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Figure 2 from: Fernandes CS, Batalha MA, Bichuette ME (2019) Dark diversity in the dark: a new approach to subterranean conservation. Subterranean Biology 32: 69-80. https://doi.org/10.3897/subtbiol.32.38121
Figure 2 Representative photographs of sampled caves. A Lapa do Angélica (photo: A. Gambarini) B entrance of Lapa da Terra Ronca I (photo: ME Bichuette) C Guano pile inside Lapa do São Bernardo (photo: A. Gambarini).
Legacy Partner Archive: (0090) Conservation Biology of Freshwater Turtles and Tortoises Resource
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Figure 2 from: Assmann T (2021) Terry Erwin's legacy: from taxonomy and natural history to biodiversity research and conservation biology. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 23-39. https://doi.org/10.3897/zookeys.1044.68650
Figure 2 Example of Terry Erwin's diverse illustrations: habitus, male genitalia (median lobe of aedeagus, with parameres) in dorsal, ventral, and lateral view with enlarged details of the internal sac and female genitalia from Lachnophorus species. From Erwin and Zamorano (2014: figs 15–18).
Figure 4 from: Assmann T (2021) Terry Erwin's legacy: from taxonomy and natural history to biodiversity research and conservation biology. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 23-39. https://doi.org/10.3897/zookeys.1044.68650
Figure 4 Bombardier beetles of the genus Pheropsophus, habitat of Pheropsophus africanus, and a Gryllotalpa specimen from the given habitat AP. (s. str.) aequinoctionalis (Linnaeus, 1763) BP. (Stenaptinus) jessoensis A. Morawitz, 1862 CP. (Stenaptinus) hispanus (Dejean, 1824) DP. (Stenaptinus) africanus (Dejean, 1825) E habitat of P. africanus (Jordan, northeast of Dead Sea) FGryllotalpa spec.
Figure 1 from: Assmann T (2021) Terry Erwin's legacy: from taxonomy and natural history to biodiversity research and conservation biology. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 23-39. https://doi.org/10.3897/zookeys.1044.68650
Figure 1 Example of Terry Erwin's line drawings: dorsal aspects of three Halocoryza species and the median lobe of aedeagus of two Halocoryza species. From Erwin (2011: figs 4–8).
Figure 3 from: Assmann T (2021) Terry Erwin's legacy: from taxonomy and natural history to biodiversity research and conservation biology. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 23-39. https://doi.org/10.3897/zookeys.1044.68650
Figure 3 Example of Terry Erwin's habitus illustrations: habitus of four Straneotia species. From Erwin and Aldebron (2018: fig. 14).
Figure 1b from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 1b - Front covers of the first European meetings, ECM 1–8 and that of Hamburg 1984 (centre cover) (see also Table 2).
Figure 2 from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 2 - Different pitfall types. A = Jar or yoghurt can. B and C = traps with an outer can to make collecting of the sample easier. B = funnel trap with small jar. C = trap for moist biotopes (the outer can contains gravel or stones to prevent the can from being pushed up by groundwater). V = preservative (usually formaldehyde 3–4% or propylene glycol), S = stones or gravel.
Figure 1a from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 1a - Participants of the first European Carabidologist Meeting in Wijster, 1969. From left to right: Vlijm, Van der Aart, Lindroth, Stein, Wijmans, Hengeveld, Palmén, Van Dijk, Richter, Venema, Mook, Thiele, Tjallingii, Den Boer, Haeck, Neumann, Meijer.
Figure 1c from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 1c - Front covers of the last five ECMs and of a few major carabidology publications (Thiele 1977; Ball et al. 1998; Erwin et al. 1979; Noonan et al. 1992) (see also Table 2).
Figure 3 from: Espinasa L, Espinasa M, Fenolio D, Slay M, Niemiller M (2014) Distribution and conservation status of Speleonycta ozarkensis (Insecta, Zygentoma, Nicoletiidae) from caves of the Ozark Highlands of Arkansas and Oklahoma, USA. Subterranean Biology 14: 51-62. https://doi.org/10.3897/subtbiol.14.8275
Figure 3 - When Speleonycta ozarkensis was originally described (Espinasa et al. 2010), the diagnosis states that "tibia of second leg very stout (2 times longer than wide) with a large bulge with 3 distinctly long, sclerotized, and curved macrochaetae", as shown in (A). This description was based on a single specimen that had already been dissected and mounted in a fixed slide, with the legs isolated from each other. Examination of new specimens (B) shows that the order of legs was misidentified and that the modification is actually on the first leg pair.
Figure 4 from: Espinasa L, Espinasa M, Fenolio D, Slay M, Niemiller M (2014) Distribution and conservation status of Speleonycta ozarkensis (Insecta, Zygentoma, Nicoletiidae) from caves of the Ozark Highlands of Arkansas and Oklahoma, USA. Subterranean Biology 14: 51-62. https://doi.org/10.3897/subtbiol.14.8275
Figure 4 - Parasitic acari on thoracic notas of Speleonycta ozarkensis from AD85 Cave. They await taxonomic description.
Figure 1 from: Espinasa L, Espinasa M, Fenolio D, Slay M, Niemiller M (2014) Distribution and conservation status of Speleonycta ozarkensis (Insecta, Zygentoma, Nicoletiidae) from caves of the Ozark Highlands of Arkansas and Oklahoma, USA. Subterranean Biology 14: 51-62. https://doi.org/10.3897/subtbiol.14.8275
Figure 1 - Distribution of Speleonycta ozarkensis. Numbered localities correspond to those listed in Table 1.
Figure 1 from: Souza-Silva M, Ferreira RL (2015) Cave invertebrates in Espírito Santo state, Brazil: a primary analysis of endemism, threats and conservation priorities. Subterranean Biology 16: 79-102. https://doi.org/10.3897/subtbiol.16.5227
Figure 1 - Distribution of 15 caves in the Atlantic Forest in the state of Espírito Santo, with invertebrate fauna inventoried in this study. Source: SOS Mata Atlântica (2011).
Figure 8 from: Souza-Silva M, Ferreira RL (2015) Cave invertebrates in Espírito Santo state, Brazil: a primary analysis of endemism, threats and conservation priorities. Subterranean Biology 16: 79-102. https://doi.org/10.3897/subtbiol.16.5227
Figure 8 - Human alterations in caves of Espírito Santo, Brazil. A religious use in granite cave in Venda Nova dos Imigrantes B transformation of granitic cave into a church in Itaimbé-Itaguassu C deforestation surrounding cave in Ecoporanga, D drainage exploitation in granite cave near Pedro Canário E use of cave as goat corral F road construction destroying cave chambers in Vargem Alta G and I Limoeiro cave entrance with religious and tourist use in Conceição de Castelo H using limestone cave as a timber-yard in Vargem Alta.
Figure 7 from: Souza-Silva M, Ferreira RL (2015) Cave invertebrates in Espírito Santo state, Brazil: a primary analysis of endemism, threats and conservation priorities. Subterranean Biology 16: 79-102. https://doi.org/10.3897/subtbiol.16.5227
Figure 7 - Almost significant differences between the diversity and total and relative richness of invertebrates in caves that develop in carbonate rocks and magma in the state of Espírito Santo. Average, ± SE, ± SD.
Figure 3 from: Souza-Silva M, Ferreira RL (2015) Cave invertebrates in Espírito Santo state, Brazil: a primary analysis of endemism, threats and conservation priorities. Subterranean Biology 16: 79-102. https://doi.org/10.3897/subtbiol.16.5227
Figure 3 - Some of the troglomorphic invertebrates sampled in 15 caves in Atlantic forest at Espírito Santo state, Brazil. A Escadabiidae, B Trachelipodidae, C Pseudonannolene sp., D Cryptodesmidae, E Trichopolidesmydae, F Zygentoma, G Trichorhina sp.
Figure 2 from: Souza-Silva M, Ferreira RL (2015) Cave invertebrates in Espírito Santo state, Brazil: a primary analysis of endemism, threats and conservation priorities. Subterranean Biology 16: 79-102. https://doi.org/10.3897/subtbiol.16.5227
Figure 2 - Composition and richness of invertebrate taxa collected in 15 caves in the state of Espírito Santo, Brazil.
Figure 6 from: Souza-Silva M, Ferreira RL (2015) Cave invertebrates in Espírito Santo state, Brazil: a primary analysis of endemism, threats and conservation priorities. Subterranean Biology 16: 79-102. https://doi.org/10.3897/subtbiol.16.5227
Figure 6 - A Significant relationship of the increased richness of collected invertebrates with the increase in size of caves in limestone and granitic rocks and B no significant relationship without limestone caves in the state of Espírito Santo.
Figure 9 from: Souza-Silva M, Ferreira RL (2015) Cave invertebrates in Espírito Santo state, Brazil: a primary analysis of endemism, threats and conservation priorities. Subterranean Biology 16: 79-102. https://doi.org/10.3897/subtbiol.16.5227
Figure 9 - A Distribution of cave biological relevance B cave impacts category and C cave fauna vulnerability in the state of Espírito Santo. Gray shading on maps represents remnants of the Atlantic Forest.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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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.