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2,401 results for “subterranean”
Data for "Let's not wing it: Effective conservation of subterranean-roosting bats"
<p>Database as both excel (.xls) and tab-delimited (.csv) associated with the publication: </p> <p>Meierhofer M.B., et al. (2023) Let’s not wing it: Effective conservation of subterranean-roosting bats. <em>Conservation biology.</em></p> <p>Please refer to the main publication for a detailed description. An explanation of the database is available in the Metadata file uploaded alongside the database. R code to reproduce the analysis pipeline is available on GitHub:</p> <p>https://github.com/StefanoMammola/Analysis_Cave_bat_conservation.git</p>
Indicative distribution map for Ecosystem Functional Group SF2.1 Water pipes and subterranean canals
<p>This archive contains indicative distribution maps and profiles for <strong>SF2.1 Water pipes and subterranean canals</strong>, a ecosystem functional group (EFG, level 3) of the <a href="https://global-ecosystems.org/">IUCN Global Ecosystem Typology</a> (v2.0). Please refer to Keith <em>et al.</em> (2020) for details.</p> <p>The descriptive profiles provide brief summaries of key ecological traits and processes, maps are indicative of global distribution patterns, and are not intended to represent fine-scale patterns. The maps show areas of the world containing major (value of 1, coloured red) or minor occurrences (value of 2, coloured yellow) of each ecosystem functional group. Minor occurrences are areas where an ecosystem functional group is scattered in patches within matrices of other ecosystem functional groups or where they occur in substantial areas, but only within a segment of a larger region. Given bounds of resolution and accuracy of source data, the maps should be used to query which EFG are likely to occur within areas, rather than which occur at particular point locations. Detailed methods and references for the maps are included in the profile (xml format).</p>
Indicative distribution map for Ecosystem Functional Group S2.1 Anthropogenic subterranean voids
<p>This archive contains indicative distribution maps and profiles for <strong>S2.1 Anthropogenic subterranean voids</strong>, a ecosystem functional group (EFG, level 3) of the <a href="https://global-ecosystems.org/">IUCN Global Ecosystem Typology</a> (v2.0). Please refer to Keith <em>et al.</em> (2020) for details.</p> <p>The descriptive profiles provide brief summaries of key ecological traits and processes, maps are indicative of global distribution patterns, and are not intended to represent fine-scale patterns. The maps show areas of the world containing major (value of 1, coloured red) or minor occurrences (value of 2, coloured yellow) of each ecosystem functional group. Minor occurrences are areas where an ecosystem functional group is scattered in patches within matrices of other ecosystem functional groups or where they occur in substantial areas, but only within a segment of a larger region. Given bounds of resolution and accuracy of source data, the maps should be used to query which EFG are likely to occur within areas, rather than which occur at particular point locations. Detailed methods and references for the maps are included in the profile (xml format).</p>
The World Asellidae database and phylogeny: a collaborative backbone resource for comparative studies of subterranean life evolution
<p>Supplementary material for the article "The World Asellidae database and phylogeny: a collaborative backbone resource for comparative studies of subterranean life evolution"</p> <p>- SI Figure 5: The World Asellidae phylogeny with credibility Intervals for the age of the nodes. Node labels of the phylogeny indicate the 95% credibility intervals of the estimated dates.</p> <p>- SI Table 1: Metadata for the 2093 COI sequences used in the study.</p> <p>- SI Table 4: Alignment of the 2093 COI sequences used for the delimitation of MOTUs.</p> <p>- SI Table 5: Alignment of the 424 COI sequences used for the four-gene dated phylogeny.</p> <p>- SI Table 6: Alignment of the 424 16S sequences used for the four-gene dated phylogeny.</p> <p>- SI Table 7: Alignment of the 424 FASTKD4 sequences used for the four-gene dated phylogeny.</p> <p>- SI Table 8: Alignment of the 424 28S sequences used for the four-gene dated phylogeny.</p> <p>- SI Table 9: Metadata for the DNA sequences used for the 4-gene dated phylogeny.</p> <p>- SI Table 11: Data on body size, sexual body size dimorphism, habitat specialization and habitat size used in comparative analyses.</p> <p>- SI Table 12: Metadata for the DNA sequences deposited in NCBI as part of this study.</p>
Figs 202–204. 202 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 202–204. 202. Plusiocampa (Stygiocampa) christiani Condé & Bareth, 1996, from Lazareva Cave, Serbia (photo: Dragan Antić). 203. Plusiocampa (Plusiocampa) lagari Sendra & Condé, 1987, from Chorros Cave, Albacete, Spain (photo: Toni Pérez). 204. Plusiocampa (Plusiocampa) hoffmanni Sendra & Paragamian sp. nov., from Splialio Sfentone Trypa Cave, Crete (photo: Kaloust Paragamian).
Figs 193–195 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 193–195. Plusiocampa (Venetocampa) ferrani Sendra & Delić sp. nov., holotype, ♂, from Ferranova buža, Vrhnika, Slovenia (MZB 2019-1031). 193. Pronotum, mesonotum and metanotum, left side. 194. Metathoracic leg. 195. Urotergites VII–VIII and abdominal segment IX, right side. Scale bar: 0.2 mm.
Figs 131–134 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 131–134. Plusiocampa (Plusiocampa) schweitzeri Condé, 1947, from Govještica, Banja stijena, Rogatica, Bosnia and Herzegovina (Coll. AS). 131. Medial antennomere, latero-distal view. 132. Medial portion of a gouge sensillum, detail. 133. Surface of metanotum, detail. 134. Distal portion of tarsus and pretarsus, lateral view.
Figs 113–118 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 113–118. Plusiocampa (Plusiocampa) lagari Sendra & Condé, 1987, adult ♂♂, from Farallón Cave, Riopar, Albacete, Spain (Coll. AS). 113. Urosternite I of a large adult ♂. 114. Urosternite I. 115. Distal portion of appendage of a urosternite. 116. Detail of posterior portion of urosternite I with glandular g1 setae. 117. Urosternite VIII. 118. Lateral part of urosternite VII, with stylus.
Figs 196–201 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 196–201. Paratachycampa hispanica Bareth & Condé, 1981, from Cova dels Encenalls, Sant Mateu, Spain (Coll. AS). 196. Lateral distal view of a medial antennomere with gouge sensilla. 197. Basal view of a gouge sensillum. 198. Pretarsus of a metathoracic leg. 199. Lateral view of pretarsus, metathoracic leg. 200. Distal part of lateral process of pretarsus, metathoracic leg. 201. Apical part of lateral process of pretarsus, metathoracic leg.
Figs 59–64 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 59–64. Plusiocampa (Plusiocampa) hoffmanni Sendra & Paragamian sp. nov., from Varathro Stou Bokou ton Poro, Krousonas, Crete (59, 62–64) and Varathro Mythia Kabathoura, Rethymno, Crete (60–61) (Coll. AS). 59. Cupuliform organ. 60. Olfactory chemoreceptors. 61. Medial antennomere. 62. Latero-distal view of medial antennomere with gouge sensilla. 63. Gouge sensilla, detail. 64. Gouge sensilla of medial antennomere.
Figs 42–43 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 42–43. Plusiocampa (Plusiocampa) bulgarica Silvestri, 1931, from Sbrikovata Cave, Pamporovo, Bulgaria (Coll. AS). 42. Pretarsus, dorsal view. 43. Pretarsus, latero-posterior view.
Figs 51–52 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 51–52. Plusiocampa (Plusiocampa) fagei Condé, 1955, from Cova Sa Gleda, Manacor, Mallorca Island (Coll. AS). 51. Lateral distal side of a medial antennomere. 52. Detail of a gouge sensillum.
Figs 30–35 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 30–35. Plusiocampa (Plusiocampa) bonneti condei Sendra & Escolà, 2004, from Cova del Toll, Moià, Barcelona, Spain (Coll. AS). 30. Cupuliform organ. 31. Medial antennomere. 32. Frontal process. 33. Lateral distal view of medial antennomere, with gouge and coniform sensilla 34. Protruding frontal process. 35. Surface of metanotum.
Figs 24–29 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 24–29. Plusiocampa (Plusiocampa) boneti boneti Condé, 1948, ♂, from Cova Mora, Huesca, Spain (Coll. AS). 24. Urosternite I, right side. 25. Urosternite I, detail of glandular g 1-setae. 26. Macrosetae of urosternite I. 27. Appendage of urosternite I, glandular a1 and a2 setae. 28. Stylus of left urosternite VI. 29. Distal stylus of left urosternite VI, detail.
Figs 3–8 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 3–8. Plusiocampa (Dydimocampa) evallonychia Silvestri, 1949, from Mamut-Tshokrak Cave, Baidarsko-Balaklavsky karst massif, Crimean Peninsula (Coll. AS). 3. Cupuliform organ. 4. Lateral side of a middle antennomere with several gouge sensilla. 5. Frontal process. 6. Surface of metanotum. 7. Metathoracic claws. 8. Urosternites VII–IX.
Figs 120–123 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 120–123. Plusiocampa (Plusiocampa) pouadensis pouadensis (Denis, 1930), from Grotte Pouade, Banyuls-sur-Mer, France (Coll. AS). 120. ♂, urosternite I, right side, with glandular g1, a1 and a2 setae. 121. ♀, urosternite I. 122. Surface of urosternite I, detail. 123. ♀, urosternite I appendage. Scale bar: 120 = 0.2 mm.
Figs 155–156 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 155–156. Plusiocampa (Plusiocampa) ternovensis Sendra & Borko sp. nov. 155. Paratype, ♂, 4.7 mm long (PMSL Diplura-002); urosternite I, left side. 156. ♀, 5.3 mm long (Coll. AS); urosternite I, left side. Scale bar: 0.1 mm.
Fig. 119 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Fig. 119. Plusiocampa (Plusiocampa) lindbergi Condé, 1956, ♂, 4.6 mm long, from MSS in Gérakas, Greece (Coll. AS). First urosternite, right side, glandular g 1 and a 1 setae. Scale bar: 0.1 mm.
Figs 187–192 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 187–192. Plusiocampa (Stygiocampa) remyi Condé, 1947, from Njegoš pećina, Njeguši, Kotor, Montenegro (187–190, 192) and Đatlo pećina, Lebršnik, Gacko, Bosnia and Herzegovina (191) (Coll. AS). 187. ♂, urosternite I (appendages missing). 188. ♂, edge of urosternite I, detail. 189. ♂, macrosetae on urosternite I, detail. 190. Lateral posterior view of urosternite V. 191. Second cercal article. 192. ♂, urosternite VIII.
Figs 145–148 in Flourishing in subterranean ecosystems: Euro-Mediterranean Plusiocampinae and tachycampoids (Diplura, Campodeidae)
Figs 145–148. Plusiocampa (Plusiocampa) strouhali cavicola Vornatscher, 1943, from Odelsteinhöhle, Styria, Austria (Coll. AS). 145. Distal portion of tarsus and pretarsus. 146. Dorsal view of a posterior claw, detail. 147. Lateral portion of urosternite VI with stylus and abdominal eversible vesicle. 148. Pretarsus, laterodorsal view.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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