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Fig. 1. Sample places location. Points number 1, 3, 7, 12, 14, 18 and 20 in Reproductive biology of Rhaphiodon vulpinus (Ostariophysi: Cynodontidae) in the Tocantins River Basin, Brazil
Fig. 1. Sample places location. Points number 1, 3, 7, 12, 14, 18 and 20 = Tocantins river; 2 = Sono river; 4 = Lajeadinho river; 5 = Santa Luzia river; 6 = Mangues river; 8 = Areias river; 9 = Crixás river; 10 = Capivara Lagoon; 11 = Manuel Alves river; 13 = São Valério river; 15 = Santa Tereza river; 16 = Dionízio Lagoon; 17 = Água Branca Lagoon; 19 = Paranã river and 21 = Bonita Lagoon.
Fig. 5 in Reproductive biology of Rhaphiodon vulpinus (Ostariophysi: Cynodontidae) in the Tocantins River Basin, Brazil
Fig. 5. Monthly Tocantins River water level (m) variation. Vertical bars = minimum and maximum values; point = mean values.
Fig. 2 in Reproductive biology of Rhaphiodon vulpinus (Ostariophysi: Cynodontidae) in the Tocantins River Basin, Brazil
Fig. 2. Distribution of males and females of Rhaphiodon vulpinus, by standard length class. Asterisks indicate significant differences in sex ratio.
Fig. 4 in Reproductive biology of Rhaphiodon vulpinus (Ostariophysi: Cynodontidae) in the Tocantins River Basin, Brazil
Fig. 4. Monthly variation of the frequency of gonadal maturity stages (a and b), mean gonadosomatic index (c and d), and index of reproductive activity (e and f) for females (a, c, e) and males (b, d, f) of Rhaphiodon vulpinus.
Fig. 12 in Biology and ecomorphology of stream fishes from the rio Mogi-Guaçu basin, Southeastern Brazil
Fig. 12. Projection of the 15 studied species in the two first axes of the PCA; squares represent the nektonic species; circles the benthic and the triangles the nektobenthic.
Fig. 3 in Biology and ecomorphology of stream fishes from the rio Mogi-Guaçu basin, Southeastern Brazil
Fig. 3. Representative specimens of the collected species: a) H. malabaricus (LIRP 3077; 101.8 mm SL); b) A. paranae (LIRP 3093; 47.4 mm SL); c) A. fasciatus (LIRP 3161; 48.3 mm SL); d) B. stramineus (LIRP 3157; 45.3 mm SL); e) P. argentea (LIRP 3121; 55.2 mm SL); f) C. gomesi (LIRP 3138; 32.1 mm SL); g) C. iheringi (LIRP 3127; 36.0 mm SL); h) R. quelen (LIRP 3151; 88.9 mm SL); i) P. tenebrosa (LIRP 3160; 37.3 mm SL); j) C. difluviatilis (LIRP 3056; 44.0 mm SL); l) H. ancistroides (LIRP 3122; 37.4 mm SL); m) Hisonotus sp. (LIRP 3092; 30.4 mm SL); n) E. virescens (LIRP 3080; 119.8 mm SL); o) P. jucundus (LIRP 3063; 19.8 mm SL) and p) S. marmoratus (LIRP 3097; 137.1 mm SL).
Fig. 2 in Biology and ecomorphology of stream fishes from the rio Mogi-Guaçu basin, Southeastern Brazil
Fig. 2. General view of the three studied stretches in the Paulicéia stream, Mogi-Guaçu River basin; a) upper stretch, b) middle stretch and c) lower stretch.
Fig. 6 in Biology and ecomorphology of stream fishes from the rio Mogi-Guaçu basin, Southeastern Brazil
Fig. 6. Frequency of the reproductive stages found in each month to A. paranae in the Paulicéia stream.
Fig. 1 in Biology and ecomorphology of stream fishes from the rio Mogi-Guaçu basin, Southeastern Brazil
Fig. 1. Location of the study area in the Paulicéia stream, Mogi-Guaçu River basin, State of São Paulo, Brazil; upper (21º38'45.8"S 47º38'06"W), middle (21º39'23"S 47º38'34"W) and lower (21º40'58.1"S 47º39'26.3"W) stretches.
Fig. 4 in Biology and ecomorphology of stream fishes from the rio Mogi-Guaçu basin, Southeastern Brazil
Fig. 4. Percent composition of the gut contents of the fish species with the food items grouped in the following broad categories: the autochthonous - Al = algae, An = anelideos, Mi = micro-crustaceans, Te = thecamoebas, Fi = fishes and fish scales, Ai = aquatic insects; and the allochthonous - Ti = terrestrial insects, Ar = Arachnidae, Om = organic matter and Vp = debris of vascular plants.
Fig. 9 in Biology and ecomorphology of stream fishes from the rio Mogi-Guaçu basin, Southeastern Brazil
Fig. 9. Sexual proportion of males and females of Hisonotus sp. for each size intervals of the standard length.
Figure 19 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 19. Bootstrap consensus tree with uniform weights and no constraints from phylogenetic analyses of larval data. Number below branches indicate bootstrap support values above 50%.
Figure 16 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 16. Mandibles of terminal-instar larvae of Torymidae. A, Torymus nobilis (anterior left). B, Torymus nobilis (anterior right). C, Torymus notatus (anterior left). D, Torymus notatus (anterior right). E, Torymus rubi (anterior left). F, Torymus rubi (anterior right).
Figure 13 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 13. Terminal-instar larvae of Torymidae (anterior view of mouth parts). A, Torymus geranii. B, Torymus nobilis. C, Torymus notatus. D, Torymus rubi.
Figure 15 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 15. Mandibles of terminal-instar larvae of Torymidae. A, Pseudotorymus papaveris (posterior right). B, Pseudotorymus papaveris (posterior left). C, Torymus affinis (posterior right). D, Torymus affinis (posterior left). E, Torymus auratus (anterior left). F, Torymus auratus (anterior right). G, Torymus bedeguaris (posterior right). H, Torymus bedeguaris (posterior left). I, Torymus chloromerus (anterior left). J, Torymus chloromerus (anterior right). K, Torymus cingulatus (anterior left). L, Torymus cingulatus (anterior right). M, Torymus cyaneus (anterior left). N, Torymus cyaneus (anterior right). O, Torymus geranii (anterior left). P, Torymus geranii (anterior right).
Figure 12 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 12. Terminal-instar larvae of Torymidae (anterior view of mouth parts). A, Adontomerus impolitus. B, Adontomerus crassipes. C, Chalcimerus borceai. D, Glyphomerus tibialis. E, Glyphomerus stigma. F, Idiomacromerus centaureae. G, Idiomacromerus silybi. H, Idiomacromerus papaveris. I, Pseudotorymus papaveris. J, Torymus affinis. K, Torymus auratus. L, Torymus bedeguaris. M, Torymus chloromerus. N, Torymus cingulatus. O, Torymus cyaneus.
Figure 18 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 18. Strict consensus tree of 200 most parsimonious trees reconstructed from phylogenetic analyses of larval data.
Figure 11 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 11. Terminal-instar larvae of Torymidae (anterior view of the head). A, Torymus chloromerus. B, Torymus cingulatus. C, Torymus cyaneus. D, Torymus geranii. E, Torymus nobilis. F, Torymus notatus. G, Torymus rubi.
Figure 10 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 10. Terminal-instar larvae of Torymidae (anterior view of the head). A, Adontomerus impolitus. B, Adontomerus crassipes. C, Chalcimerus borceai. D, Glyphomerus tibialis. E, Glyphomerus stigma. F, Idiomacromerus centaureae. G, Idiomacromerus papaveris. H, Idiomacromerus silybi. I, Pseudotorymus papaveris. J, Torymus affinis. K, Torymus auratus. L, Torymus bedeguaris.
Figure 9 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 9. Terminal-instar larvae of Torymidae (lateral view of the body). A, Torymus chloromerus. B, Torymus cingulatus. C, Torymus cyaneus. D, Torymus geranii. E, Torymus notatus. F, Torymus rubi. G, Torymus nobilis.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
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.