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Figure 8 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 8 - Bayesian 50% majority rule consensus tree inferred employing COI mitochondrial gene partial sequence. The numbers above branches represent Bayesian posterior probabilities. The numbers between brackets symbolize specimens with identical haplotypes. Scale bar: expected changed per site.
Figure 7 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 7 - Anatomy of Pseudamnicola (Corrosella) hauffei sp. n. from Nogales spring, Benafer, Castellón, Spain. A, B Partial nervous system C Ctenidium and osphradium D Head of a male and penis E Prostate gland F Stomach G Female genitalia H Bursa copulatrix and seminal receptacle.
Figure 6 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 6 - Operculum and radula of Pseudamnicola (Corrosella) hauffei sp. n. from Nogales spring, Benafer, Castellón, Spain A Internal side of the operculum B External side of the operculum C Radula D Rows of teeth of the radula E Central tooth F External marginal teeth.
Figure 5 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 5 - Shells of Pseudamnicola (Corrosella) hauffei sp. n. A, D–G Shells from Nogales spring, Benafer, Castellón, Spain B Shell from San Miguel spring, Viver, Castellón, Spain C Shell from Agadín spring, Benafer, Castellón, Spain E–G Protoconch and microsculpture.
Figure 3 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 3 - Operculum and radula of Pseudamnicola (Corrosella) astieri from Source d'Argens, Brue-Aurillac, Var, France. A Internal side of the operculum B External side of the operculum C Radula D Rows of teeth of the radula E Central tooth F Lateral, internal and external marginal teeth.
Figure 2 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 2 - Shells of Pseudamnicola (Corrosella) astieri. A–E Shells from Source d'Argens, Brue-Aurillac, Var, France D–E Protoconch and detail of the microsculpture from the protoconch.
Figure 4 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 4 - Anatomy of Pseudamnicola (Corrosella) astieri from Source d'Argens, Brue-Aurillac, Var, France. A, B Partial nervous system C Ctenidium and osphradium D Head of a male and penis E Prostate gland F Stomach G Female genitalia H Bursa copulatrix and seminal receptacle.
Figure 1 from: Ramos M, Delicado D (2012) Morphological and molecular evidence for cryptic species of springsnails [genus Pseudamnicola (Corrosella) (Mollusca, Caenogastropoda, Hydrobiidae)]. ZooKeys 190: 55-79. https://doi.org/10.3897/zookeys.190.2555
Figure 1 - Map of localities of Pseudamnicola (Corrosella) astieri and Pseudamnicola (Corrosella) hauffei sp. n. A Photograph of Source d'Argens, Brue-Aurillac, Var, France B Preserved specimen of Pseudamnicola (Corrosella) astieri C Photograph of Nogales spring, Benafer, Castellón, Spain (type locality of Pseudamnicola (Corrosella) hauffei sp. n.) D Alive specimen of Pseudamnicola (Corrosella) hauffei sp. n. Scale bar in B and D represents 1 mm.
Figure 4 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 4 - Sclerites of Parasphaerasclera aurea comb. n., RMNH Coel. 40779. A Surface of polyparium B Interior of polyparium.
Figure 8 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 8 - Sclerites of Parasphaerasclera aff. grayi comb. n. RMNH Coel. 40920 A Surface layer of polyparium B Interior of polyparium.
Figure 7 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 7 - Sclerites of Parasphaerasclera valdiviae comb. n., RMNH Coel. 40206 A Surface layer of stalk B Interior of stalk.
Figure 6 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 6 - Sclerites of Parasphaerasclera valdiviae comb. n., RMNH Coel. 40206 A Surface layer of polyparium B Interior of polyparium.
Figure 5 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 5 - Sclerites of Parasphaerasclera aurea comb. n., RMNH Coel. 40779. A Surface of stalk B Interior of stalk.
Figure 3 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 3 - Sclerites of Sphaerasclera flammicerebra comb. n. ZMUC-ANT-000256. Sclerites of polyparium. A. Small radiates (left of 0.05 mm scale bar) B Larger radiates C Large tuberculate spheroids of colony surface and interior.
Figure 2 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 2 - Sclerites of Sphaerasclera flammicerebra comb. n. MNHN-IK-2012-12004. A–C Surface layer of polyparium A Small radiates (0.05 mm scale bar) B Larger radiates and two small spheroids C Large tuberculate spheroids D–F Interior of polyparium D Small radiates (0.05 mm scale bar) E Larger radiate and three small spheroids F Large tuberculate spheroids.
Figure 9 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 9 - Sclerites of Parasphaerasclera aff. grayi comb. n. RMNH Coel. 40920 A Surface layer of stalk B Interior of stalk.
Figure 1 from: McFadden C, van Ofwegen L (2013) Molecular phylogenetic evidence supports a new family of octocorals and a new genus of Alcyoniidae (Octocorallia, Alcyonacea). ZooKeys 346: 59-83. https://doi.org/10.3897/zookeys.346.6270
Figure 1 - Maximum likelihood tree of Octocorallia based on combined, partitioned analysis of mtMutS, COI and 28S rDNA sequences. Taxa belonging to family Alcyoniidae are shown in blue; new combinations proposed herein are shown in red. Solid circles at nodes indicate strong support from both maximum likelihood (bootstrap values >70%) and Bayesian inference (posterior probability > 0.95); open circles indicate moderate support (bootstrap values >50%, Bayesian pp > 0.95). Strongly supported clades that include no alcyoniid taxa have been collapsed to triangles to facilitate readability. HA: Holaxonia–Alcyoniina clade; CP: Calcaxonia–Pennatulacea clade. Hexacorallian taxa used as outgroups are not shown. For a list of all reference taxa and sequences included in the analysis see Appendix.
Figure 2 from: Taylan M, Di Russo C, Rampini M, Ketmaier V (2013) Molecular systematics of the genus Troglophilus (Rhaphidophoridae, Orthoptera) in Turkey: mitochondrial 16s rDNA evidences. ZooKeys 257: 33-46. https://doi.org/10.3897/zookeys.257.4133
Figure 2 - Bayesian phylogram among Troglophilus haplotypes from Turkey. Haplotype codes match those in Table 2. Numbers at nodes are statistical supports for the Bayesian and MP searches (first and second value, respectively); only values ≥ 75% are reported. The three supported clusters are described in the text are highlighted here in blue (clade 1), red (clade 2) and green (clade 3). Bold values are node ages (in Myr %) as obtained by the BEAST analyses; 95% HPD intervals are shown in parentheses.
Figure 1 from: Taylan M, Di Russo C, Rampini M, Ketmaier V (2013) Molecular systematics of the genus Troglophilus (Rhaphidophoridae, Orthoptera) in Turkey: mitochondrial 16s rDNA evidences. ZooKeys 257: 33-46. https://doi.org/10.3897/zookeys.257.4133
Figure 1 - Geographic position of the fifteen caves were we sampled the Troglophilus populations analyzed in the study. Numbers correspond to those in Table 1. The lower half of the figure depicts the phylogeography of Troglophilus in Turkey (for details see Discussion); colors of clades match those in Figure 2.
Figure 7 from: Alwan NH, Zareian H, Esmaeili HR (2016) Capoeta coadi, a new species of cyprinid fish from the Karun River drainage, Iran based on morphological and molecular evidences (Teleostei, Cyprinidae). ZooKeys 572: 155-180. https://doi.org/10.3897/zookeys.572.7377
Figure 7 - Bayesian tree inferred from COI. Numbers left of the slash, indicate the posterior probabilities of the Bayesian analysis, using MrBayes, while numbers right of the slash are the bootstrap support for 10,000 replicates in the Maximum Likelihood tree, using RaxML. Asterisks (*) indicate less than 50% Maximum Likelihood support and (-) indicates less than 0.50 Bayesian posterior probabilities for the node.
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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.