasciola terrestris). This is the first published description of any terrestrial planarian.
FIGURE 26. Microplana groga n in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 26. Microplana groga n. sp. Specimen FG3 of Mateos et al. (1998). NHML, 1998.2.9.5. Anterior to the right. a. Longitudinal section showing the expanded sperm duct, penis and vagina. b–g. Sections at intervals through the vagina and genito-intestinal canal. Note that the genito-intestinal canal forks and there are two openings to the intestine, one on either side. (b) shows the opening of the genito-intestinal canal on one side, and (g) on the other side. All to the same scale.
FIGURE 7 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 7. Microplana scharffi (Graff 1896). Specimen S2, NHML, 2006.6.28.23. a. Section through the penis. Note the circular muscle around the ejaculatory duct. b. Section through the female part of the copulatory apparatus. c. Same section as (b) viewed with polarised light, showing the refractive granules (white) in the intestinal epithelium and in the bursal epithelium nearest to the entry to the intestine. Anterior to the left.
FIGURE 5 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 5. Microplana scharffi (Graff 1896). a. The holotype specimen of Rhynchodemus hovassei Beauchamp 1934 from Turkey, MNHNP, AO 29. b. Specimen from Madeira identified as Microplana hovassei by Beauchamp (1957), MNHNP, AO 30-36. Sections though the copulatory apparatus, both of merged adjacent images. Anterior to the left.
FIGURE 6 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 6. Microplana scharffi (Graff 1896). Specimen S1, NHML 2006.6.28.22. a. Section through the penis. Note the circular muscle around the ejaculatory duct. b. Section through the female part of the copulatory apparatus. c. Same section as (b) viewed with polarised light, showing the refractive granules (white) in the intestinal epithelium and in the bursal epithelium nearest to the entry to the intestine. Anterior to the left.
FIGURE 3 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 3. Microplana scharffi (Graff 1896). Holotype (as Rhynchodemus scharffi), NHMW, L154/M254, Inventory number 2832. a. Diagram of the copulatory apparatus, based on the following micrographs. b–d. Micrographs of the copulatory apparatus at different planes through the serial sections. e. Micrograph at larger magnification of the penis showing the combined sperm duct entering the ejaculatory duct. Anterior to the left.
FIGURE 4 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 4. Microplana scharffi (Graff 1896). Specimen of Adam & Leloup (1944) from Belgium (as Rhynchodemus britannicus Percival 1925), IRSNB, IG 13876. a – c. Sections through the copulatory apparatus at different planes. Anterior to the left.
FIGURE 2 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 2. Phylogenetic analysis of cox1 genes showing results from maximum likelihood (ML) analysis. The topology of the tree was identical with maximum parsimony (MP). Nodal support indicated is from bootstrap resampling (ML/MP; n=100/1000 respectively; =50% only shown).
FIGURE 1 in Molecular and morphological evidence for two new species of terrestrial planarians of the genus Microplana (Platyhelminthes; Turbellaria; Tricladida; Terricola) from Europe
FIGURE 1. Microplana spp. Colour photographs of live specimens (stills from digital video). Scale line = 1 cm (the circular depressions on the background stone are 1 cm apart and about 2 mm in diameter): a. Microplana scharffi (about 35 mm long, anterior to the right). b. Microplana kwiskea n. sp. a khaki flatworm (upper, about 23 mm long, anterior to the right) and M. terrestris (lower, the dark grey specimen, about 20mm long, anterior to the bottom). c. The same specimens as (b) when contracted and lying on their dorsal side. The narrow end of both is anterior. The ventral creeping sole is visible in both. d. A "granular" specimen of M. terrestris (about 15 mm long, anterior to the right). All specimens from Kirby Wiske, Yorkshire.
FIGURE 3 in The population of Ctenomys from the Ñacuñán Biosphere Reserve (Mendoza, Argentina) belongs to Ctenomys mendocinus Philippi, 1869 (Rodentia: Ctenomyidae): molecular and karyotypic evidence
FIGURE 3. Phylogenetic tree resulting from the Bayesian analysis of the cyt-b gene sequences of Ctenomys. The outgroup is not shown. Numbers indicate support (Bootstrap [only those above 50 % are shown], Bremer support, and Posterior probabilities) of the nodes at their right (see details in text). For those sequences retrieved from GenBank, accession numbers are provided next to species labels. For those sequences gathered by us, specimen collection numbers are provided next to species label.
FIGURE 1 in The population of Ctenomys from the Ñacuñán Biosphere Reserve (Mendoza, Argentina) belongs to Ctenomys mendocinus Philippi, 1869 (Rodentia: Ctenomyidae): molecular and karyotypic evidence
FIGURE 1. Standard Giemsa-stained karyotype of Ctenomys mendocinus from Ñacuñán, karyomorph 2n = 48, FN = 76 (CMI 07227).
FIGURE 2 in Phylogenetics of the tribe Phalacropsyllini (Siphonaptera: Ctenophthalmidae: Neopsyllinae) based on molecular and morphological evidence
FIGURE 2. Some of the morphological characters used in the cladistic analysis. a) Number of teeth in genal comb; b) metacoxa with spiniforms; c) sternum VIII expanded; d) distal arm of IX sternum with membranous flap; e) fixed process bifurcated; f) five pairs of lateral plantar bristles on fifth tarsal segment of hind legs.
FIGURE 1 in Phylogenetics of the tribe Phalacropsyllini (Siphonaptera: Ctenophthalmidae: Neopsyllinae) based on molecular and morphological evidence
FIGURE 1. Habitus photographs (males). Ingroup: a) Catallagia charlottensis; b) Delotelis telegoni; c) Epitedia wenmanni; d) Phalacropsylla paradisea; e) Meringis parkeri; f) Strepsylla mina; Outgroups: g) Neopsylla inopina (Neopsyllini); h) Anomiopsyllus perotensis (Anomiopsyllini).
FIGURE 3 in Phylogenetics of the tribe Phalacropsyllini (Siphonaptera: Ctenophthalmidae: Neopsyllinae) based on molecular and morphological evidence
FIGURE 3. Phylogenetic relationships of the tribe Phalacropsyllini based on the parsimony analysis of 28S, and 18S genes, and morphological characters. Numbers below nodes indicate support values determined by symmetric resampling.
FIGURE 1 in Discovery of the female of Protohermes niger Yang & Yang (Megaloptera: Corydalidae): Sexual dimorphism in coloration of a dobsonfly revealed by molecular evidence
FIGURE 1. Phylogenetic tree based on 16S rRNA + COI dataset. The numbers associated with branches are Bayesian posterior probability/ML bootstrap values.
FIGURE 4 in Taxonomic identity of the patagonian frog Atelognathus jeinimenensis (Anura: Neobatrachia) as revealed by molecular and morphometric evidence
FIGURE 4. Median-joining networks of mitochondrial Control Region (d-loop) haplotypes of four Atelognathus localities. Size of circles is proportional to frequency. Point indicates mutational steps. Laguna de los Gendarmes and PN. Laguna Jeinimeni are type localities.
FIGURE 2 in Taxonomic identity of the patagonian frog Atelognathus jeinimenensis (Anura: Neobatrachia) as revealed by molecular and morphometric evidence
FIGURE 2. Representation of the morphological variation in Atelognathus generated from the first two axes in the Principal Component Analysis (PCA).The Principal component (CPi=ith principal component; centroid at 95%) explained the 75.18% of the variance.
FIGURE 1 in Taxonomic identity of the patagonian frog Atelognathus jeinimenensis (Anura: Neobatrachia) as revealed by molecular and morphometric evidence
FIGURE 1. On the map, both Atelognathus species considered in this study. The photopgraphs correspond to adults of A. salai female from Laguna de los Gendarmes (not collected), and A. jeinimenensis male from Cerro Castillo (MZUC 36579). Below are types localities of all nine Atelognathus species in South America (1: A. patagonicus, 2: A. praebasalticus, 3: A. reverberii, 4: A. nitoi, 5: A. solitarius, 6: A. salai, 7: A. ceii, 8: A. jeinimenensis, 9: A. grandisonae) and the box shows the localities analyzed in this study.
FIGURE 3 in Taxonomic identity of the patagonian frog Atelognathus jeinimenensis (Anura: Neobatrachia) as revealed by molecular and morphometric evidence
FIGURE 3. Photograph of front and hind legs of Atelognathus salai (A-D) from Laguna de los Gendarmes and Atelognathus jeinimenensis (E–H) from Cerro Castillo and Chile Chico. A) Length of fingers is 3>4>2=1 (female, CENPAT-LASBA 96-28), B) Length of fingers is 3>4>1>2 (male, CENPAT-LASBA 96-29), C) and D) detail of foot with presence of dermal fringes (male CENPAT-LASBA 08-04, and female CENPAT-LASBA 08-08 respectively), E) Length of fingers is 3>4>2=1 (female from Cerro Castillo, MZUC 36405), F) Length of fingers is 3>4>1=2, (female from Cerro Castillo, MZUC 36771), G) and H) Detail of foot with presence of dermal fringes (female, MZUC 36772 and male MZUC 36580, both from Chile Chico).
FIGURE 25 in Molecular and morphological evidence for short range endemism in the Kinnecaris solitaria complex (Copepoda: Parastenocarididae), with descriptions of seven new species 3026
FIGURE 25. Distributional ranges (shaded areas) of all nine short range endemics from the genus Kinnecaris Jakobi, 1972 in the Yilgarn region: K. lakewayi sp. nov., K. barrambie sp. nov., K. sp., K. linesae sp. nov., K. uranusi sp. nov., K. lined sp. nov., K. linel sp. nov., K. esbe sp. nov., and K. solitaria (Karanovic, 2004). Pins show locations of some of the more prominent bores in the area, with bore names in white font. Map modified from Google Earth. Note that the only other Australian congener, K. eberhardi (Karanovic, 2005), is not a short range endemic, and lives almost 800 km south-west from the area shown on this map.
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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)
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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.