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796 results for “oak species”
Figure 6 from: Naseer A, Khalid AN, Healy R, Smith ME (2019) Two new species of Hygrophorus from temperate Himalayan Oak forests of Pakistan. MycoKeys 56: 33-47. https://doi.org/10.3897/mycokeys.56.30280
Figure 6 Molecular phylogenetic analysis of Hygrophorus spp. based on LSU sequences. Maximum likelihood phylogram of Hygrophorus based on nrDNA LSU as generated with RAxML with 1000 bootstrap iterations. Bolded lettering refers to sequences generated in this study.
Figure 5 from: Naseer A, Khalid AN, Healy R, Smith ME (2019) Two new species of Hygrophorus from temperate Himalayan Oak forests of Pakistan. MycoKeys 56: 33-47. https://doi.org/10.3897/mycokeys.56.30280
Figure 5 Phylogenetic relationship of Hygrophorus spp. and its ECM roots from Pakistan and their allied Hygrophorus species based on nrDNA ITS sequences using the Maximum Likelihood method. Sequences generated during this study are in bold letters. Sequences from root tips were labelled as ECM.
Figure 4 from: Naseer A, Khalid AN, Healy R, Smith ME (2019) Two new species of Hygrophorus from temperate Himalayan Oak forests of Pakistan. MycoKeys 56: 33-47. https://doi.org/10.3897/mycokeys.56.30280
Figure 4 Anatomy of Hygrophorusscabrellus. A–HLAH35245 (holotype) A Basidia B Basidia with basidioles C Basidiospores D Cheilocystidia E Pleurocystidia F Stipitipellis G Tramal Hyphae H Pileipellis. Scale bars: 5.83 μm (A, B, D, E); 3.55 μm (C); 0.12 μm (F–H).
Figure 3 from: Naseer A, Khalid AN, Healy R, Smith ME (2019) Two new species of Hygrophorus from temperate Himalayan Oak forests of Pakistan. MycoKeys 56: 33-47. https://doi.org/10.3897/mycokeys.56.30280
Figure 3 Morphology of Hygrophorusscabrellus. A, B Basidiomata. LAH35245 (holotype). Scale bars: 0.88 cm (A); 0.48 cm (B).
Figure 2 from: Naseer A, Khalid AN, Healy R, Smith ME (2019) Two new species of Hygrophorus from temperate Himalayan Oak forests of Pakistan. MycoKeys 56: 33-47. https://doi.org/10.3897/mycokeys.56.30280
Figure 2 Anatomy of Hygrophorusalboflavescens. A–DLAH35243 (holotype) A Basida B Basidiospores C Pileipellis D Stipitipellis. Scale bars: 2.0 μm (A); 4.5 μm (B); 13.7 μm (C); 7.8 μm (D).
Figure 1 from: Naseer A, Khalid AN, Healy R, Smith ME (2019) Two new species of Hygrophorus from temperate Himalayan Oak forests of Pakistan. MycoKeys 56: 33-47. https://doi.org/10.3897/mycokeys.56.30280
Figure 1 Morphology of Hygrophorusalboflavescens (Holotype). A–D Basidiomata A, BLAH35244; FLAS-F-59457 C, DLAH35243. Scale bar: 1.5 cm.
FIGURE 2 in Nomenclatural revision and lectotypification of five species of Mexican oaks: Quercus (Fagaceae)
FIGURE 2. Lectotype of Quercus peduncularis Née.
FIGURE 1 in Nomenclatural revision and lectotypification of five species of Mexican oaks: Quercus (Fagaceae)
FIGURE 1. Lectotype of Quercus splendens Née.
FIGURE 4. A in Nomenclatural revision and lectotypification of five species of Mexican oaks: Quercus (Fagaceae)
FIGURE 4. A representative specimen of Quercus lancifolia Schltdl. & Cham.
FIGURE 3. A in Nomenclatural revision and lectotypification of five species of Mexican oaks: Quercus (Fagaceae)
FIGURE 3. A representative specimen of Quercus toxicodendrifolia Trel.
Data from: Global patterns of leaf defenses in oak species
Plant defensive traits drive patterns of herbivory and herbivore diversity among plant species. Over the past 30 years, several prominent hypotheses have predicted the association of plant defenses with particular abiotic environments or geographic regions. We used a strongly supported phylogeny of oaks to test whether defensive traits of 56 oak species are associated with particular components of their climatic niche. Climate predicted both the chemical leaf defenses and the physical leaf defenses of oaks, whether analyzed separately or in combination. Oak leaf defenses were higher at lower latitudes, and this latitudinal gradient could be explained entirely by climate. Using phylogenetic regression methods, we found that plant defenses tended to be greater in oak species that occur in regions with low temperature seasonality, mild winters, and low minimum precipitation, and that plant defenses may track the abiotic environment slowly over macroevolutionary time. The pattern of association we observed between oak leaf traits and abiotic environments was consistent with a combination of a seasonality gradient, which may relate to different herbivore pressures, and the resource availability hypothesis, which posits that herbivores exert greater selection on plants in resource-limited abiotic environments.
FIGURES 210–211 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 210–211. Andricus atkinsonae, new species, gall (photos by G. Melika).
FIGURES 180–182 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 180–182. Andricus pseudoaries, new species, gall (photos by M. Tavakoli).
FIGURES 99–104 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 99–104. Andricus megatruncicolus, new species, gall (photos by M. Tavakoli).
FIGURES 116–119 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 116–119. Andricus coriariformis, new species, gall (photos by G. Melika and M. Tavakoli).
FIGURE 197 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURE 197. Andricus sadeghii, new species, gall (photos by G. Melika).
FIGURES 131–134 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 131–134. Andricus libani, new species, gall (photos by G. Melika, taken from dry galls).
FIGURES 233–234 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 233–234. Dryocosmus caspiensis, new species, gall (photos by G. Melika).
FIGURES 29–34 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 29–34. Andricus assarehi, new species, gall (photos M. Tavakoli).
FIGURES 46–50 in New species of oak gallwaps from Iran (Hymenoptera: Cynipidae: Cynipini)
FIGURES 46–50. Andricus schoenroggei, new species, gall (photos M. Tavakoli).
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.