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2,007 results for “ecological species”
FIGURE 12. Leviapseudes segonzaci. Male DBUA0002010.06. A, antennule. B in The Apseudomorpha (Crustacea: Tanaidacea) of the Gulf of Cadiz and Horseshoe Continental Rise (NE Atlantic): A taxonomic review with new records, species, and ecological data
FIGURE 12. Leviapseudes segonzaci. Male DBUA0002010.06. A, antennule. B, uropod.
FIGURE 10. Leviapseudes segonzaci. Female DBUA0002010.01a. A, pereopod 5. B, pereopod 6. C in The Apseudomorpha (Crustacea: Tanaidacea) of the Gulf of Cadiz and Horseshoe Continental Rise (NE Atlantic): A taxonomic review with new records, species, and ecological data
FIGURE 10. Leviapseudes segonzaci. Female DBUA0002010.01a. A, pereopod 5. B, pereopod 6. C, uropod.
Figure 3 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 3 - Map of Kaua'i, Hawaiian Islands, with polygon indicating distribution of Melicope stonei in the Kōke'e forests.
Figure 4 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 4 - Phylogenetic placement of Melicope stonei K.R. Wood, Appelhans & W.L. Wagner based on four nuclear and two plastid markers (modified from Appelhans et al. 2014c). The phylogenetic tree only shows the Hawaiian radiation of Melicope. The terms Apocarpa, Cubicarpa, Megacarpa and Pelea refer to the former Hawaiian sections of Melicope/Pelea (Hartley & Stone 1989). The support values are displayed above the branches and the first value represents the Bayesian posterior probability values (pp), followed by the bootstrap values (bs) from the Maximum Likelihood analysis.
Figure 2 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 2 - Melicope stonei K.R. Wood, Appelhans & W.L. Wagner. A Male flower, lateral view with sepals and petals cut away to show antisepalous and antipetalous stamens B Male flower, top view C Female flower, lateral view with sepals and petals cut away to show staminodes and pistil D Female flower, top view E–F abaxial leaf surface along midvein of M. stonei showing variability of leaf vestiture G Melicope barbigera A. Gray abaxial leaf surface along midvein A–D from Wood 15101 (PTBG) E from Wagner & Wood 6891 (US) F from Wood 8432 (US) G from Wagner & Wood 6896 (US) (Illustration by Alice Tangerini).
Figure 1 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 1 - Melicope stonei K.R. Wood, Appelhans & W.L. Wagner. A Flowering branch B Adaxial leaf surface near margin toward apex C Abaxial leaf surface near margin toward apex D Ramiflorous inflorescence arising below leaves on stem E Female flower, lateral view F Immature fruit and flowers G Dehisced fruit, showing seeds. A-C from Wagner & Wood 6891 (US) D from Wood 8431 (US) E from Wood 15101 (PTBG) F from Wood & Lee 16729 (photo) G from Lorence et al. 6454 (photo) (Illustration by Alice Tangerini).
Figure 3 from: Wood KR, Wagner WL (2017) Athyrium haleakalae (Athyriaceae), a new rheophytic fern species from East Maui, Hawaiian Islands: with notes on its distribution, ecology, and conservation status. PhytoKeys 76: 115-124. https://doi.org/10.3897/phytokeys.76.11637
Figure 3 - Typical habitat of Athyrium haleakalae around stream plunge pools, Hana Forest Reserve, East Maui, HI. Photo by K.R. Wood, 21 Aug 2013.
Figure 4 from: Wood KR, Wagner WL (2017) Athyrium haleakalae (Athyriaceae), a new rheophytic fern species from East Maui, Hawaiian Islands: with notes on its distribution, ecology, and conservation status. PhytoKeys 76: 115-124. https://doi.org/10.3897/phytokeys.76.11637
Figure 4 - A Mature plants of Athyrium haleakalae, showing habitat preference along concave hollow of stream, Hana Forest Reserve, East Maui, HI (22 Aug 2013, Wood & Oppenheimer 15639) B Mature plant of Athyrium microphyllum, showing terrestrial habitat preference, erect rhizome, and large size, Mohihi, Kaua'i, HI (18 Dec 2014, Wood & Flynn et al. 16175). Photos by K.R. Wood.
Figure 2 from: Wood KR, Wagner WL (2017) Athyrium haleakalae (Athyriaceae), a new rheophytic fern species from East Maui, Hawaiian Islands: with notes on its distribution, ecology, and conservation status. PhytoKeys 76: 115-124. https://doi.org/10.3897/phytokeys.76.11637
Figure 2 - Map showing known distribution of Athyrium haleakalae, East Maui, HI, with upper right red dot indicating colonies in the headwaters of Kawakoe and Mokulehua, upper left in Helele'ike'oha, and lower red in Kīpahulu, near Palikea.
Figure 1 from: Wood KR, Wagner WL (2017) Athyrium haleakalae (Athyriaceae), a new rheophytic fern species from East Maui, Hawaiian Islands: with notes on its distribution, ecology, and conservation status. PhytoKeys 76: 115-124. https://doi.org/10.3897/phytokeys.76.11637
Figure 1 - Athyrium haleakalae K.R. Wood & W.L. Wagner. A–B habit C detail of adaxial pinnule showing venation and fleshy spines D detail of abaxial pinnule showing range of sori shapes E–F lower stipe scales G rhizome scale. A–G from Perlman et al. 23964 (BISH, PTBG, UC, US) (Illustration by Alice Tangerini).
Ecological stress memory in wood architecture of two Neotropical hickory species from central-eastern Mexico
<p>Drought periods are major evolutionary triggers of wood anatomical adaptive variation in Lower Tropical Montane Cloud Forests tree species. We tested the influence of historical drought events on the effects of ecological stress memory on latewood width and xylem vessel traits (vessel density, vessel grouping index, hydraulic diameter, and percent conductive area) in two relict hickory species (<em>Carya palmeri</em> and <em>Carya myristiciformis</em>) from central-eastern Mexico. We hypothesized that latewood width would decrease during historical drought years, developing correlations between growth and hydric stress conditions, and that during past tree growth, moisture stress would imprint on wood anatomical traits between successive drought events. We analyzed latewood anatomical traits that developed during historical drought and pre- and post-drought years in both hickory species. We found that repeated periods of hydric stress left climatic signatures for annual latewood growth and xylem vessel traits that are essential for hydric adaptation in tropical moist tree species. Our results demonstrate the existence of cause‒effect relationships in wood anatomical architecture and highlight the ecological stress memory linked with historical drought events. Thus, combined time-series analysis of latewood width and xylem vessel traits is a powerful tool for understanding the ecological behavior of hickory species.</p>
Figure 1 in A first approximation for the Herpetofauna species composition of the Taiamã Ecological Station, Pantanal of Mato Grosso, Brazil
Figure 1. (A) Distribution map of Paleosuchus palpebrosus (orange color) (based on Magnusson et al., 2019); (B) New distribution record (star) for the Pantanal floodplain at the Taiamã Ecological Station, Mato Grosso, Brazil; (C) Registered specimen of Paleosuchus palpebrosus (Photograph by Daniel L. Z. Kantek).
Figure 27 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 27: E. flavicaudis collecting sites. Northwestern Sardinia (Italy): 1. Cala della Barca; 2. Maristella; 3. Olmedo; 4. Monteleone Roccadoria; 5. Sedini; 6. Chiaramonti; 7. Martis; 8. Ittiri.
Figure 26 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 26: Old abandoned buildings, as this one photographed in Castelfalfi (Firenze, Tuscany), are favorable environments for E. flavicaudis (photo by Marco Colombo).
Figure 20 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 20: E. italicus collecting sites. Emilia Romagna, Lombardy, Marche, Veneto, and Piedmont (Italy): 1. Fermo; 2. Monte Isola; 3. Cislano; 4. Campo; 5. Ceraino; 6. Varallo Pombia; 7. Cernobbio; 8. Isola Comacina; 9. Onno; 10. Cittiglio; 11. Busto Arsizio; 12. Montichiari; 13. Ferrara; 14. Felino; 15. Montechiarugolo; 16. Torrechiara; 17. San Pietro in Cerro; 18. Castell'Arquato.
Figure 23 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 23: Abandoned houses are a part of E. naupliensis habitat in Skoulikado (Zakynthos Island, Greece) (photo by Marco Colombo).
Figure 17 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 17: Euscorpius (Polytrichobothrius) italicus, subadult female, Busto Arsizio (Lombardy, Italy) (photo by Giorgio Colombo).
Figure 19 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 19: High rocky cliffs are the most favorable environment for thermophylous species as E. italicus (Peschiera Maraglio, Lombardy, Italy) (photo by Giorgio Colombo).
Figure 16 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 16: E. concinnus collecting sites. Emilia Romagna, Liguria, Piedmont, Tuscany (Italy), Haute Provence and Var (France): 1. Le Muy; 2. Entrevaux; 3. Mondovì; 4. La Morra; 5. Pigna; 6. Capo Mele; 7. Rapallo; 8. Breccanecca; 9. Pignone; 10. Levanto; 11. Vernazza; 12. Gambatesa mine; 13. Gropparello; 14. Castel San Gimignano; 15. Codiponte; 16. Vagli; 17. Castelnuovo di Garfagnana; 18. San Vivaldo.
Figure 12 in New data on distribution and ecology of seven species of Euscorpius Thorell, 1876 (Scorpiones: Euscorpiidae)
Figure 12: Euscorpius (Euscorpius) concinnus, adult male, Le Muy (Maures Mts., France) (photo by Marco Colombo).
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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.