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1,751 results for “molecular phylogenetics”
FIGURE 1 in Kakadudessus tomweiri, a new genus and species of diving beetle from tropical northern Australia, based on molecular phylogenetic and morphological data (Coleoptera, Dytiscidae, Bidessini)
FIGURE 1. Kakadudessus tomweiri sp.n., habitus of paratype, total length 2.2 mm, drawing by D. Paramonov, Riga, Latvia.
FIGURE 7 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 7. Molecular phylogeny of the Phelsuma lineata group (clade J), the P. laticauda group (clade K) and P. klemmeri as calculated from the multi-gene dataset of Rocha et al. (2009). Shown are the respective clades from the Bayesian 50% majority-rule consensus trees based on (a) the combined dataset of mitochondrial and nuclear genes, (b) the mitochondrial genes only, and (c) the nuclear genes only. See caption to Fig. 2 for further explanations.
FIGURE 8 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 8. BI tree of available sequences of a fragment of the 16S rRNA gene in specimens of the Phelsuma lineata group. Branches in bold are supported by PP values of 100; other relevant PP values above 50 are given as numbers.
FIGURE 6 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 6. BI tree of available sequences of a fragment of the 16S rRNA gene in specimens of the Phelsuma madagascariensis group. Branches in bold are supported by PP values of 100; other relevant PP values above 50 are given as numbers.
FIGURE 5 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 5. Molecular phylogeny of the Phelsuma astriata group (clade H) the P. madagascariensis group, and P. vanheygeni as calculated from the multi-gene dataset of Rocha et al. (2009). Shown are the respective clades from the Bayesian 50% majority-rule consensus trees based on (a) the combined dataset of mitochondrial and nuclear genes, (b) the mitochondrial genes only, and (c) the nuclear genes only. See caption to Fig. 2 for further explanations.
FIGURE 9 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 9. Holotypes of (a) Phelsuma dorsivittata (SMF 59373) and (b) Phelsuma parva (ZFMK 19315) in dorsal and ventral view, as photographed in August 2009. Scale bars represent 10 mm.
FIGURE 4 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 4. Molecular phylogeny of the Phelsuma cepediana group as calculated from the multi-gene dataset of Rocha et al. (2009). Shown are the respective clades from the Bayesian 50% majority-rule consensus trees based on (a) the combined dataset of mitochondrial and nuclear genes, (b) the mitochondrial genes only, and (c) the nuclear genes only. See caption to Fig. 2 for further explanations.
FIGURE 3 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 3. Molecular phylogeny of the Phelsuma mutabilis group as calculated from the multi-gene dataset of Rocha et al. (2009). Shown are the respective clades from the Bayesian 50% majority-rule consensus trees based on (a) the combined dataset of mitochondrial and nuclear genes, (b) the mitochondrial genes only, and (c) the nuclear genes only. See caption to Fig. 2 for further explanations.
FIGURE 2 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 2. Molecular phylogeny of the Phelsuma dubia group as calculated from the multi-gene dataset of Rocha et al. (2009). Shown are the respective clades from the Bayesian 50% majority-rule consensus trees based on (a) the combined dataset of mitochondrial and nuclear genes, (b) the mitochondrial genes only, and (c) the nuclear genes only. Asterisks mark nodes supported by Bayesian posterior probabilities of 99% or higher. ML bootstraps supports above 50 are given below the corresponding branch. Relevant PP values above 95 are given above respective branches (italics). Clade numbers M and O are as in Rocha et al. (2009) and discussed in the text.
FIGURE 1 in Phylogenetic systematics of day geckos, genus Phelsuma, based on molecular and morphological data (Squamata: Gekkonidae)
FIGURE 1. Schematic cladogram summarizing phylogenetic relationships of species groups proposed herein, species contained in each group, and characters useful for their phenotypic characterization. The tree is adapted from Rocha et al. (2009) and represents the BI 50% majority-rule consensus tree of combined mitochondrial and nuclear data. Species groups containing more that one species are colour coded.
FIGURE 7 in Molecular phylogenetic relationships of the Liolaemus rothi complex and a new species of lizard from Auca Mahuida Volcano (Squamata: Liolaemini)
FIGURE 7. Type locality of Liolaemus sitesi. Upper: general view of the area. Below: close view of the common outcrops where lizards were collected.
FIGURE 6 in Molecular phylogenetic relationships of the Liolaemus rothi complex and a new species of lizard from Auca Mahuida Volcano (Squamata: Liolaemini)
FIGURE 6. Map of northwestern Neuquén province showing the complex landscape of northern Patagonian Andes. Red dot marks the Liolaemus sitesi type locality. Red circle mark approximate distribution of Liolaemus sitesi on the slopes of Auca Mahuida Volcano; main mountain ranges, cities, and roads are also marked. Yellow outline: approximate boundaries of the Auca Mahuida Volcanic Field. Inset: Region in South América.
FIGURE 5 in Molecular phylogenetic relationships of the Liolaemus rothi complex and a new species of lizard from Auca Mahuida Volcano (Squamata: Liolaemini)
FIGURE 5. Liolaemus sitesi sp. nov., variation in color pattern of individuals of the type series. Dorsal and ventral view of males (upper) and females (below).
FIGURE 4 in Molecular phylogenetic relationships of the Liolaemus rothi complex and a new species of lizard from Auca Mahuida Volcano (Squamata: Liolaemini)
FIGURE 4. Liolaemus sitesi sp. nov., paratype LJAMM-CNP 13382, adult female in dorsal view; type locality details given in Fig. 2 caption.
FIGURE 3 in Molecular phylogenetic relationships of the Liolaemus rothi complex and a new species of lizard from Auca Mahuida Volcano (Squamata: Liolaemini)
FIGURE 3. Liolaemus sitesi sp. nov., holotype adult male in dorsal and ventral view (MLP.S 2637); type locality details given in Fig. 2 caption.
FIGURE 1 in Molecular phylogenetic relationships of the Liolaemus rothi complex and a new species of lizard from Auca Mahuida Volcano (Squamata: Liolaemini)
FIGURE 1. Phylogenetic relationships of described species of the Liolaemus rothi complex and other related species of the boulengeri complex and representatives of the fitzingerii and donosobarrosi groups. Numbers on nodes correspond to posterior probabilities.
FIGURE 2 in Molecular phylogenetic relationships of the Liolaemus rothi complex and a new species of lizard from Auca Mahuida Volcano (Squamata: Liolaemini)
FIGURE 2. Liolaemus sitesi sp. nov. Above: holotype MLP.S 2637, adult male from Park Ranger Post, 25.9 km S junction Provincial Road 6, Auca Mahuida Natural Protected Area, Pehuenches Department, Neuquén Province, Argentina. Below: unidentified paratype, adult male with typical dorsal coloration at full sun.
FIGURE 8. Molecular phylogenetic hypotheses for relationship among Bachia species including B in A new species of Bachia Gray, 1845 (Squamata: Gymnophthalmidae) from the western Brazilian Amazonia
FIGURE 8. Molecular phylogenetic hypotheses for relationship among Bachia species including B. scaea sp. nov. (highlighted in red), based (A) on the concatenate matrix, (B) on the 16S mitochondrial gene and (C) c-mos nuclear gene cmos). Values on nodes are Bayesian posterior probabilities and Maximum Likelihood bootstraps, respectively. Scale bar indicates substitution per site.
FIGURE 13. Phylogenetic tree inferred from a in Validation of the taxon Ixodes aragaoi Fonseca (Acari: Ixodidae) based on morphological and molecular data
FIGURE 13. Phylogenetic tree inferred from a partial sequence (435 characters, 113 parsimony informative) of the 16S rRNA mitochondrial gene of 12 tick species of the Ixodes ricinus complex, using I. nipponensis as outgroup. Numbers at nodes are the support values for the major branches (bootstrap) derived from 500 replicates for maximum parsimony. Number within brackets are GenBank accession numbers.
FIGURE 1 in Wallacellus is Euwallacea: molecular phylogenetics settles generic relationships (Coleoptera: Curculionidae: Scolytinae: Xyleborini)
FIGURE 1. Bayesian phylogenetic reconstruction of Xyleborini with focus on Euwallacea, Ambrosiodmus, Xyleborus sensu stricto and the former Wallacellus. Numbers refer to Bayesian support (percentage of post-burnin trees in which the node occurs); nodes with less than 95% consensus support have been collapsed. Inset is a dorsal view of Euwallacea posticus. Note the subquadrate pronotum and the elevated posterolateral margins of declivity.
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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
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