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FIGURE 1 in Lepiota atrobrunneodisca (Agaricaceae, Agaricales), a new species with a hymeniform pileus covering from North China
FIGURE 1. Phylogeny derived from Maximum Likelihood analysis of the ITS sequences of Lepiota. Macrolepiota mastoidea and Leucoagaricus naucinus are used as outgroup to root the tree. ML bootstrap support values (≥ 70 %) are shown above the nodes. New species and nodes with Bayesian posterior probabilities values (≥ 0.95) are in bold.
Fig. 13 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 13. Distribution of alkaloid-type isolated between 2000 and 2021 from different genera in the Monimiaceae (Hortonia, Mollinedia, Peumus, Tambourissa, Xymalos), Siparunaceae (Siparuna, Glossocalyx) and Atherospermataceae (Doryphora, Laureliopsis).
Fig. 12 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 12. Distribution of the non-volatile constituents isolated between 2000 and 2021 from different genera in the Monimiaceae (Hortonia, Mollinedia, Peumus, Tambourissa, Xymalos), Siparunaceae (Siparuna, Glossocalyx) and Atherospermataceae (Doryphora, Laureliopsis).
Fig. 2 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 2. Previously undescribed and known terpenoids isolated from Hortonia genus in the Monimiaceae family.
Fig. 1 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 1. Previously undescribed γ-lactone compounds and ring opened derivative 10 isolated from the Monimiaceae family.
Fig. 7 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 7. Previously undescribed and known flavonoids isolated from the Siparunaceae family (The substituents of flavonoids are denoted in blue font). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 10. Previously undescribed homogentisic acid derivatives isolated from G in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 10. Previously undescribed homogentisic acid derivatives isolated from G. Brevipes in the Siparunaceae family.
FIGURE 11 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 11. Pollen with partial view of the reticulum and the sulcus. A–B. Krenakanthus ribeiranus (Leme 10220). A. View of the reticulum. B. View of the sulcus covered with condensed exine elements. C. Krenakanthus roseolilacinus (Leme 8922). D. Orthocryptanthus arcanus (Leme 9093). E. Orthocryptanthus santaritensis (Leme 8945). F. Orthocryptanthus vasconcelosianus (Leme 8673). G–J. Orthophytum. G. O. (subg. Orthophytum) fosterianum (Leme 5980). H. O. (subg. Orthophytum) macroflorum (Leme 6001). I. O. (subg. Capixabanthus) pseudovagans (Leme 7028). J. O. (subg. Clavanthus) mello-barretoi (Leme 7243). K. Rokautskyia scaposa (Leme 5219). L. Sincoraea ophiurioides (Leme 2282). M. Cryptanthus beuckeri (Leme 7341). N. Forzzaea flavipetala (Leme 9093). O. Hoplocryptanthus regius (Leme 6372). Bars = 5 μm. SEM photos: A–B. P.S. de Almeida. C–O. H. Halbritter.
FIGURE 9 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 9. Seed morphology in Krenakanthus, seeds in lateral view. A–B. Krenakanthus ribeiranus. C. K. roseolilacinus.. c = chalaza. m = micropyle. r = raphe. Bars = 0.5 mm.
FIGURE 10. Seed anatomy. A, C. Krenakanthus ribeiranus. B, D. K. roseolilacinus. A–B in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 10. Seed anatomy. A, C. Krenakanthus ribeiranus. B, D. K. roseolilacinus. A–B. Seeds in median cross-section. C–D. Detail of the seed coat in anti-raphe. Arrowhead: tegmic cuticle. ar = anti-raphe. en = endosperm. pr = pre-raphe. The numbers indicate the different seed coat layers. 1 = endotegmen. 2 = exotegmen. 3 = endotesta. 4 = exotesta. Bars: A–B = 200 μm. C–D = 50 μm.
FIGURE 8 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 8. Leaf anatomy in Krenakanthus. A, C–D. Krenakanthus ribeiranus. B, E–F: K. roseolilacinus. A–B: leaf median crosssection. C–D. Non-glandular trichome anatomy. E–F: Glandular trichome anatomy. C, E. Trichomes in epidermis context. D. Detail of the stalk. F: detail of the glandular trichome. Arrowhead = stoma. ap = aquiferous parenchyma. bc = basal cells. ch = chlorenchyma. e = epidermis. gc = glandular apical cell. h = hypodermiss. st = stalk. Bars: A–B = 100 μm. C–F = 50 μm.
FIGURE 7. A–F in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 7. A–F. Krenakanthus ribeiranus (J.C.S. Ribeiro 001): A. Side view of the leaf blade, highlighting the spreading, uniseriate, hair-like trichomes on the abaxial and adaxial surfaces. B. Basal portion of the leaf, evidencing the inconspicuous marginal spines. C. The inconspicuous peduncle of the inflorescence. D. Fruits in different stages of maturation. E. Fruits. F. Seeds. Bars = 5 mm (A–B, D–E). Bars = 2 mm (C, F).
FIGURE 2 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 2. The massif of Serra de Santa Maria immediate delimitation and with buffers of 1 km, 3 km, and 5 km of its immediate surroundings. The overlay analyses of these geometries with Mapbiomas historical land use cover data series is presented for each land use and vegetation cover classes remaining proportion.
FIGURE 5. A–F in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 5. A–F. Krenakanthus ribeiranus (J.C.S. Ribeiro 001): A Habit in three stages of flower development. B. Habit, highlighting an individual in fruit stage. C. Small-sized aspect of the leaf rosette in an adult individual. D. Frontal view of the fan blade-like corolla. E. Lateral view of the corolla. F. Abundant seedlings growing not far from mother-plants. Photos: J.C.S. Ribeiro.
FIGURE 1 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 1. Distribution of Krenakanthus ribeiranus and K. roseolilacinus. The Area of Occupancy (AOO) of K. ribeiranus in presented alongside the results of the overlay analyses with Mapbiomas land use cover data series.
FIGURE 3 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 3. Krenakanthus ribeiranus (J.C.S. Ribeiro 001): A. General aspect of the shaded rocky habitat alongside creeks at the type locality. B–D. Subpopulations at the type locality composed of individuals growing on organic-rich, shallow soils accumulated on sandstone rock surfaces among mosses. Photos: J.C.S. Ribeiro.
FIGURE 4 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 4. Leaf margin and indumentum in Krenakanthus. A–B. Krenakanthus roseolilacinus. C–E. K. ribeiranus. A–B. Leaf margin with conspicuous spines. C–D. Leaf margin with inconspicuous spines and leaf blade with trichomes. E. Detail of a non-glandular uniseriate trichome. Arrowhead = spine. t = tector trichome. Bars: A–D = 1 mm. E = 0.5 mm.
FIGURE 6 in A "hairy situation" in Minas Gerais, Brazil: a striking new species of Krenakanthus (Bromeliaceae: Bromelioideae) covered with uniseriate trichomes
FIGURE 6. Krenakanthus ribeiranus (J.C.S. Ribeiro 001; A, C, F–G, I, K, M) and K. roseolilacinus (Leme 8922; B, D–E, H, J, L, N): A–B. Frontal view of the corolla. C–D. Petals and stamens. E. Petal. F. Pistil and the stamens, highlighting the unequal filaments. G–H. Sepals. I–J. Fruits. K–L. Anthers. M–N. Stigma. Bars = 5 mm (C–E, J). Bars = 2 mm (F–I). Bars = 1 mm (K–N). Photos: A. J.C.S. Ribeiro. B–N. E. Leme.
Riparian land-cover data and model code for: Multiple-region, N-mixture community models to assess associations of riparian area, fragmentation, and species richness
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Data from: Congruent phylogeographic patterns of eight tree species in Atlantic Central Africa provide insights on the past dynamics of forest cover
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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.