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2,620 results for “Molecular Phylogeny”
Figure 3 from: Tomikawa K, Nakano T, Sato A, Onodera S, Ohtaka A (2016) A molecular phylogeny of Pseudocrangonyx from Japan, including a new subterranean species (Crustacea, Amphipoda, Pseudocrangonyctidae). Zoosystematics and Evolution 92(2): 187-202. https://doi.org/10.3897/zse.92.10176
Figure 3 - Pseudocrangonyx gudariensis Tomikawa & Sato, sp. n., holotype, male (3.9 mm), NSMT-Cr 24603. A antenna 1, medial view; B antenna 2, medial view; C upper lip, anterior view; D lower lip, ventral view; E left mandible, medial view; F right mandible, medial view; G maxilla 1, dorsal view; H maxilla 2, dorsal view.
Figure 5 from: Tomikawa K, Nakano T, Sato A, Onodera S, Ohtaka A (2016) A molecular phylogeny of Pseudocrangonyx from Japan, including a new subterranean species (Crustacea, Amphipoda, Pseudocrangonyctidae). Zoosystematics and Evolution 92(2): 187-202. https://doi.org/10.3897/zse.92.10176
Figure 5 - Pseudocrangonyx gudariensis Tomikawa & Sato, sp. n., holotype, male (3.9 mm), NSMT-Cr 24603. A pereopod 3, lateral view; B pereopod 4, lateral view; C pereopod 5, lateral view; D dactylus of pereopod 5, lateral view.
Figure 10 from: Tomikawa K, Nakano T, Sato A, Onodera S, Ohtaka A (2016) A molecular phylogeny of Pseudocrangonyx from Japan, including a new subterranean species (Crustacea, Amphipoda, Pseudocrangonyctidae). Zoosystematics and Evolution 92(2): 187-202. https://doi.org/10.3897/zse.92.10176
Figure 10 - Bayesian inference tree for 2,397 bp of nuclear 28S rRNA plus histone H3 and mitochondrial COI and 16S rRNA markers, with the map modified from Fig. 1. Numbers on nodes represent bootstrap values for maximum likelihood and Bayesian posterior probabilities. Specimen numbers are also shown in Fig. 1 and Table 1.
Figure 2 from: Tomikawa K, Nakano T, Sato A, Onodera S, Ohtaka A (2016) A molecular phylogeny of Pseudocrangonyx from Japan, including a new subterranean species (Crustacea, Amphipoda, Pseudocrangonyctidae). Zoosystematics and Evolution 92(2): 187-202. https://doi.org/10.3897/zse.92.10176
Figure 2 - Pseudocrangonyx gudariensis Tomikawa & Sato, sp. n., holotype, male (3.9 mm), NSMT-Cr 24603. Habitus, lateral view.
Figure 4 from: Huang Z-F, Fei W, Wang M, Chiba H, Fan X-L (2016) A preliminary molecular phylogeny of the genus Scobura, with a synonym of Scobura masutaroi (Lepidoptera, Hesperiidae). ZooKeys 638: 33-44. https://doi.org/10.3897/zookeys.638.10026
Figure 4 - Male genitalia of Scobura masutaroi Sugiyama, 1996. (Sichuan). A Genitalia ring, lateral view; B aedeagus and juxta. C valva, inner view; D tegument, dorsal view.
Figure 1 from: Huang Z-F, Fei W, Wang M, Chiba H, Fan X-L (2016) A preliminary molecular phylogeny of the genus Scobura, with a synonym of Scobura masutaroi (Lepidoptera, Hesperiidae). ZooKeys 638: 33-44. https://doi.org/10.3897/zookeys.638.10026
Figure 1 - Majority-rule consensus tree from the Bayesian analysis (BI) of the concatenated COI and EF-1α sequences. Values at nodes represent the bootstrap support (BS) values of the maximum likelihood (ML) and the posterior probabilities (PP) of BI analyses, respectively (BP/PP).
FIGURE 127 in Revision of the Genus Leptogomphus Selys in Borneo, including gene trees and a two marker molecular phylogeny (Odonata: Anisoptera: Gomphidae)
FIGURE 127. Distribution of L. pasia (white circle) and L. sii (black square).
FIGURE 129 in Revision of the Genus Leptogomphus Selys in Borneo, including gene trees and a two marker molecular phylogeny (Odonata: Anisoptera: Gomphidae)
FIGURE 129. Distribution of L. williamsoni (black square) and L. sp. cf williamsoni (red triangle).
Figure 5 from: Kise H, Fujii T, Masucci GD, Biondi P, Reimer JD (2017) Three new species and the molecular phylogeny of Antipathozoanthus from the Indo-Pacific Ocean (Anthozoa, Hexacorallia, Zoantharia). ZooKeys 725: 97-122. https://doi.org/10.3897/zookeys.725.21006
Figure 5 Maximum likelihood (ML) tree based on concatenated alignments of 16S-rDNA, COI and ITS-rDNA. Numbers on nodes represent ML bootstrap values (> 50% are shown). Bold branches indicate high supports of Bayesian posterior probabilities (> 0.95).
Figure 2 from: Kise H, Fujii T, Masucci GD, Biondi P, Reimer JD (2017) Three new species and the molecular phylogeny of Antipathozoanthus from the Indo-Pacific Ocean (Anthozoa, Hexacorallia, Zoantharia). ZooKeys 725: 97-122. https://doi.org/10.3897/zookeys.725.21006
Figure 2 Polyp images of Antipathozoanthus obscurus sp. n., A. remengesaui sp. n. and A. cavernus sp. n. in situ. a A. obscurus sp. n. . NSMT-Co1602 (MISE-BISE1), Collected from Cape Bise, Motobu, Okinawa-jima Island, Japan (26°42'34.4"N, 127°52'49.2"E) at a depth of 5 m by JDR, 14 August 2014. b A. obscurus sp. n., closed polyp with heavy encrustion by various fine sand particles. MISE-TF54, collected from Cape Zanpa, Yomitan, Okinawa-jima Island, Japan (26°26'26.5"N, 127°42'43.7"E) at a depth of 3 m by TF, 6 April 2009. c A. remengesaui sp. n., colony connected by poorly developed coenenchyme with white polyps on Antipathes sp. NSMT-Co1603 (MISE-PALAU2) collected from Blue Hole, Palau (7°8'29.4"N, 134°13'23.3"E) at a depth of 23 m by JDR, 15 September 2014 d A. cavernus sp. n., polyp connected by highly developed coenenchyme with orange ring around oral disk. RMNH.Coel.42322 (MISE-PALAU5) collected from Siaes Tunnel, Palau (7°18'54.8"N, 134°13'13.3"E) at a depth of 39 m by JDR, 1 September 2014.
Figure 1 from: Kise H, Fujii T, Masucci GD, Biondi P, Reimer JD (2017) Three new species and the molecular phylogeny of Antipathozoanthus from the Indo-Pacific Ocean (Anthozoa, Hexacorallia, Zoantharia). ZooKeys 725: 97-122. https://doi.org/10.3897/zookeys.725.21006
Figure 1 Sampling location in the Indian Ocean and Pacific Ocean of specimens used in this study. Location of specimens collected in this study represented by closed symbols. Species abbreviations after locations: (Ao) Antipathozoanthus obscurus sp. n.; (Ar) A. remengesaui sp. n.; (Ac) A. cavernus sp. n.
Figure 4 from: Kise H, Fujii T, Masucci GD, Biondi P, Reimer JD (2017) Three new species and the molecular phylogeny of Antipathozoanthus from the Indo-Pacific Ocean (Anthozoa, Hexacorallia, Zoantharia). ZooKeys 725: 97-122. https://doi.org/10.3897/zookeys.725.21006
Figure 4 Images of histological section of Antipathozoanthus species. a longitudinal section of A. remengesaui sp. n. b longitudinal section of A. cavernus sp. n.. Abbreviations: (CEMM) cteniform endodermal marginal muscle, (OD) oral disk, (A) actinopharynx. Scale bars: a 200 µm, b 50 µm.
Figure 3 from: Kise H, Fujii T, Masucci GD, Biondi P, Reimer JD (2017) Three new species and the molecular phylogeny of Antipathozoanthus from the Indo-Pacific Ocean (Anthozoa, Hexacorallia, Zoantharia). ZooKeys 725: 97-122. https://doi.org/10.3897/zookeys.725.21006
Figure 3 Cnidae in the tentacles, column, pharynx, and filament of Antipathozoanthus obscurus sp. n., A. remengesaui sp. n. and A. cavernus sp. n., respectively. Abbreviations: (HL) holotrich large, (HM) holotrich medium, (O) bastrichs or mastigophores, (S) spriocysts.
Supplementary material 1 from: Xu K-W, Han Y-T, Dong Y-R, Guo J-Q, Mao L-F, Liao W-B (2024) Asplenium guodanum (Aspleniaceae), a distinct new fern species from northern Guangdong, China, based on morphological data and molecular phylogeny. PhytoKeys 241: 191-200. https://doi.org/10.3897/phytokeys.241.122789
List of voucher specimens and Genbank accession numbers used in phylogenetic analyses
Figure 3 from: Xu K-W, Han Y-T, Dong Y-R, Guo J-Q, Mao L-F, Liao W-B (2024) Asplenium guodanum (Aspleniaceae), a distinct new fern species from northern Guangdong, China, based on morphological data and molecular phylogeny. PhytoKeys 241: 191-200. https://doi.org/10.3897/phytokeys.241.122789
Figure 3 Maximum Likelihood phylogeny of the Asplenium bullatum clade, based on six plastid markers (atpB, rbcL, rps4 & rps4-trnS and trnL & trnL-F). The numbers associated with branches are Maximum Likelihood bootstrap support (MLBS) and Bayesian Posterior Probability (BIPP). The asterisk indicates MLBS = 100 or BIPP = 1.00.
Figure 1 from: Xu K-W, Han Y-T, Dong Y-R, Guo J-Q, Mao L-F, Liao W-B (2024) Asplenium guodanum (Aspleniaceae), a distinct new fern species from northern Guangdong, China, based on morphological data and molecular phylogeny. PhytoKeys 241: 191-200. https://doi.org/10.3897/phytokeys.241.122789
Figure 1 Macromorphology of Asplenium guodanum sp. nov. A habitat B habit C abaxial lamina D frond E adaxial lamina F rachis G abaxial view of pinna H adaxial view of pinna I reduced pinna base J scales at base stipe K rhizome L fiddlehead.
Figure 6 in A new classification of Callianassidae and related families (Crustacea: Decapoda: Axiidea) derived from a molecular phylogeny with morphological support
Figure 6. Diagnostic characters for genera of Callianassidae. Anterior carapace, eyestalks, antennules, antennae: a, Aqaballianassa; b, Arenallianassa; c, Caviallianassa; d, Coriollianassa; e, f, Filhollianassa; g, Jocullianassa; h, Notiax i, Praedatrypaea; j, Pugnatrypaea; k, l, Rayllianassa; m, Rudisullianassa; n, Trypaea. Mandible, mesial and lower views: o, Callianassa; p, Rayllianassa. Original illustrations: a, Aqaballianassa lewtonae, MNHN-IU-2016-8152; c, Caviallianassa FP-11, UF 29204; j, Pugnatrypaea GMX, USNM 1559553 (ULLZ 17962); o, Callianassa subterranea, NMV J16779; p, Rayllianassa amboinensis, MNHN-IU-2014-2778.
Fig. 1 in Integrative Studies on the Morphology, Morphogenesis and Molecular Phylogeny of a Soil Ciliate, Parakahliella macrostoma (Foissner, 1982) Berger et al., 1985 (Ciliophora, Hypotrichia)
Fig. 1. Sample sites and surrounding areas. (A) Map showing the locations of Maqu and Gulang, Gansu Province. (B) Location where Parakahliella macrostoma pop.1 was collected and surrounding areas. (C–E) Location where Parakahliella macrostoma pop.2 was collected and surrounding areas.
Figure 3 in Morphology, molecular phylogeny and biomass evaluation of Desmodesmus abundans (Scenedesmaceae-Chlorophyceae) from Brazil
Figure 3. Morphology of D. abundans LGMM0013 by optical microscopy (A-C) and scanning electron microscopy (D-F). From A to C scale bar (black) equivalent to 10 Μm. A: single cell. B: Coenobium with two cells. C: Coenobium with four cells. From D to F scale bar equivalent to 5 Μm. D: Single-cell, presence of spines and tubes. E: Coenobium with two cells, presence of thorns. F: Coenobium with four cells, presence of spines and tubes. Black arrow: chimney-like rosettes; white arrow: longitudinal ridges.
Fig. 1 in Molecular phylogeny of the endemic fern genera Cyrtomidictyum and Cyrtogonellum (Dryopteridaceae) from East Asia
Fig. 1 Geographical distribution of Cyrtomidictyum (triangles) and Cyrtogonellum (circles)
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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
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.