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449 results for “Atlantic rainforest”
FIGURE 3. Aulonemia prolifera. A. Amphipodial rhizome. B. Midculm nodal region. C in Three new species of Aulonemia (Poaceae: Bambusoideae) from the Brazilian Atlantic rainforest
FIGURE 3. Aulonemia prolifera. A. Amphipodial rhizome. B. Midculm nodal region. C. Leaf ligular region, emphasizing the fimbriae and pseudopetiole. D. Flowering branch. E. Spikelet. F. Glume I, adaxial view. G. Glume II, adaxial view. H. Anthoecium and rachilla internode in lateral view. I. Palea, abaxial view. J. Lodicules. J. Ovary. K. Anther. A–C. Viana 3537, D–K. Kolmann 6986. Illustrated by Myrian M. Duarte.
FIGURE 2. Aulonemia cincta. A–B. Habit. C–E in Three new species of Aulonemia (Poaceae: Bambusoideae) from the Brazilian Atlantic rainforest
FIGURE 2. Aulonemia cincta. A–B. Habit. C–E. Culms with culm leaves (E., detail of the corky girdle in the base of leaf sheath). F. Sterile branch, showing conspicuous bicolored leaf blades. G. Leaf ligular region, emphasizing the fimbriae and pseudopetiole (Viana 4401). Photographs by P. L. Viana.
FIGURE 5. Aulonemia soderstromii. A. Amphipodial rhizome. B. Midculm nodal region. C. Leaf ligular region, with the conspicuously effuse fimbriae. D. Flowering branches. E. Spikelet. F. Glume I. G. Glume II. H in Three new species of Aulonemia (Poaceae: Bambusoideae) from the Brazilian Atlantic rainforest
FIGURE 5. Aulonemia soderstromii. A. Amphipodial rhizome. B. Midculm nodal region. C. Leaf ligular region, with the conspicuously effuse fimbriae. D. Flowering branches. E. Spikelet. F. Glume I. G. Glume II. H. Anthoecium and rachilla internode in lateral view. I. Palea, abaxial view. J. Lodicules. K. Gynoecium and androecium (Viana 3183). Illustrated by Myrian M. Duarte.
FIGURE 6. Aulonemia soderstromii. A. Habit. B in Three new species of Aulonemia (Poaceae: Bambusoideae) from the Brazilian Atlantic rainforest
FIGURE 6. Aulonemia soderstromii. A. Habit. B. Ramifications at the apical portion of the culm. C–D. Sterile branches, with the conspicuously effuse fimbriae. E. Flowering branches. F–G. Spikelets (Viana 3183). Photographs by P.L. Viana.
FIGURES 14A–14B in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 14A–14B. Chamaesiphon stratosus. Cell arrangement and initial stage after exospore germination (arrow). FIGURES 14C–14D. Hyella cf. caespitosa var. arbuscula. General thallus aspect and detail of baeocytes in mothers' sheath (arrow).
FIGURES 15A–15D in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 15A–15D. Pleurocapsa sp. General colony habit and details of baeocytes (arrows). FIGURES 15E–15G. Chroococcidiopsis sp. General colony habit and details of baeocytes (arrows).
FIGURES 12A–12C. Entophysalis granulosa FIGURES 12D–12E in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 12A–12C. Entophysalis granulosa FIGURES 12D–12E. Entophysalis cf. samoensis FIGURES 12F–12G. Entophysalis sp. 1
FIGURES 11A–11C in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 11A–11C. Chlorogloea sp. 3 FIGURES 11D–11E. Cyanoarbor aff. himalayensis FIGURES 11F–11H. Entophysalis arboriformis
FIGURES 8A–8C in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 8A–8C. Nephrococcus shilinensis. General colony habit and detail of reniform cells (arrows). FIGURES 8D–8E. Pseudocapsa dubia. General colony habit with colonies showing brown sheaths (arrow). FIGURES 8F–8G. Pseudocapsa sp. General colony habit and cells in fan disposition, which is typical from Pseudocapsa (arrow). FIGURE 8H. Chondrocystis dermochroa.
FIGURES 6L–7B. Gloeocapsopsis dvorakii. 6L. Colony collected from a rock. 7A. Colony collected from a rope. 7B. Colony collected from a in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 6L–7B. Gloeocapsopsis dvorakii. 6L. Colony collected from a rock. 7A. Colony collected from a rope. 7B. Colony collected from a roof.
FIGURES 6A–6D. Cyanostylon gelatinosus. 6C. Cells detail. 6D. Mucilage stalk detail. FIGURE 6E in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 6A–6D. Cyanostylon gelatinosus. 6C. Cells detail. 6D. Mucilage stalk detail. FIGURE 6E. Cyanostylon cf. gelatinosus. General colony habit with detail of mucilage stalks (arrows). FIGURES 6F–6G. Cyanostylon sp. 6G. Mucilage stalk detail (arrow). FIGURES 6H–6I. Endospora rubra. General colony habit with cell packets showing individual envelopes (arrows).
FIGURES 2A in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 2A. Gloeothece fuscolutea. General colony habit, with yellowish sheaths and a colony showing cells with an individual envelope (arrow).
FIGURES 1A–1B in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 1A–1B. Aphanothece saxicola. General colony habit with cells in an individual envelope (arrow).
FIGURES 5A–5B. Chroococcus tenax. 5A. General colony habit highlighting the lamellated sheaths. 5B in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 5A–5B. Chroococcus tenax. 5A. General colony habit highlighting the lamellated sheaths. 5B. Desiccated cell showing concentrically lamellate sheaths and blue color.
FIGURES 4A in How diverse are coccoid cyanobacteria? A case study of terrestrial habitats from the Atlantic Rainforest (São Paulo, Brazil)
FIGURES 4A. Coelosphaeriopsis sp. General aspect of a colony and detail of cells in individual envelopes (arrow).
FIGURE 2 in Monsanima tinguaensis (Apocynaceae), an enigmatic new species from Atlantic rainforest
FIGURE 2. MOOG phylogram (ACCTRAN optimization) based on the majority rule consensus tree derived from the Bayesian analysis of trnT-F and rps16 combined dataset (outgroup omitted). The subtribal classification (sensu Endress et al. 2014) is mapped onto this topology: DIP = Diplolepinae; GON = Gonolobinae; MET = Metastelmatinae; ORT = Orthosiinae; OXY = Oxypetalinae; PEN = Pentacyphinae; TAS = Tassadiinae. Asterisks indicate branches with posterior probability <90%.
FIGURE 1 in Monsanima tinguaensis (Apocynaceae), an enigmatic new species from Atlantic rainforest
FIGURE 1. MOOG tree generated from the analysis of trnT-F and rps16 combined dataset (outgroup omitted) showing clades with ≥ 50% maximum parsimony bootstrap support (Bst). Numbers above branches indicate posterior probabilities (- = absent in Bayesian tree); numbers below branches indicate Bst. Dashed clade is present in the strict consensus of 180,000 most parsimonious trees but without Bst; arrows indicate clades absent in the strict consensus. The subtribal classification (sensu Endress et al. 2014) is mapped onto this topology: PEN = Pentacyphinae; TAS = Tassadiinae.
FIGURE 3 in Monsanima tinguaensis (Apocynaceae), an enigmatic new species from Atlantic rainforest
FIGURE 3. Monsanima tinguensis (from the holotype). A. branch with flowers; B. inflorescence; C. flower with a corolla lobe removed to show the corona; D. flower with a corolla lobe and part of corona removed showing the gynostegium; E. individual corona lobe dissected, lateral view; F. gynostegium; G. anther; H. pollinaria.
Figure 1 in Foraging patterns and artificial fragrance choices of male orchid bees in the Brazilian Atlantic Rainforest
Figure 1. Number of male euglossine bees belonging to the four most abundant species of orchid bees (Euglossa annectans, E. stellfeldi, E. iopoecila and E. roderici) attracted monthly to the eight fragrances offered to bees during the wet-warm season: (a) on Superagui Island (SI), over three sampling periods; (b) on RNSM. O, N, D, J, F, M, A = October, November, December, January, February, March and April, respectively. EG = eugenol; EC = eucalyptol; VN = vanillin; BI = betaionone; BA = benzyl acetate; MS = methyl salicylate; BB = benzyl benzoate; MC = methyl cinnamate.
Figure 4 in A new species of Passalus (Passalus) from Atlantic Rainforest, with a key and checklist for the Brazilian Petrejus group (Coleoptera, Passalidae)
Figure 4. Passalus (Passalus) lockerum sp. nov. holotype male: (a) head, and mentum detail, ventral; (b) meso- and metasternum, ventral.
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.