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1,118 results for “subterranean biology”
Figure 12 from: Dumnicka E, Wojtal AZ (2021) Revalidation of the stygobiotic species Haber zavreli (Hrabĕ, 1942) (Clitellata, Naididae, Tubificinae) with discussion on the closely related species Haber speciosus (Hrabĕ, 1931) and Haber monfalconensis (Hrabĕ, 1966). Subterranean Biology 39: 143-156. https://doi.org/10.3897/subtbiol.39.68397
Figure 12 Reconstruction of the genital organs (from sagittal sections) AHaber speciosus (Hrabĕ, 1931) BHaber monfalconensis (Hrabĕ, 1966) CHaber zavreli (Hrabĕ, 1942). Abbreviations on the figure: at – atrium; de – ductus ejaculatorius; ff – femal funnel; mf – male funnel; o – ovary; pa – penial apparatus; pr – prostate gland; pss – penial setal sac; ss – sperm sac; st – spermatheca; sts – spermathecal seta; t – testis; vd – vas deferens. In original paper figure C without scale bar. (A after Holmquist 1978B, C after Holmquist 1979).
Figures 1-3 from: Dumnicka E, Wojtal AZ (2021) Revalidation of the stygobiotic species Haber zavreli (Hrabĕ, 1942) (Clitellata, Naididae, Tubificinae) with discussion on the closely related species Haber speciosus (Hrabĕ, 1931) and Haber monfalconensis (Hrabĕ, 1966). Subterranean Biology 39: 143-156. https://doi.org/10.3897/subtbiol.39.68397
Figures 1-3 Haber zavreli (Hrabĕ, 1942) 1 fragment of the body with hair seta and tiny wrinkles seen on dorsal side 2 shape of dorsal pectinate setae: 2A in V segment 2B in VII segment 2C in XV segment 3 shape of ventral setae: 3A in IV segment 3B in VIII segment 3C in XV segment.
Figure 4 from: Dumnicka E, Wojtal AZ (2021) Revalidation of the stygobiotic species Haber zavreli (Hrabĕ, 1942) (Clitellata, Naididae, Tubificinae) with discussion on the closely related species Haber speciosus (Hrabĕ, 1931) and Haber monfalconensis (Hrabĕ, 1966). Subterranean Biology 39: 143-156. https://doi.org/10.3897/subtbiol.39.68397
Figure 4 Haber zavreli (Hrabĕ, 1942) A spermathecal seta in glandular sac B penial seta in glandular sac.
Figures 8-11 from: Dumnicka E, Wojtal AZ (2021) Revalidation of the stygobiotic species Haber zavreli (Hrabĕ, 1942) (Clitellata, Naididae, Tubificinae) with discussion on the closely related species Haber speciosus (Hrabĕ, 1931) and Haber monfalconensis (Hrabĕ, 1966). Subterranean Biology 39: 143-156. https://doi.org/10.3897/subtbiol.39.68397
Figures 8-11 8Haber zavreli (Hrabĕ, 1942); Left: wrinkles on body surface; right: shape of the somatic setae a ectal part of ventral setae in segment III b in segment VIII c in posterior segments d anterior dorsal seta (after Hrabĕ 1942) 9Haber speciosus (Hrabĕ, 1931); anterior somatic setae a ventral seta in segment II b dorsal setae (after Hrabĕ 1931) 10 somatic setae of Haber speciosus forms described by Milligan (1986)a–d ventral setae: H. speciosus simsia anterior seta b posterior seta; H. speciosus fluminialisc anterior seta d posterior seta e–h dorsal setae: H. speciosus simsie anterior seta f posterior seta; H. speciosus fluminialisg anterior seta h posterior seta (after Milligan 1986, modified) 11Haber simsi (Brinkhurst, 1966) a anterior ventral seta b anterior dorsal seta (after Brinkhurst 1966) c anterior dorsal setae d posterior dorsal setae e anterior ventral setae f posterior ventral setae (after Bird and Ladle 1981).
Figures 5-7 from: Dumnicka E, Wojtal AZ (2021) Revalidation of the stygobiotic species Haber zavreli (Hrabĕ, 1942) (Clitellata, Naididae, Tubificinae) with discussion on the closely related species Haber speciosus (Hrabĕ, 1931) and Haber monfalconensis (Hrabĕ, 1966). Subterranean Biology 39: 143-156. https://doi.org/10.3897/subtbiol.39.68397
Figures 5-7 Haber zavreli (Hrabĕ, 1942) 5 Fragment of the body with spermathecal ampulla (marked by red frame) filled with long spermatozeugmata 6a fragment of vas deferens 6b penial apparatus 7 ectal part of male genital apparatus: a atria b prostate gland c ejaculatory duct.
Figures 13-15 from: Dumnicka E, Wojtal AZ (2021) Revalidation of the stygobiotic species Haber zavreli (Hrabĕ, 1942) (Clitellata, Naididae, Tubificinae) with discussion on the closely related species Haber speciosus (Hrabĕ, 1931) and Haber monfalconensis (Hrabĕ, 1966). Subterranean Biology 39: 143-156. https://doi.org/10.3897/subtbiol.39.68397
Figures 13-15 13 Shape of thickened basal membrane aH. speciosus (after Hrabĕ 1931) bH. speciosus speciosus (after Hrabĕ 1966) cH. speciosus sensu Brinkhurst (1966)dH. speciosus fluminialis from USA (after Milligan 1986) eH. speciosus simsi (after Milligan 1986) fH. zavreli (after Hrabĕ 1942) gH. monfalconensis (after Hrabĕ 1966) 14Haber vetus (Semernoy, 1982) a spermatheca b serrated hair seta c–e anterior dorsal setae c in segment II d in segment III e in segment V. Abbreviation on figure: ss – spermathecal seta (after Semernoy 1982, modified) 15Haber turquinae (Juget & Lafont, 1979) shape of setae a anterior ventral setae b anterior dorsal setae (after Juget and Lafont 1979).
Figure 5 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 5 Vertical distribution of species richness and relative abundances of Collembola life forms along scree profiles recorded by two different methods, Abbreviations: SS – soil samples, ST – subterranean traps, 5, 35, 65, 95 – soil/scree depth [cm], A – atmobionts, EP – epigeonts, H – hemiedaphobionts, EU – euedaphobionts, (for site abbreviations, see the "Material and methods" section).
Figure 6 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 6 Relationship between the relative abundance and the body length of dominant species for each collecting method (axis 1–species rank follows increasing body size), Abbreviations: SS – soil samples with dotted trend line, ST – subterranean traps with solid trend line (for species abbreviations, see the Appendices 1–5).
Figure 4 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 4 NMS ordination diagram of collembolan communities at five scree sites collected by two sampling methods; the variance explained by the x and y axes is 55% and 20%, respectively, Abbreviations: s – soil samples, t – subterranean traps, life forms: green – epigeonts, blue – hemiedaphobionts, red – euedaphobionts, (for site abbreviations, see the "Material and methods" section, for species abbreviations see the Appendices 1–5).
Figure 3 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 3 Rarefaction (solid line) and extrapolation (dotted line) of soil collembolan species richness from soil samples (SS) and sampling using subterranean traps (ST). Reference samples are indicated by solid circles, (for site abbreviations, see the "Material and methods" section).
Figure 2 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 2 Percentage share of Collembola species numbers and dominance recorded by two techniques at five study sites A species numbers (in columns) associated with the sampling method B relative abundance of species (numbers in columns indicate number of specimens), Abbreviations: SS – exclusively in soil samples, ST – exclusively in subterranean traps, both–shared by both methods (for site abbreviations, see the "Material and methods" section).
Figure 1 from: Prado GC, Viana ACM, Milko DA, Ferreira RL (2021) Chthonius kirghisicus (Pseudoscorpiones, Chthoniidae), a new cave-dwelling species from Kyrgyzstan. Subterranean Biology 40: 27-41. https://doi.org/10.3897/subtbiol.40.67303
Figure 1 Chthonius kirghisicus sp. nov. holotype A carapace, showing distribution of setae and furrows B left chelicera, antiaxial view C detail of anterior margin of carapace D detail of epistome, showing highly dentate margin. Scale bars: 0.5 mm (A); 0.2 mm (B).
Figure 5 from: Prado GC, Viana ACM, Milko DA, Ferreira RL (2021) Chthonius kirghisicus (Pseudoscorpiones, Chthoniidae), a new cave-dwelling species from Kyrgyzstan. Subterranean Biology 40: 27-41. https://doi.org/10.3897/subtbiol.40.67303
Figure 5 Chthonius kirghisicus sp. nov. SEM images of the paratype A left chelicera, showing the arrangement of setae, dorsal view B detail of left chelicera, showing dorsal lyrifissures, dorsal view C right chelicera, showing arrangement of lyrifissures, ventral view D detail of right chelicera, showing ventral lyrifissures. Scale bars: 0.2 mm (A–C); 0.1 mm (D).
Figure 4 from: Prado GC, Viana ACM, Milko DA, Ferreira RL (2021) Chthonius kirghisicus (Pseudoscorpiones, Chthoniidae), a new cave-dwelling species from Kyrgyzstan. Subterranean Biology 40: 27-41. https://doi.org/10.3897/subtbiol.40.67303
Figure 4 Chthonius kirghisicus sp. nov. SEM images of the paratype A right pedipalp chela, showing trichobothrial pattern and arrangement of antiaxial lyrifissures, antiaxial view B detail of fa lyrifissure at base of right chelal fixed finger, antiaxial view C detail of ma1 lyrifissure at chelal movable finger, antiaxial view D detail of ma2 lyrifissure at chelal movable finger, antiaxial view E claw and arolia of right Leg IV. Scale bars: 0.3 mm (A); 0.05 mm (B); 0.03 mm (C–E).
Figure 3 from: Prado GC, Viana ACM, Milko DA, Ferreira RL (2021) Chthonius kirghisicus (Pseudoscorpiones, Chthoniidae), a new cave-dwelling species from Kyrgyzstan. Subterranean Biology 40: 27-41. https://doi.org/10.3897/subtbiol.40.67303
Figure 3 Chthonius kirghisicus sp. nov. holotype A pedal coxae B detail of coxae II and III showing coxal spines distribution and intercoxal tubercle bisetose C left leg IV, retrolateral view. Scale bar: 0.3 mm (A); 0.025 mm (B); 0.5 mm (C).
Figure 2 from: Prado GC, Viana ACM, Milko DA, Ferreira RL (2021) Chthonius kirghisicus (Pseudoscorpiones, Chthoniidae), a new cave-dwelling species from Kyrgyzstan. Subterranean Biology 40: 27-41. https://doi.org/10.3897/subtbiol.40.67303
Figure 2 Chthonius kirghisicus sp. nov. holotype A right pedipalp chela, showing teeth morphology and trichobothrial pattern, antiaxial view B left pedipalp chela, showing the arrangement of teeth with detailed gaps and lyrifissures arrangement, antiaxial view C left pedipalp chela, dorsal view D left pedipalp chela, ventral view. See Material and methods for abbreviations. Scale bar: 0.5 mm.
Figure 1 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 1 A Location of the study sites B red ellipse – site with subterranean traps at a scree slope, Abbreviations: A – site near Ardovská jaskyňa Cave (Photo: N. Raschmanová), S – site near Silická ľadnica Ice Cave (Photo: N. Raschmanová), B – site at Borinský kras Karst (Photo: A. Mock), ZA – site at the base of the scree gully in Zádielska tiesňava Valley (Photo: P. Ľuptáčik), ZB – site at the upper part of the scree gully in Zádielska tiesňava Valley (Photo: P. Ľuptáčik) C sampling methods, Abbreviations: SS – soil sampling (Photo: Ľ. Kováč), ST – sampling using subterranean traps (Photo: P. Ľuptáčik).
Figure 6 from: Prado GC, Viana ACM, Milko DA, Ferreira RL (2021) Chthonius kirghisicus (Pseudoscorpiones, Chthoniidae), a new cave-dwelling species from Kyrgyzstan. Subterranean Biology 40: 27-41. https://doi.org/10.3897/subtbiol.40.67303
Figure 6 Type locality and habitat of Chthonius kirghisicus sp. nov. A Kyrgyzstan karst landscape B general area where the cave is located with the lower entrance featured C detail of the lower cave entrance D cave interior E live holotype.
Supplementary material 6 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
SIMPER Analysis
Supplementary material 4 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
Richness and abundance of Baraccone Cave invertebrate fauna
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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