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Figure 8 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 8. Terminalia of A. anodontos: A aedeagus, ventral and lateral view B sternum VIII, female C spermatheca.
Figure 5 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 5. Terminalia of A. lateralis, male: A sternum VIII B spiculum gastrale C tegmen D aeadeagus, ventral and lateral view.
Figure 20 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 20. Inferred taxon-area cladogram for Apomotoderes, with Artipus floridanus representing the outgroup area.
Figure 4 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 4. Metendosternite and hind wing of A. lateralis: A metendosternite, posterior view B right hind wing.
Figure 3 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 3. Mouthparts of A. lateralis: A right maxilla, ventral view B labial prementum, ventral view.
Figure 2 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 2. Habitus of female type specimen of A. lateralis, located in the Naturhistoriska Riksmuseet, Stockholm, Sweden: A lateral view B head, thorax and prolegs, dorsal view C specimen label. Photographs taken by Johannes Bergsten.
Figure 9 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 9. Habitus of A. menocrater: A female, dorsal view B female, lateral view C male, head and pronotum, dorsal view, showing subfoveate punctures D female, declivity with patch of suberect setae, lateral view.
Figure 7 in Revision and phylogeny of the Caribbean weevil genus Apotomoderes Dejean, 1834 (Coleoptera, Curculionidae, Entiminae)
Figure 7. Habitus of A. anodontos, male: A dorsal view B lateral view C frontal view, showing unarmed profemora.
Fig. 2 in Molecular phylogeny of Blaberidae (Dictyoptera, Blattodea), with implications for taxonomy and evolutionary scenarios
Fig. 2. Conflicting results among different molecular markers. The phylogenetic relationships of four species are detailed for separate and combined analyses performed in Maximum Likelihood (ML) and Bayesian Inference (BI). Boxes colored as 'Untested or unresolved' refer to missing data and multifurcation, respectively.
Fig. 1 in Molecular phylogeny of Blaberidae (Dictyoptera, Blattodea), with implications for taxonomy and evolutionary scenarios
Fig. 1. [part 2 on next page] Optimal phylogenetic tree reconstructed in Maximum Likelihood with the combined dataset. Bootstrap values and posterior probabilities are reported for each node (bootstrap values below 25% are not displayed). The color of internal branches is proportional to bootstrap values. Geographic origin of the specimens sequenced is provided in brackets after the species names. In purple, monophyletic group congruent with morphological hypotheses; in blue, monophyletic group with geographic consistency at the continental level; in brown, incertae sedis species; in green, four species with conflicting and supported positions (Thanatophyllum akinetum Grandcolas, 1991 and Phoetalia pallida (Brunner von Wattenwyl, 1865) or congruent, but weakly supported positions (Laxta sp. and Pronauphoeta cf. viridula (Palisot de Beauvois, 1805)). The four latter species are discussed in the text (see also Fig. 2). The subfamilies indicated on the right of the tree are derived from traditional morphology-based classifications. Units for the branch length scale at the bottom right: number of expected substitutions per site.
Fig. 6 in Biodiversity and phylogeny of Ammotheidae (Arthropoda: Pycnogonida)
Fig. 6. Teratonotum stauromatum (Child, 1982) gen. et comb. nov. (MNHN-IU-2013-17964). A. Dorsal view. B. Propodus of third leg. C. Dorsal view of body. D. Ventral view of body. Abbreviations: ab = abdomen; ac = auxiliary claw; ch = chelifore; ct = chelifore tubercle on the anterior tip of the first scape; dt = dorsal tubercle; mc = main claw; ot = ocular tubercle; ov = oviger; pa = palp; pb = bulbous tubercle bearing the palp; pp = propodus; pr = proboscis; s = strigilis; t = tarsus. Scale bars: A = 0.5 mm; B = 0.1 mm; C–D = 0.2 mm.
Fig. 3 in Biodiversity and phylogeny of Ammotheidae (Arthropoda: Pycnogonida)
Fig. 3. Bayesian tree of Pycnogonida based on 179 sequences of the mitochondrial CO1 gene (partitioned analysis). Coloured rectangles show non-ammotheid families, and coloured branches discriminate ammotheid genera. The numbers at the nodes indicate posterior probabilities greater than 0.5. Symbols associated with each taxon name indicate the bias in base composition, as expressed by AT (circles) and CG (squares) skews (see main text for details): blue symbols represent a significant positive bias; red symbols indicate a significant negative bias; uncoloured symbols show insignificant values of skews. Asterisks after taxon names indicate holotype specimens. The arrow at the top of the tree shows the connection with Part 2 of the tree (see next page).
Appendix 2A in Biodiversity and phylogeny of Ammotheidae (Arthropoda: Pycnogonida)
Appendix 2A. Bayesian tree of Pycnogonida based on 135 CO1 sequences (un-partitioned analysis). Coloured rectangles show non-ammotheid families, and coloured branches discriminate ammotheid genera. The numbers at the nodes indicate the posterior probabilities superior to 0.5. Asterisks associated to taxon names indicate holotype specimens. Outgroups were removed for better readability.
Fig. 5 in Biodiversity and phylogeny of Ammotheidae (Arthropoda: Pycnogonida)
Fig. 5. Bayesian tree of Pycnogonida obtained from the concatenation of CO1 and 18S genes (135 taxa). Coloured rectangles show non- ammotheid families and coloured branches discriminate ammotheid genera. The numbers at the nodes indicate posterior probabilities greater than 0.5. Bold branches indicate CO1 (yellow), 18S (blue), or both (red) support in the independent analyses of CO1 and 18S genes provided in Appendix 1. Asterisks after taxon names indicate holotype specimens. Outgroups were removed for better readability.
Fig. 4 in Biodiversity and phylogeny of Ammotheidae (Arthropoda: Pycnogonida)
Fig. 4. Bayesian tree of Pycnogonida based on 159 sequences of the nuclear 18S rRNA gene. Coloured rectangles show non-ammotheid families and coloured branches discriminate ammotheid genera. The numbers at the nodes indicate posterior probabilities greater than 0.5. Asterisks after taxon names indicate holotype specimens. Outgroups were removed for better readability. The arrow at the top of the tree shows the connection with Part 2 of the tree (see next page).
Fig. 1 in Biodiversity and phylogeny of Ammotheidae (Arthropoda: Pycnogonida)
Fig. 1. Barcode richness in GenBank before and after this study. A–B. Number of CO1 haplotypes before (A) and after (B) this study as a function of the origins of the specimens sequenced. C. Number of species (grey) and genera (black) represented by a CO1 sequence found in GenBank databases before (left) and after (right) this study, classified by ecoregions. Littoral ecoregions defined according to Spalding et al. (2007) and abyssal ecoregions following a simplification of Bachraty et al. (2009).
Fig. 6 in Taxonomic revision and phylogeny of the Ophiocoma brevipes group (Echinodermata, Ophiuroidea), with description of a new subgenus (Breviturma) and a new species
Fig. 6. Holotype of Ophiocoma (Breviturma subgen. nov.) krohi sp. nov. (MNHN-IE-4300). A. Dorsal disc. B. Dorsal arm. C. Ventral arm, note the pattern on the arm spines. D. Ventral disc. E. Jaws.
Fig. 3 in Taxonomic revision and phylogeny of the Ophiocoma brevipes group (Echinodermata, Ophiuroidea), with description of a new subgenus (Breviturma) and a new species
Fig. 3. Ophiocoma (Breviturma subgen. nov.) doederleini de Loriol, 1899 (UF5318). SEM images. A. Dorsal disc. B. Dorsal arm. C. Dorsal disc granules. D. Jaws. E. Ventral arm. F. Radial shield, internal aspect, distal edge downwards. G. Oral plates (half-jaws), abradial aspect left, adradial right, proximal edge left. H. Dental plates, external aspect on left, internal on right (lower septum broken), dorsal upwards. I. Genital plates abradial left, adradial right, distal upwards. J. Arm vertebrae, proximal aspect left, distal right, dorsal upwards. K. Lateral arm plates, external aspect left, internal right, distal to the right. UF, Florida Museum of Natural History.
Fig. 1 in Taxonomic revision and phylogeny of the Ophiocoma brevipes group (Echinodermata, Ophiuroidea), with description of a new subgenus (Breviturma) and a new species
Fig. 1. Phylogenetic reconstruction of Ophiocoma (Breviturma) subgen. nov. (two species of the scolopendrina group as outgroup), estimated by maximum likelihood and neighbour-joining analysis of concatenated sequences of the mitochondrial cytochrome c oxidase subunit I and rDNA 16S (in total 1125 bp). Values at branches indicate bootstrap values for maximum likelihood (above branches) and neighbour-joining (below branches). Specimen codes are resolved in the Supplementary file.
Fig. 2 in Taxonomic revision and phylogeny of the Ophiocoma brevipes group (Echinodermata, Ophiuroidea), with description of a new subgenus (Breviturma) and a new species
Fig. 2. Colour variations in species of Ophiocoma (Breviturma) subgen. nov. A-C. Ophiocoma doederleini Rowe & Pawson, 1977. A. Reticulated specimen (UF5318). B. Close-up of annulated arm spines. C. Densely reticulated specimen (UF6518). D. Ophiocoma brevipes Peters, 1851 (SMNH- 133230). E-F. Ophiocoma dentata Müller & Troschel, 1842. E. Variegated specimen (SMNH-133232). F. Uniformly reddish brown specimen (URUN2009-11047). G-L. Ophiocoma krohi sp. nov. paratypes. G. With large patches (SMNH-Type-8533). H. Small irregular spots (MNHN-IE-4302). I. Star-shaped radiating pattern (SMNH-Type-8531). J. Densely mottled (MNHN-IE-4301). K. Uniformly dark brown (SMNH-Type-8536). L. Light brown, sparsely mottled (UF13938). For institution codes see main text.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.