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4,490 results for “Brazilian species”
FIGURE 1. Copaifera appendiculata M. J in A lovely new, and potentially medicinal, species of Copaifera (Detarioideae, Fabaceae) from the Brazilian Cerrado supported by anatomical and morphological data
FIGURE 1. Copaifera appendiculata M. J. Silva: a flowering branch. b stipule. c distal portion of the rachis showing the spinescent extension. d–h variations in leaflet shapes. i trichomes on the abaxial surface. j trichomes on the adaxial surface. k detail of the leaflet margin and trichomes. l detail of the leaflet apex. m floral bud. n ventral surface of the bract. o detail of the bract margin. p flower, note the sepals conspicuously indumented ventrally. q ventral surface of the sepal. r detail of trichomes on the ventral surface of the sepal. s stamen. t ventral (left) and dorsal (right) surfaces of the anther. u gynoecium, note the uniformly indumented ovary. v detail of the trichomes on the ovary. w detail of the stigma. x fruit. y fruit after opening, note the twisted valve and prolonged hilum. z side view of the seed (drawn by Renato Cristiano Gualberto from the holotype).
FIGURE 4. Abuta alto-macahensis. A in A new species of Abuta (Menispermaceae) from the Brazilian Atlantic Forest
FIGURE 4. Abuta alto-macahensis. A. Habitat in Pico do Frade, located in the Atlantic Forest of southeastern Brazil. B. Liana stem. C. Branches in the forest canopy. D. Detail of leaves in the forest canopy. E. Leaves showing the adaxial surface. F. Leaves showing the abaxial surface. Photos: J.M.A. Braga taken on 29 June 2016.
FIGURE 5 in A new species of Abuta (Menispermaceae) from the Brazilian Atlantic Forest
FIGURE 5. Map of occurrence records of Abuta alto-macahensis. Black contours represent the limits between the Brazilian States.
FIGURE 2 in A new species of Abuta (Menispermaceae) from the Brazilian Atlantic Forest
FIGURE 2. Morphological characters of Abuta alto-macahensis. A. Flowering branch. B. Detail of leaf hairiness on the abaxial surface. C. Pistillate inflorescence. D. Pistillate flower. E. Sepals. F. Staminode. G. Carpels. H. Drupelet. I. Endocarp. J. Seed. A–G. Forzza et al. 2899 (RB) and H–J. Pessoa et al. 549 (RB).
FIGURE 1. Abuta alto-macahensis. A in A new species of Abuta (Menispermaceae) from the Brazilian Atlantic Forest
FIGURE 1. Abuta alto-macahensis. A. Holotype with ♀ flowers (Forzza et al. 2899 RB[barcode 01457839]). B. Paratype with mature drupelets, and Barneby's signature identifying the new species (Pessoa et al. 549 RB[barcode 01457851]). Reproduced with permission from Herbário do Jardim Botânico do Rio de Janeiro.
FIGURE 3 in A new species of Abuta (Menispermaceae) from the Brazilian Atlantic Forest
FIGURE 3. Morphological features of Abuta alto-macahensis. A. Flowering branch. B. Detail of leaf hairiness on the abaxial surface. C. Pistillate flower. D. Sepals. E. Staminode. F. Carpels. G. Detail of carpel with 2-lobed stigma. H. Drupelet. I. Endocarp. J. Seed. A–G. Forzza et al. 2899 (RB) and H–J. Pessoa et al. 549 (RB). Drawing by Rachel Dana.
FIGURE 5 in New species of Quiva (Paraquiva) Cadena-Castañeda & Gorochov, 2013 (Orthoptera: Tettigoniidae: Phaneropterinae: Dysoniini) from Brazilian Amazon Rainforest
FIGURE 5. Quiva (Paraquiva) obscura sp. nov., stridulatory file of male. A: left file; B: right file.
FIGURE 1 in New species of Quiva (Paraquiva) Cadena-Castañeda & Gorochov, 2013 (Orthoptera: Tettigoniidae: Phaneropterinae: Dysoniini) from Brazilian Amazon Rainforest
FIGURE 1. Pictorial key to the species of Quiva (Paraquiva) Cadena-Castañeda & Gorochov, 2013. Illustrations adapted from Cadena-Castañeda & Gorochov, 2013.
FIGURE 4 in New species of Quiva (Paraquiva) Cadena-Castañeda & Gorochov, 2013 (Orthoptera: Tettigoniidae: Phaneropterinae: Dysoniini) from Brazilian Amazon Rainforest
FIGURE 4. Quiva (Paraquiva) obscura sp. nov., left tegmina of male in dorsal view. Abbreviations: AP: Posterior anal vein; AA: anterior anal vein; CuA: anterior cubital vein; CuP: posterior cubital vein; MA: anterior median vein; MP: posterior median vein; R: radial vein; Sc: subcostal vein.
FIGURE 3 in New species of Quiva (Paraquiva) Cadena-Castañeda & Gorochov, 2013 (Orthoptera: Tettigoniidae: Phaneropterinae: Dysoniini) from Brazilian Amazon Rainforest
FIGURE 3. Quiva (Paraquiva) obscura sp. nov., holotype male. A: habitus, dorsal view; B: head, frontal view; C: head and pronotum, dorsal view; D: head and pronotum, lateral view; E: Thoracic sternites, ventral view; F: foreleg, lateral view; G: midleg, lateral view; H: hindleg, lateral view; I–J: Terminalia in ventral and dorsal view respectively; K: Apex of cerci, dorsal view. Abbreviations: Mes: mesobasisternum; Met: metabasisternum; Cer: cerci; Sty: styli; Pl: subgenital plate.
FIGURE 2 in New species of Quiva (Paraquiva) Cadena-Castañeda & Gorochov, 2013 (Orthoptera: Tettigoniidae: Phaneropterinae: Dysoniini) from Brazilian Amazon Rainforest
FIGURE 2. Quiva (Paraquiva) angieae Cadena-Castañeda, 2013. Holotype male. A: habitus, lateral view; B: habitus, dorsal view; C: holotype labels; D: head, frontal view. Photos: Oscar Cadena-Castañeda.
FIGURE 5 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 5. Cladosporium brigadeirensis (VIC 44238, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores. E. Mult-branched conidiophore. I. Conidiogenous cell details. J. Terminal and intercalary conidiogenous cells. K. Secondary ramoconidia prolongation. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 7 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 7. Cladosporium pseudotenuissimum (VIC 44422, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Macronematous conidiophores and conidia. E, F. Micronematous conidiophores at arrows. K. Conidiogenous cel with conidia. L. Bubble-like swelling details. M. Microcyclic conidiogenesis (black arrow) and Ramoconidia (red arrow). Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 6 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 6. Cladosporium chusqueae (VIC 44239, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores and conidia. G. Terminal conidiophore. H. Short peg-like prolongation. I. Bent conidiophore; J–K. Conidiophore branched near the base at a 90º angle. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM.
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain).
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain).
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM.
FIGURE 12 in A remarkable new species of Davilla Vand. (Dilleniaceae, Dolicocarpoideae) from the Brazilian Savanna supported by morphological and anatomical data
FIGURE 12. Cross-section of the leaf blade of Davilla elliptica (a–d), D. grandiflora (e–h), and D. pygmaea M.J. Silva (i–l), submitted to histochemical tests a–c, g, h, i, j–l petiole. d–f. midrib. Histochemical tests: a, e, i and j. acidic lipids indicated by *, and a green-blue color. b–d, f–h, k and l total lipids stained red-orange indicated by * and arrowheads. See lipid droplet indicated by an arrowhead in b and the intense cuticle coloration in b, f, k and l; note the deposition of lipids on the cell walls of idioblasts and endodermis cells. c = cuticle. co = collenchyma. ep = epidermis. en = endodermis. fi = fibers. pa = parenchyma. ph = phloem. sc = sclereids. vb = vascular bundle. xy = xylem. asterisks = idioblasts. arrows = Casparian strip. Scales: c, e, i and k = 200 µm. a, b, d, f-h, j and l = 50 µm.
ScienceDex guides
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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.