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Supplementary material 3 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Monthly temperature, relative humidity and light intensity in Baraccone Cave for each sampling area
Supplementary material 2 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Fauna observed in Baraccone Cave
Supplementary material 5 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Percentage of minerals found in each sampling area
Figure 5 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Figure 5 A trend of Equitability (Pielou's evenness), Dominance (1-Simpson index) and Shannon diversity (H) indices from March 2017 to March 2018 B rarefaction curve (in red). In blue the 95% confidence interval.
Supplementary material 1 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Information on the study area
Figure 3 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Figure 3 A one-Way ANOSIM test. Wall in eight sites (A-H, Group 1–8), Ground in seven sites (A-E and G-H, Group 9–15) B similarity between ground (from AG to HG) and wall (from AW to HW) faunal samples (UPGMA clustering based on Jaccard similarity index - bootstrap values are shown under each node) C SIMPER Analysis. Taxa responsible for the observed differences between faunal assemblages in different sampling areas in percentage.
Figure 2 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Figure 2 Canonical Correspondence Analysis. Hypogean fauna related to environmental factors and mineral substratum A classes of ground fauna B orders of ground fauna (Arachnida, Entognatha and Insecta) with a number of specimens exceeding 5% of each considered class total C classes of parietal fauna D orders of parietal fauna (Arachnida and Insecta) with a number of specimens exceeding 5% of each considered class total.
Figure 1 from: Balestra V, Lana E, Carbone C, De Waele J, Manenti R, Galli L (2021) Don't forget the vertical dimension: assessment of distributional dynamics of cave-dwelling invertebrates in both ground and parietal microhabitats. Subterranean Biology 40: 43-63. https://doi.org/10.3897/subtbiol.40.71805
Figure 1 A Location of Baraccone Cave, Piedmont, Italy, and the entrance of the cave (photo by E. L.) B baraccone Cave map with monitoring areas. Red quadrats for ground fauna monitoring and blue triangles for parietal fauna monitoring (map by V. B. and R. Sella, photos by E. L. and V. B.).
Figures 12-13 from: Zeppelini D, Silva D, Palacios Vargas J (2014) A new species of Troglobius (Collembola, Paronellidae, Cyphoderinae) from a Brazilian iron cave. Subterranean Biology 14: 1-13. https://doi.org/10.3897/subtbiol.14.7355
Figures 12-13 - 12 Dental chaetae A (Troglobius ferroicus sp. n.), B (Troglobius brasiliensis), C (Troglobius coprophagus) 13 Dens and mucro A (Troglobius ferroicus sp. n.), B (Troglobius brasiliensis), C (Troglobius coprophagus).
Figures 4-8 from: Zeppelini D, Silva D, Palacios Vargas J (2014) A new species of Troglobius (Collembola, Paronellidae, Cyphoderinae) from a Brazilian iron cave. Subterranean Biology 14: 1-13. https://doi.org/10.3897/subtbiol.14.7355
Figures 4-8 - 4 Labial triangle, Troglobius ferroicus sp. n. 5 Metatrochanteral organ, Troglobius ferroicus sp. n. 6 Unguis I, Troglobius ferroicus sp. n. 7 Unguis II, Troglobius ferroicus sp. n. 8 Unguis III, Troglobius ferroicus sp. n.
Figure 3 from: Zeppelini D, Silva D, Palacios Vargas J (2014) A new species of Troglobius (Collembola, Paronellidae, Cyphoderinae) from a Brazilian iron cave. Subterranean Biology 14: 1-13. https://doi.org/10.3897/subtbiol.14.7355
Figure 3 - Cephalic chaetotaxy A (Troglobius ferroicus sp. n.), B (Troglobius brasiliensis), C (Troglobius coprophagus).
Figures 1-2 from: Zeppelini D, Silva D, Palacios Vargas J (2014) A new species of Troglobius (Collembola, Paronellidae, Cyphoderinae) from a Brazilian iron cave. Subterranean Biology 14: 1-13. https://doi.org/10.3897/subtbiol.14.7355
Figures 1-2 - 1 Habitus, Troglobius ferroicus sp. n. 2 Antennal sensilla of apex of Ant. II, same type of sensilla seen on apex of Ant. III. Troglobius ferroicus sp. n.
Figure 3 from: Dörge D, Zaenker S, Klussmann-Kolb A, Weigand A (2014) Traversing worlds - Dispersal potential and ecological classification of Speolepta leptogaster (Winnertz, 1863) (Diptera, Mycetophilidae). Subterranean Biology 13: 1-16. https://doi.org/10.3897/subtbiol.13.6460
Figure 3 - Potential life-cycle of Speolepta leptogaster; egg-drawing modified after the descriptions of Plachter (1981).
Figure 4 from: Dörge D, Zaenker S, Klussmann-Kolb A, Weigand A (2014) Traversing worlds - Dispersal potential and ecological classification of Speolepta leptogaster (Winnertz, 1863) (Diptera, Mycetophilidae). Subterranean Biology 13: 1-16. https://doi.org/10.3897/subtbiol.13.6460
Figure 4 - Comparison between two larval stages of Speolepta leptogaster. A depicts the larger and probably older larva type A which on average is 10 mm long B depicts the smaller larva B type which is 5–10 mm long. Dotted regions depict areas of increased pigmentation, black regions illustrate maximum pigmentation.
Figure 1 from: Dörge D, Zaenker S, Klussmann-Kolb A, Weigand A (2014) Traversing worlds - Dispersal potential and ecological classification of Speolepta leptogaster (Winnertz, 1863) (Diptera, Mycetophilidae). Subterranean Biology 13: 1-16. https://doi.org/10.3897/subtbiol.13.6460
Figure 1 - CO1 haplotype network for Speolepta leptogaster. Haplotypes are numbered in sequence with their volume proportional to their frequency in the total dataset. Lines interconnecting the haplotypes illustrate the mutational course and the number of mutational steps between them. Numbers with letters within or alongside circles refer to Table 1.
Figure 6 from: Halse S, Pearson G (2014) Troglofauna in the vadose zone: comparison of scraping and trapping results and sampling adequacy. Subterranean Biology 13: 17-34. https://doi.org/10.3897/subtbiol.13.6991
Figure 6 - Cumulative numbers of species collected by different trapping protocols in three different areas in the Pilbara (see Fig. 3 for locations). A sample consists of one scraping event, one trapping event (with one or two traps), or the combined results of one scraping and one trapping event in the same hole.
Figure 5 from: Halse S, Pearson G (2014) Troglofauna in the vadose zone: comparison of scraping and trapping results and sampling adequacy. Subterranean Biology 13: 17-34. https://doi.org/10.3897/subtbiol.13.6991
Figure 5 - Bias in capture of different orders of troglofauna in the Pilbara using scraping and trapping.
Figure 3 from: Halse S, Pearson G (2014) Troglofauna in the vadose zone: comparison of scraping and trapping results and sampling adequacy. Subterranean Biology 13: 17-34. https://doi.org/10.3897/subtbiol.13.6991
Figure 3 - Pilbara and Yilgarn regions of Western Australia, showing some towns in the Pilbara and Areas 1, 2 and 3 where species accumulation curves were calculated.
Figure 1 from: Halse S, Pearson G (2014) Troglofauna in the vadose zone: comparison of scraping and trapping results and sampling adequacy. Subterranean Biology 13: 17-34. https://doi.org/10.3897/subtbiol.13.6991
Figure 1 - Diamond drilled geological core showing structure of the subterranean habitat from surface to 40 m depth.
Figure 2 from: Halse S, Pearson G (2014) Troglofauna in the vadose zone: comparison of scraping and trapping results and sampling adequacy. Subterranean Biology 13: 17-34. https://doi.org/10.3897/subtbiol.13.6991
Figure 2 - Troglofauna sampling equipment. A net for scraping and trap: i, net assembled; ii, collar, catch tube and protective brass case disassembled; iii, trap B scraping a drill hole in the Pilbara.
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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
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.