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821 results for “Molecular Systematics”
FIGURES 24–25 in Molecular systematics and morphological identification of the cryptic species of the genus Acalles Schoenherr, 1825, with descriptions of new species (Coleoptera: Curculionidae: Cryptorhynchinae)
FIGURES 24–25. Acallocrates minutesquamosus from Europe, habitus and aedeagus.
FIGURE 1 in Molecular systematics and morphological identification of the cryptic species of the genus Acalles Schoenherr, 1825, with descriptions of new species (Coleoptera: Curculionidae: Cryptorhynchinae)
FIGURE 1. Coloracalles edoughensis, habitus and aedeagus.
FIGURE 2 in Molecular systematics and morphological identification of the cryptic species of the genus Acalles Schoenherr, 1825, with descriptions of new species (Coleoptera: Curculionidae: Cryptorhynchinae)
FIGURE 2. Pseudodichromacalles xerampelinus, habitus and aedeagus.
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 3 from: Larraín J, Carter B, Shaw B, Hentschel J, Strozier LS, Furuki T, Heinrichs J, Crandall-Stotler B, Engel J, von Konrat M (2015) The resurrection of Neohattoria Kamim. (Jubulaceae, Marchantiophyta): a six decade systematic conflict resolved through a molecular perspective. PhytoKeys 50: 101-122. https://doi.org/10.3897/phytokeys.50.4940
Figure 3 - Neohattoria herzogii. A Habit, dorsal view B Habit, ventral view with distal lobules detached C Regenerant shoot originating from a detached lobule D Lobule E Underleaf F–K Leaves. All from Furuki 22673 (F). Scale bar: 350 µm (A, B), 200 µm (C), 180 µm (D), 300 µm (E), 150 µm (F–K).
Figure 1 from: Larraín J, Carter B, Shaw B, Hentschel J, Strozier LS, Furuki T, Heinrichs J, Crandall-Stotler B, Engel J, von Konrat M (2015) The resurrection of Neohattoria Kamim. (Jubulaceae, Marchantiophyta): a six decade systematic conflict resolved through a molecular perspective. PhytoKeys 50: 101-122. https://doi.org/10.3897/phytokeys.50.4940
Figure 1 - Maximum likelihood (ML) tree showing the systematic position of Neohattoria relative to the Jubulaceae, Frullaniaceae and Lejeuneaceae. Wide black branches indicate ML bootstrap support > 90 % and PP > 0.95.
Figure 2 from: Larraín J, Carter B, Shaw B, Hentschel J, Strozier LS, Furuki T, Heinrichs J, Crandall-Stotler B, Engel J, von Konrat M (2015) The resurrection of Neohattoria Kamim. (Jubulaceae, Marchantiophyta): a six decade systematic conflict resolved through a molecular perspective. PhytoKeys 50: 101-122. https://doi.org/10.3897/phytokeys.50.4940
Figure 2 - Maximum likelihood (ML) tree showing the systematic position of Neohattoria herzogii within the Jubulaceae. Only 1/2 of the length of the branch between the Frullaniaceae and the Lejeuneaceae/Jubulaceae clade is depicted. Wide black branches indicate ML bootstrap support > 90 % and PP > 0.95.
Figure 3 from: Jurado-Rivera JA, Petitpierre E (2015) New contributions to the molecular systematics and the evolution of host-plant associations in the genus Chrysolina (Coleoptera, Chrysomelidae, Chrysomelinae). In: Jolivet P, Santiago-Blay J, Schmitt M (Eds) Research on Chrysomelidae 5. ZooKeys 547: 165–192. https://doi.org/10.3897/zookeys.547.6018
Figure 3 - Ancestral reconstruction of host plant affiliations in the studied species of Chrysolina and Oreina. Terminal taxa are coded according to the available host plants records from the literature (Table 1). Pie charts at selected nodes show probabilities of each state from the Bayesian analysis in BayesTraits. Clades mentioned in the text are highlighted.
Figure 2 from: Jurado-Rivera JA, Petitpierre E (2015) New contributions to the molecular systematics and the evolution of host-plant associations in the genus Chrysolina (Coleoptera, Chrysomelidae, Chrysomelinae). In: Jolivet P, Santiago-Blay J, Schmitt M (Eds) Research on Chrysomelidae 5. ZooKeys 547: 165–192. https://doi.org/10.3897/zookeys.547.6018
Figure 2 - Maximum likelihood phylogenetic tree obtained from the combined analysis of cox1, rrnL and H3. Node numbers represent bootstrap support values. Only support values higher than 0.7 are shown. Numbers accompanying the subgeneric classification of the Chrysolina species on the right correspond to the systematic groups defined by Bourdonné and Doguet (1991). Clades mentioned in the text are highlighted.
Figure 1 from: Jurado-Rivera JA, Petitpierre E (2015) New contributions to the molecular systematics and the evolution of host-plant associations in the genus Chrysolina (Coleoptera, Chrysomelidae, Chrysomelinae). In: Jolivet P, Santiago-Blay J, Schmitt M (Eds) Research on Chrysomelidae 5. ZooKeys 547: 165–192. https://doi.org/10.3897/zookeys.547.6018
Figure 1 - Bayesian phylogenetic tree obtained from the combined analysis of cox1, rrnL and H3. Node numbers represent Bayesian posterior probability values. Only support values higher than 0.9 are shown. Numbers accompanying the subgeneric classification of the Chrysolina species on the right correspond to the systematic groups defined by Bourdonné and Doguet (1991). Clades mentioned in the text are highlighted.
Figure 1 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 1 - Phylogenetic tree derived from a partitioned Maximum Likelihood analysis of the combined data set. The nodal numbers are ML bootstrap values and Bayesian posterior probabilities, respectively. Only values above 50% are given.
Figure 2 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 2 - Ventral view of the mouth morphology. A Pseudogyrinocheilus longisulcus B Pseudogyrinocheilus prochilus C Cophecheilus bamen.
Figure 4 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 4 - Ventral view of the mouth morphology. A Hongshuia megalophthalmus B Discogobio brachyphysallidos C Discocheilus wuluoheensis.
Figure 3 from: Zheng L-P, Chen X-Y, Yang J-X (2016) Molecular systematics of the Labeonini inhabiting the karst regions in southwest China (Teleostei, Cypriniformes). ZooKeys 612: 133-148. https://doi.org/10.3897/zookeys.612.9085
Figure 3 - Ventral view of the mouth morphology. A Stenorynchoacrum xijiangensis B Rectoris posehensis.
FIGURE 1 in Raising Thalictrum uncatum var. angustialatum (Ranunculaceae) from China to T. angustialatum as an independent species based on evidence from morphology, geographical distribution, cytology and molecular systematics
FIGURE 1. Holotype (A) and isotype (B, C) sheets of Thalictrum angustialatum.
Supplementary material 3 from: Mirza ZA, H. T. Lalremsanga, Bhosale H, Gowande G, Patel H, Idiatullina SS, Poyarkov NA (2023) Systematics of Trimeresurus popeiorum Smith, 1937 with a revised molecular phylogeny of Asian pitvipers of the genus Trimeresurus Lacépède, 1804 sensu lato. Evolutionary Systematics 7(1): 91-104. https://doi.org/10.3897/evolsyst.7.97026
ML phylogeny of Asian pit vipers based on cyt b gene
Supplementary material 2 from: Mirza ZA, H. T. Lalremsanga, Bhosale H, Gowande G, Patel H, Idiatullina SS, Poyarkov NA (2023) Systematics of Trimeresurus popeiorum Smith, 1937 with a revised molecular phylogeny of Asian pitvipers of the genus Trimeresurus Lacépède, 1804 sensu lato. Evolutionary Systematics 7(1): 91-104. https://doi.org/10.3897/evolsyst.7.97026
Uncorrected sequence divergence for cyt b gene for selected pit vipers
Supplementary material 1 from: Mirza ZA, H. T. Lalremsanga, Bhosale H, Gowande G, Patel H, Idiatullina SS, Poyarkov NA (2023) Systematics of Trimeresurus popeiorum Smith, 1937 with a revised molecular phylogeny of Asian pitvipers of the genus Trimeresurus Lacépède, 1804 sensu lato. Evolutionary Systematics 7(1): 91-104. https://doi.org/10.3897/evolsyst.7.97026
Accession numbers for sequences used in the study and sequence evolution model
Supplementary material 4 from: Mirza ZA, H. T. Lalremsanga, Bhosale H, Gowande G, Patel H, Idiatullina SS, Poyarkov NA (2023) Systematics of Trimeresurus popeiorum Smith, 1937 with a revised molecular phylogeny of Asian pitvipers of the genus Trimeresurus Lacépède, 1804 sensu lato. Evolutionary Systematics 7(1): 91-104. https://doi.org/10.3897/evolsyst.7.97026
ML phylogeny for selected Asian pit vipers based on 16S rRNA
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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.