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125 results for “subterranean fauna”

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Supplementary material 1 from: Akmali V, Abedini S, Malekpour Fard Z (2022) Bat fauna and conservation assessment of Kurdistan caves, Iran. Subterranean Biology 42: 79-95. https://doi.org/10.3897/subtbiol.42.73282

Figures S1, S2

opencc-zeroFeb 2022View details →
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Figure 2 from: Akmali V, Abedini S, Malekpour Fard Z (2022) Bat fauna and conservation assessment of Kurdistan caves, Iran. Subterranean Biology 42: 79-95. https://doi.org/10.3897/subtbiol.42.73282

Figure 2 Four caves of Kurdistan with the highest priority for conservation programs: A Karaftu B Kamtaran C Darvish Ouliya D Kouna Sham-Sham.

opencc-by-4.0Feb 2022View details →
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Figure 1 from: Akmali V, Abedini S, Malekpour Fard Z (2022) Bat fauna and conservation assessment of Kurdistan caves, Iran. Subterranean Biology 42: 79-95. https://doi.org/10.3897/subtbiol.42.73282

Figure 1 16 possible alphanumerical BCVI values resulted from a combination of BP and BV scores. Cave priorities are categorized into three groups: High priority, medium priority, and Low priority.

opencc-by-4.0Feb 2022View details →
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Figure 14 in An overview on the subterranean fauna from Central Asia

Figure 14. Pisces Balitoridae Paracobitis starostini (Parin, 1983), Provull gypsum Cave, Kugitangtau (Photo S.A.Smirnova).

opencc-by-4.0Mar 2019View details →
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Figure 12 in An overview on the subterranean fauna from Central Asia

Figure 12. Copepoda: A, B = Bryocyclops jankowskajae Monchenko, 1972. Isopoda: C = Microcharon halophilus Birstein & Ljovuschkin, 1949.

opencc-by-4.0Mar 2019View details →
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Figure 11 in An overview on the subterranean fauna from Central Asia

Figure 11. Cladocera: A = Ceriodaphnia laticauda deserticola Manuilova, 1972. Ostracoda: B = Cavernocypris subterranea (Wolf, 1919); (after Akatova, 1972). Acari, Limnohalacaridae: C = Soldanellonyx chappuisi Walter, 1917 (after Imamura, 1968).

opencc-by-4.0Mar 2019View details →
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Figure 9 in An overview on the subterranean fauna from Central Asia

Figure 9. Paleogeographic configuration of the Parathethys domain during Late Romanian (3, 4-1,8 Ma). (After Olteanu & Jipa, 2006, simplified, and after Popov et al., 2004). (See the location of the Akchagilian Basin).

opencc-by-4.0Mar 2019View details →
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Figure 8 in An overview on the subterranean fauna from Central Asia

Figure 8. Cupp-Coutunn Cave (Kap Kutan) (Lebap Province). Gorgeous Cave systems with enormous speleothems of aragonite and gypsum. Some calcite crystals are almost 2 m long; aragonite crystals form something similar to snowwhite forest. Total length of cave system exceeds 80 km, the longest cave is Kap Kutan II - 57 km, and cave is up to 1,017 m deep. (Text and photo by V. Maltsev).

opencc-by-4.0Mar 2019View details →
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Figures 6-7. 6 in An overview on the subterranean fauna from Central Asia

Figures 6-7. 6 Sketch of the Kugitangtau Mountain ridge with the location of several cave systems. (After Maltsev & Self, 1992). 7 Right corner. Sketch of the Kaptar-Khana Cave (Khodjambass district). (After V. Andreyev, in Birstein & Ljovuschkin, 1965; modified).

opencc-by-4.0Mar 2019View details →
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Figure 3. Drawing out water from a well with a in An overview on the subterranean fauna from Central Asia

Figure 3. Drawing out water from a well with a ram skin (~100 l, volume), south of Kyzyl-Kum desert (Photo A. Jankowskaya, 1972).

opencc-by-4.0Mar 2019View details →
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Fig. 9 in A new cyclopoid copepod from Korean subterranean waters reveals an interesting connection with the Central Asian fauna (Crustacea: Copepoda: Cyclopoida)

Fig. 9. Disjunct distribution of the genus Monchenkocyclops gen. nov. in East Asia and Central Asia. Map from Google Earth.

opencc-by-4.0Aug 2012View details →
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Fig. 8 in A new cyclopoid copepod from Korean subterranean waters reveals an interesting connection with the Central Asian fauna (Crustacea: Copepoda: Cyclopoida)

Fig. 8. Scanning electron micrographs of Monchenkocyclops changi gen. et sp. nov., A. paratype female. B-D. paratype male: A. anal somite and caudal rami, dorsal view (most caudal setae broken off). B. proximal part of antennula, dorsal view. C. middle part of antennula, dorsal view. D. distal part of antennula, dorsal view. Scale bars 40 µm (A-C) and 20 µm (D).

opencc-by-4.0Aug 2012View details →
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Figure 1 from: Gallão JE, Bichuette ME (2018) Brazilian obligatory subterranean fauna and threats to the hypogean environment. ZooKeys 746: 1-23. https://doi.org/10.3897/zookeys.746.15140

Figure 1 Map of Brazil with main rock groups, karst areas, and formations with obligatory cave-dwelling species. Threats are indicated by letters as follows: A Minig B Reservoir construction C Deforestation for pastures D Deforestation for agriculture E Pollution of subterranean drainages F Tourism G Land conflict H Road construction, I Lowering of water table J Small hydroelectric power station buildings, K Pesticides L Natural gas and oil exploration. For Bambuí group, we grouped as follows (see Table 1 for distinction): Mambaí region - Mambaí and Posse municipalities; Distrito Federal region - Distrito Federal region plus Formosa and Padre Bernardo municipalities; Presidente Olegário region - Presidente Olegário and Vazante municipalities; Serra da Canastra region - São Roque de Minas, Arcos and Pains municipalities; Cordisburgo region - Cordisburgo, Matozinhos, Sete Lagoas, Morro do Pilar, Monjolos and Lagoa Santa municipalities; Montes Claros region - Montes Claros, Coração de Jesus and Luislândia municipalities.

opencc-by-4.0Apr 2018View details →
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Supplementary material 1 from: Bichuette ME, Trajano E (2018) Diversity of Potamolithus (Littorinimorpha, Truncatelloidea) in a high-diversity spot for troglobites in southeastern Brazil: role of habitat fragmentation in the origin of subterranean fauna, and conservation status. Subterranean Biology 25: 61-88. https://doi.org/10.3897/subtbiol.25.23778

Morphometric data :

opencc-zeroMay 2018View details →
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Figure 9 from: Bichuette ME, Trajano E (2018) Diversity of Potamolithus (Littorinimorpha, Truncatelloidea) in a high-diversity spot for troglobites in southeastern Brazil: role of habitat fragmentation in the origin of subterranean fauna, and conservation status. Subterranean Biology 25: 61-88. https://doi.org/10.3897/subtbiol.25.23778

Figure 9 Boxplots showing shell heights on Potamolithus spp. Horizontal Bar, median; vertical bar, whiskers with minimal and maximum observations. 1 P. ribeirensis 2 Potamolithus sp. 1 3 P. karsticus 4 Potamolithus sp. 2 5 Potamolithus sp. 3 6 Potamolithus sp. 4 7 Potamolithus sp. 5 8 Potamolithus sp. 6 9 Potamolithus sp. 7 10 P. troglobius 11 Potamolithus aff. troglobius 12 Potamolithus sp. 8 13 Potamolithus sp. 9 14 Potamolithus sp. 10 15 Potamolithus sp. 11 16 Potamolithus sp. 12. Black bars, epigean species; gray bars, troglophilic species; white bars, troglobitic species; circles, outliers; *, extremes.

opencc-by-4.0May 2018View details →
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Figure 8 from: Bichuette ME, Trajano E (2018) Diversity of Potamolithus (Littorinimorpha, Truncatelloidea) in a high-diversity spot for troglobites in southeastern Brazil: role of habitat fragmentation in the origin of subterranean fauna, and conservation status. Subterranean Biology 25: 61-88. https://doi.org/10.3897/subtbiol.25.23778

Figure 8 Potamolithus sp. 9 A (dorsal view) B (apertural view) C (apical view); Potamolithus sp. 10 D (dorsal view) E (apertural view) F (apical view); Potamolithus sp. 11 G (dorsal view) H (apertural view); Potamolithus sp. 12 I (dorsal view) J (apertural view) K (apical view). Scale bars: 1mm. (Photographs: LBR Fernandes).

opencc-by-4.0May 2018View details →
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Figure 7 from: Bichuette ME, Trajano E (2018) Diversity of Potamolithus (Littorinimorpha, Truncatelloidea) in a high-diversity spot for troglobites in southeastern Brazil: role of habitat fragmentation in the origin of subterranean fauna, and conservation status. Subterranean Biology 25: 61-88. https://doi.org/10.3897/subtbiol.25.23778

Figure 7 Potamolithus troglobius A (dorsal view) B (apertural view) C (apical view); Potamolithus aff. troglobius D (dorsal view) E (apertural view) F (apical view); Potamolithus sp. 8 G (dorsal view) H (apertural view) I (apical view). Scale bars: 1mm. (Photographs: LBR Fernandes).

opencc-by-4.0May 2018View details →
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Figure 6 from: Bichuette ME, Trajano E (2018) Diversity of Potamolithus (Littorinimorpha, Truncatelloidea) in a high-diversity spot for troglobites in southeastern Brazil: role of habitat fragmentation in the origin of subterranean fauna, and conservation status. Subterranean Biology 25: 61-88. https://doi.org/10.3897/subtbiol.25.23778

Figure 6 Potamolithus sp. 4 A (dorsal view) B (apertural view) C (apical view); Potamolithus sp. 5 D (dorsal view) E (apertural view) F (apical view); Potamolithus sp. 6 G (dorsal view) H (apertural view); Potamolithus sp. 7 I (dorsal view) J (apertural view) K (apical view). Scale bars: 1 mm. (Photographs: LBR Fernandes).

opencc-by-4.0May 2018View details →
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Figure 5 from: Bichuette ME, Trajano E (2018) Diversity of Potamolithus (Littorinimorpha, Truncatelloidea) in a high-diversity spot for troglobites in southeastern Brazil: role of habitat fragmentation in the origin of subterranean fauna, and conservation status. Subterranean Biology 25: 61-88. https://doi.org/10.3897/subtbiol.25.23778

Figure 5 Potamolithus karsticus - A (dorsal view) B (apertural view); Potamolithus sp. 2 C (dorsal view) D (apertural view) E (apical view); Potamolithus sp. 3 F (dorsal view) G (apertural view) H (apical view). Scale bars: 1mm. (Photographs: LBR Fernandes).

opencc-by-4.0May 2018View details →
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Figure 4 from: Bichuette ME, Trajano E (2018) Diversity of Potamolithus (Littorinimorpha, Truncatelloidea) in a high-diversity spot for troglobites in southeastern Brazil: role of habitat fragmentation in the origin of subterranean fauna, and conservation status. Subterranean Biology 25: 61-88. https://doi.org/10.3897/subtbiol.25.23778

Figure 4 Potamolithus ribeirensis - A (dorsal view) B (apertural view); Potamolithus sp. 1 C (dorsal view) D (apertural view) E (apical view). Scale bars: 1mm. (Photographs: LBR Fernandes).

opencc-by-4.0May 2018View details →

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