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FIGURE 4 in Charinus rocamadre (Amblypygi, Charinidae): description of the female, ultrastructure of the male and female gonopods, and mitochondrial DNA sequences
FIGURE 4. Charinus rocamadre (female in lot ICN-Am-159, same specimen of figure 1). A. Female gonopods, B. Detail of gonopod, C. Detail of fluted and porous surface of the gonopod, D. Detail of flap-like soft projection, E. Detail of smooth and porous surface of the flap-like projection, F. Detail of atrium showing glandular openings. Scale bars: A=100 μm, B=20 μm, C=1 μm, D=10 μm, E=1 μm, F=5 μm.
FIGURE 2 in Charinus rocamadre (Amblypygi, Charinidae): description of the female, ultrastructure of the male and female gonopods, and mitochondrial DNA sequences
FIGURE 2. Charinus rocamadre (female in lot ICN-Am-159, same specimen of figure 1). A. Right chelicera (inner view), B. Detail of chelicera showing internal teeth and denticles, C. Right chelicera (outer view), D. Detail of chelicerae showing denti- form relief. Scale bars: A & C=1 mm, B & D=0.5 mm.
FIGURE 6 in Charinus rocamadre (Amblypygi, Charinidae): description of the female, ultrastructure of the male and female gonopods, and mitochondrial DNA sequences
FIGURE 6. Charinus rocamadre (male in lot ICN-Am-159, same specimen of figure 5). A. Male gonopods in ventral view, B. Male gonopods in apical view, C. Processus internus (PI), D. Detail of basal part of PI, E. Lamina medialis (LaM), F. Detail of outer surface of LaM, G. Detail of inner surface of LaM, H. Detail of lobus lateralis primus (LoL1) and lobus lateralis secundus (LoL2) in apical view. LoD: Lobus dorsalis. Fi: Fistula. GO: Genital operculum. Scale bars: A=100 μm, B=100 μm, C=20 μm, D=4 μm, E=20 μm, F=4 μm, G=2 μm, H=20 μm.
FIGURE 3 in Charinus rocamadre (Amblypygi, Charinidae): description of the female, ultrastructure of the male and female gonopods, and mitochondrial DNA sequences
FIGURE 3. Charinus rocamadre (female in lot ICN-Am-159, same specimen of figure 1). A. Trochanter and femur in ventral view, B. Trochanter and femur in dorsal view, C. Patella, tibia, distitarsus, and claw in ventral view, D. Patella, tibia, distitarsus, and claw in dorsal view, E. Leg I, detail of the last tibial articles and first tarsal articles, F. Detail of second segment of tarsus showing the subdistal part with white ring, G. Leg IV, basitibia III and distitibia showing trichobothriotaxy. Scale bars: A–E, G=1 mm, F=0.5 mm.
FIGURE 1 in Charinus rocamadre (Amblypygi, Charinidae): description of the female, ultrastructure of the male and female gonopods, and mitochondrial DNA sequences
FIGURE 1. Charinus rocamadre (female in lot ICN-Am-159). A. Dorsal habitus, B. Carapace, C. Anterior area of carapace, D. Sternum, and E. Detail of the sternites. Scale bars: A=2 mm, B–E=1 mm.
APPENDIX. GenBank accession numbers of all DNA sequences of Cophyla used in this study. NA, not applicable. Asterisks mark cases where sequences from different samples were combined to chimeric terminals for analysis. in Description of the lucky Cophyla (Microhylidae, Cophylinae), a new arboreal frog from Marojejy National Park in north-eastern Madagascar
APPENDIX. GenBank accession numbers of all DNA sequences of Cophyla used in this study. NA, not applicable. Asterisks mark cases where sequences from different samples were combined to chimeric terminals for analysis.
FIGURE 7. Sparsorythus multilabeculatus, 7a in Description of nymphs and female subimago of Sparsorythus multilabeculatus Sroka & Soldán, 2008 (Ephemeroptera: Tricorythidae) associated with male imago based on DNA sequence data
FIGURE 7. Sparsorythus multilabeculatus, 7a. foreleg; 7b. midleg; 7c. hindleg; 7d. female cerci and paracercus; 7e. segment of female cerci; 7f. male cerci and paracercus; 7g. segment of female cerci. Scale bars: 0.5 mm (7a–7c); 0.1 mm (7d, 7f); 0.02 mm (7e, 7g).
FIGURE 2 in Description of nymphs and female subimago of Sparsorythus multilabeculatus Sroka & Soldán, 2008 (Ephemeroptera: Tricorythidae) associated with male imago based on DNA sequence data
FIGURE 2. Wang Tao waterfall, Thap Lan National Park, Khon Buri District, Nakhon Ratchasima Province, Thailand, where the specimens of Sparsorythus multilabeculatus were collected.
Fig. 1 in Allopolyploid origin of the Balkan endemic Ranunculus wettsteinii (Ranunculaceae) inferred from nuclear and plastid DNA sequences
Fig. 1 Phylogenetic tree for Ranunculus species based on internal transcribed spacer (ITS) sequences. a Consensus tree inferred from the six most parsimonious trees (CI=0.72; RI=0.93). Numbers above branches show bootstrap values (3,000 replicates). b Majority-rule consensus of
FIGURE 6. T in Molecular phylogenetic and historical biogeographical relationships of Laudakia (Squamata: Agamidae) and intraspecific differentiation of L. stoliczkana inferred from mitochondrial DNA sequences
FIGURE 6. T-test results for morphological indicators. (F = females, M = males, N = northern Xinjiang, S = south Xinjiang)
FIGURE 5 in Molecular phylogenetic and historical biogeographical relationships of Laudakia (Squamata: Agamidae) and intraspecific differentiation of L. stoliczkana inferred from mitochondrial DNA sequences
FIGURE 5. The morphology and tail of Laudakia stoliczkana subspecies. (A & a: L. s. altaica; B & b: L. s. stoliczkana)
FIGURE 4 in Molecular phylogenetic and historical biogeographical relationships of Laudakia (Squamata: Agamidae) and intraspecific differentiation of L. stoliczkana inferred from mitochondrial DNA sequences
FIGURE 4. The estimation of divergence time for Laudakia. (Note: Values are estimated divergence times, and the blue bars are 95% confidence intervals HPD)
FIGURE 3 in Molecular phylogenetic and historical biogeographical relationships of Laudakia (Squamata: Agamidae) and intraspecific differentiation of L. stoliczkana inferred from mitochondrial DNA sequences
FIGURE 3. Bayesian phylogenetic trees of Laudakia species on tandem sequences (CO1 and 16S). (note: the values of nodes near is BPP/BS).
FIGURE 2 in Molecular phylogenetic and historical biogeographical relationships of Laudakia (Squamata: Agamidae) and intraspecific differentiation of L. stoliczkana inferred from mitochondrial DNA sequences
FIGURE 2. Bayesian phylogenetic trees of Laudakia on the sequenced of COI. (note: the values of nodes near is BPP/BS).
FIGURE 1 in Molecular phylogenetic and historical biogeographical relationships of Laudakia (Squamata: Agamidae) and intraspecific differentiation of L. stoliczkana inferred from mitochondrial DNA sequences
FIGURE 1. Bayesian phylogenetic trees of Laudakia on the sequenced of 16S. (note: the values of nodes near is BPP/BS).
FIGURE 2 in Is Ronnbergia (Bromeliaceae, Bromelioideae) a geographically disjunct genus? Evidence from morphology and chloroplast DNA sequence data
FIGURE 2. Majority rule consensus tree from the BI analysis of the "total evidence" dataset from morphological and molecular data. Black lines represent the branches that remained identical in the strict consensus tree of the MP analysis. Grey lines represent branches obtained only in the BI analysis. Numbers in the nodes correspond to posterior probabilities and bootstrap values (PP/BT); dashes (-) represent low (<50%) or no BT support.
FIGURE 1 in Is Ronnbergia (Bromeliaceae, Bromelioideae) a geographically disjunct genus? Evidence from morphology and chloroplast DNA sequence data
FIGURE 1. Comparison of the phylogenetic hypothesis provided by the independent morphological and molecular datasets. Species of Ronnbergia are highlighted in red. A. Strict consensus of the four most parsimonious trees from the MP analysis of morphological data. Numbers in the nodes correspond to bootstrap values. B. Majority rule consensus tree from the BI analysis of the molecular dataset. Numbers in the nodes correspond to posterior probabilities and bootstrap values (PP/BT); dashes (-) represent low (<50%) or no BT support.
FIGURE 3 in Is Ronnbergia (Bromeliaceae, Bromelioideae) a geographically disjunct genus? Evidence from morphology and chloroplast DNA sequence data
FIGURE 3. Geographic distribution of the three clades containing species of Ronnbergia. Data points were obtained from the Global Biodiversity Information Facility—GBIF (www.gbif.org).
FIGURE 2 in Phylogenetic position and independent generic status of Indocypraea (Asteraceae-Heliantheae-Ecliptinae): evidence from chloroplast DNA sequences
FIGURE 2. Phylogeny of the subtribe Ecliptinae (Asteraceae: Heliantheae) based on chloroplast DNA sequences by using maximum likelihood analysis. Bootstrap values (≥ 70%; maximum likelihood/maximum parsimony) are indicated above branches, and posterior probabilities (≥ 0.95) below branches.
FIGURE 1. Indocypraea montana. A. Habit. B in Phylogenetic position and independent generic status of Indocypraea (Asteraceae-Heliantheae-Ecliptinae): evidence from chloroplast DNA sequences
FIGURE 1. Indocypraea montana. A. Habit. B. Flowering capitulum (top view). C. Flowering capitulum (lateral view). D. Fruiting capitulum. E. Achene (lateral view). F. Achene (top view). A–C from Huaiji, Guangdong, China (L.Y. Wang & M. Tang 106, IBSC); D from Lingui, Guangxi, China (M. Tang & L.Y. Wang 380, IBSC); E, F from Changjiang, Hainan, China (Z.X. Li 3850, IBSC).
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Allen Brain Atlas
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International Brain Laboratory public data
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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.