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289 results for “Baleares islands”
FIGURE 1 in A new species of Cypris (Crustacea: Ostracoda) from the Iberian Peninsula and the Balearic Islands, with comments on the first ostracod named using the Linnean system
FIGURE 1. Bottom part of page 344 and top part of p. 345 of Linnaeus' (1746) Fauna Svecica, including the description of an ostracod of the genus Monoculus with code 1185.
Mycological catalog of the Balearic Islands
<p>Dataset extracted from http://bolets.uib.es/cas/. Original data from the book 'Els bolets de les Balears', Carles C, Josep L. S. Ed. Micobalear, C.B. (2006). Digitalized by Museu Balear de Ciències Naturals and Universitat de les Illes Balears with the funding of Obra Social Sa Nostra Caixa de Balears.</p> <p>The following attributes are found in the dataset:</p> <ul> <li> <p><strong>scientific_name:</strong> Official scientific name.</p> </li> <li> <p><strong>family:</strong> Taxonomic family.</p> </li> <li> <p><strong>genre:</strong> Taxonomic genre.</p> </li> <li> <p><strong>alternative_scientific_names:</strong> Alternative scientific names following different nomenclatures.</p> </li> <li> <p><strong>ca_common_name:</strong> Popular names in catalan.</p> </li> <li> <p><strong>es_common_name:</strong> Popular names in spanish.</p> </li> <li> <p><strong>description:</strong> Detailed desciption.</p> </li> <li> <p><strong>additional_info:</strong> Additional notes.</p> </li> <li> <p><strong>islands:</strong> Islands where the mushroom is located.</p> </li> <li> <p><strong>habitat:</strong> Habitats.</p> </li> <li> <p><strong>edibility:</strong> Edibility.</p> </li> </ul>
Data from: Population clustering and clonal structure evidence the relict state of Ulmus minor Mill. in the Balearic Islands
Field elm (Ulmus minor) is a riparian tree that grows in rare, small populations scattered along temporary watercourses in the Balearic Islands, nowadays mostly covered with Mediterranean vegetation. Agriculture and farming on the fertile land along the periodically flooded plains have reduced the elm populations to sparse tree lines along the creek beds. The presence of field elm in this very anthropic landscape has led some authors to consider it as an introduced species in the Balearics. However, pollen data suggest these elms may be the remains of larger populations experiencing continuous population shrinkage during the Holocene, and hence be native to the isles. In this paper, we apply genetic markers to assess whether field elm is or is not indigenous to the Balearic Islands. We compare the genetic variation in nine nuclear microsatellites of six Balearic populations (three in each of the largest islands, Majorca and Minorca) with that of three natural Iberian populations located in two regions, one geologically (Baetic mountains, SE Iberia) and another historically (Catalonia, NE Iberia) related to the islands. Principal coordinates analysis and Bayesian clustering methods reveal a strong genetic differentiation of the Balearic populations from the Iberian ones, and even among islands, which support their native origin. Genotypic variation in the islands is very low and clonal reproduction is very high compared with the mainland, as it is frequently observed in populations of clonal species where sexual reproduction is limited. We discuss the practical implications of these findings for the conservation of elm genetic resources of these findings.
FIGURE 1–2. 1 in A new genus and species of Enidae (Gastopoda: Pulmonata) from the Quaternary of the Balearic Islands (Western Mediterranean)
FIGURE 1–2. 1. Balearena gymnesica gen. nov., spec. nov. Holotype, upper coastal cliff at eastern edge of Es Carnatge, Palma de Mallorca, Mallorca island, Balearic Islands, Western Mediterranean. Shell length 16.7 mm; scale bar 2.0 mm. Not shown are a thin encrustation over most of the first whorl and minimal fractures on the peristome. 2. Protoconch sculpture of Balearena gymnesica. This reconstruction is based on partial remains of these delicate features that are observable in various specimens. Scale bar 0.5 mm.
FIGURE 4–5. 4 in A new genus and species of Enidae (Gastopoda: Pulmonata) from the Quaternary of the Balearic Islands (Western Mediterranean)
FIGURE 4–5. 4. Outlines of Mastus pupa (thick dark line, solid circles) and Balearena gymnesica (thin pale line, empty circles) in standard (front) orientation, scaled to same length and superimposed. The landmarks selected for the geometric morphometric analysis are indicated by circles, arrows showing the relative displacement among the two shapes. 5. Principal component analysis of truss distances defined by the landmarks shown in Fig. 4, measured on the specimens shown in Fig. 3. The first principal component (PCI) accounts for 54.95 % of total variance, and bears loadings mostly along the axis defined by shell length; the second principal component (PCII) explains 44.97 % of total variance, and its loadings are mostly along the axis perpendicular to shell length. Both components reflect changes with size, larger shells scoring higher on PCI and lower on PCII.
FIGURE 3 in A new genus and species of Enidae (Gastopoda: Pulmonata) from the Quaternary of the Balearic Islands (Western Mediterranean)
FIGURE 3. Comparison of shells of Mastus pupa (top row; Korbous, Tunisia) and Balearena gymnesica (bottom row; Es Carnatge, Mallorca). Scale bar 10 mm.
FIGURES 20–25. Cribellopora simplex. 20 in Bryozoa from detritic bottoms in the Menorca Channel (Balearic Islands, western Mediterranean), with notes on the genus Cribellopora
FIGURES 20–25. Cribellopora simplex. 20, autozooids (holotype); 21, 22, ovicellate and non ovicellate zooids (holotype); 23, autozooids (MNCN–25.03/3825); 24, primary orifice (MNCN–25.03/3825); 25, ancestrula and periancestrular zooids.
FIGURES 26–29. Cribellopora trichotoma. 26 in Bryozoa from detritic bottoms in the Menorca Channel (Balearic Islands, western Mediterranean), with notes on the genus Cribellopora
FIGURES 26–29. Cribellopora trichotoma. 26, autozooids (Lectotype). 27, primary orifices (lectotype); 28, ovicellate zooids (MM–2896); 29, ancestrula and periancestrular zooids (lectotype).
FIGURES 13–19. Fenestrulina juani n in Bryozoa from detritic bottoms in the Menorca Channel (Balearic Islands, western Mediterranean), with notes on the genus Cribellopora
FIGURES 13–19. Fenestrulina juani n. sp. 13, view of colony (holotype); 14, young colony showing bifurcate spines (MNCN–25.03/3821); 15, ovicellate and non ovicellate zooids (holotype); 16, different degrees of calcification of the ovicell (MNCN–25.03/3821); 17, autozooid showing development of ascopore rim (MNCN–25.03/3821); 18, 19, ancestrula and daughter zooid (MNHN–10382).
FIGURE 6–9. Barrosia balearica n in Bryozoa from detritic bottoms in the Menorca Channel (Balearic Islands, western Mediterranean), with notes on the genus Cribellopora
FIGURE 6–9. Barrosia balearica n. sp. 6, two ovicellate zooids (holotype); 7, ovicell showing the proximal tongue-like process and distal spines (holotype); 8, development of the ovicell (holotype); 9, ancestrula and periancestrular zooids (MNCN–25.03/3809).
FIGURES 2–5. Barrosia balearica n in Bryozoa from detritic bottoms in the Menorca Channel (Balearic Islands, western Mediterranean), with notes on the genus Cribellopora
FIGURES 2–5. Barrosia balearica n. sp. 2, view of colony (MNCN–25.03/3809); 3, another colony (MNCN–25.03/ 3810); 4, autozooids (MNCN–25.03/3810); 5, distribution of uniporous mural septula and ovicellate zooids (holotype).
Fig. 2. A – G in A redescription of Harpactea dufouri (Thorell, 1873) (Araneae, Dysderidae), its occurrence outside the Balearic Islands, and some notes on the corticalis group of the genus
Fig. 2. A – G. Harpactea dufouri (Thorell, 1873), Mont Ras specimens, except F – G. A. ♂, dorsal view. B. ♀, dorsal view. C. Tip of male embolus and conductor, retrolateral view, Nomarski interference contrast. D. Tip of male embolus and conductor, retrolateral view, bright Feld. E. Cleared vulva, ventral view. Left: bright Feld, middle: phase contrast, right: Nomarski interference contrast. F. Tip of male embolus and conductor, Banyalbufar specimen. G. Endogyne, external ventral view, Banyalbufar specimen. — H. Map showing the Mont Ras site of Harpactea dufouri (red square), the Gavarres are delimited by a black line. Scale bars: A – B = 1 mm; C – F = 100 µm; G = 0.5 mm; H = 5 km.
Fig. 1 in A redescription of Harpactea dufouri (Thorell, 1873) (Araneae, Dysderidae), its occurrence outside the Balearic Islands, and some notes on the corticalis group of the genus
Fig. 1. Harpactea dufouri (Thorell, 1873), Mont Ras specimens. A. Male palp, prolateral view. B. Tip of male embolus and conductor, retrolateral view. C. Endogyne, external ventral view, uncleared. D. Cleared vulva, ventral view. E. Leg spination scheme, legend. F. Leg spination scheme of male. White dots are spines present on one leg and absent on the other. G. Leg spination scheme of female. White dots are spines present on one leg and absent on the other. Scale bars: A, C = 0.5 mm; B, D = 100 µm.
FIGURES 311–315. Occidenchthonius serranoi n in Revision of the Ephippiochthonius complex in the Iberian Peninsula, Balearic Islands and Macaronesia, with proposed changes to the status of the Chthonius subgenera (Pseudoscorpiones, Chthoniidae)
FIGURES 311–315. Occidenchthonius serranoi n. sp., female holotype. 311, anterior margin of carapace, partial view; 312, carapace; 313, left chelicera; 314, fingers of left chelicera, partial view; 315, left chela, antiaxial view.
FIGURES 304–308. Occidenchthonius riopar n in Revision of the Ephippiochthonius complex in the Iberian Peninsula, Balearic Islands and Macaronesia, with proposed changes to the status of the Chthonius subgenera (Pseudoscorpiones, Chthoniidae)
FIGURES 304–308. Occidenchthonius riopar n. sp., female holotype. 304, anterior margin of carapace, partial view; 305, carapace; 306, left chelicera; 307, fingers of left chelicera, partial view; 308, left chela, antiaxial view.
FIGURE 309 in Revision of the Ephippiochthonius complex in the Iberian Peninsula, Balearic Islands and Macaronesia, with proposed changes to the status of the Chthonius subgenera (Pseudoscorpiones, Chthoniidae)
FIGURE 309. Occidenchthonius ruizporteroae (Carabajal Márquez, García Carrillo & Rodríguez Fernández, 2001) n. comb., female paratype, left chela, antiaxial view.
FIGURE 318 in Revision of the Ephippiochthonius complex in the Iberian Peninsula, Balearic Islands and Macaronesia, with proposed changes to the status of the Chthonius subgenera (Pseudoscorpiones, Chthoniidae)
FIGURE 318. Occidenchthonius tenerifae (Mahnert, 2011) n. comb., female holotype, left chela, antiaxial view. FIGURE 319. Occidenchthonius ventalloi (Beier, 1939) n. comb., male, Cova del Candil, Tous, Valencia province, Spain, left chela, antiaxial view.
FIGURES 286–290. Occidenchthonius murcia n in Revision of the Ephippiochthonius complex in the Iberian Peninsula, Balearic Islands and Macaronesia, with proposed changes to the status of the Chthonius subgenera (Pseudoscorpiones, Chthoniidae)
FIGURES 286–290. Occidenchthonius murcia n. sp., female holotype. 286, anterior margin of carapace, partial view; 287, carapace; 288, left chelicera; 289, fingers of left chelicera, partial view; 290, right chela, antiaxial view.
FIGURE 303 in Revision of the Ephippiochthonius complex in the Iberian Peninsula, Balearic Islands and Macaronesia, with proposed changes to the status of the Chthonius subgenera (Pseudoscorpiones, Chthoniidae)
FIGURE 303. Occidenchthonius pinai (Zaragoza, 1985) n. comb., female holotype, right chela, antiaxial view.
FIGURES 291–295. Occidenchthonius oromii n in Revision of the Ephippiochthonius complex in the Iberian Peninsula, Balearic Islands and Macaronesia, with proposed changes to the status of the Chthonius subgenera (Pseudoscorpiones, Chthoniidae)
FIGURES 291–295. Occidenchthonius oromii n. sp., female holotype. 291, anterior margin of carapace, partial view; 292, carapace; 293, left chelicera; 294, fingers of left chelicera, partial view; 295, left chela, antiaxial view.
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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)
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DANDI Archive for NWB datasets
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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.