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33 results for “shallow subterranean habitats”
Figure 2 in Temperature variation and the presence of troglobionts in terrestrial shallow subterranean habitats
Figure 2. Top panel, temperature profiles at hourly intervals for an MSS site (black line) and nearby surface site (grey line) in a laurel forest in Teno in northwest Tenerife, Canary Islands (see Figure 1). Centre panel, spectral densities (y-axis) for different cycle periods (x-axis) for cycles up to 100 days for the surface site. Note the strong period at 24 hours. Bottom panel, spectral densities (y-axis) for different cycle periods (x-axis) for cycles up to 100 days for the MSS site. Note the absence of a 24 hour period even at very low spectral densities.
Figure 1 in Temperature variation and the presence of troglobionts in terrestrial shallow subterranean habitats
Figure 1. (A) Photographs of Teno MSS site on Tenerife in old volcanic rock. Note the stabilization of the habitat by moss on the surface. Photographs were taken at a road cut. The actual site was about 2 m from the cut. (B) Photograph of La Guancha clinker MSS site on Tenerife in volcanic rock. Structure of the rocks developed at the time of deposition of the lava. (C) Photograph of MSS site at Mašun, Slovenia in flysch. Note the similarity to the MSS site shown in panel A even though the rock is different. This site also has a moss layer stabilizing the habitat. (D) Photograph of MSS site at Jama v Kovačiji. Compared to other MSS sites, this had more dirt infilling.
Figure 4 in Temperature variation and the presence of troglobionts in terrestrial shallow subterranean habitats
Figure 4. Top panel, temperature profiles at hourly intervals for an MSS site at Mašun, Slovenia (see Figure 1), at depths of 20 cm (dark grey line), 50 cm (black line) and 80 cm (grey line). Upper centre panel, spectral densities (y-axis) for different cycle periods (x-axis) for cycles up to 100 days for the upper MSS site. Note the strong 24 hour period. Lower centre panel, spectral densities (y-axis) for different cycle periods (x-axis) for cycles up to 100 days for the intermediate MSS site. Note the weak 24 hour period. Lower panel, spectral densities (y-axis) for different cycle periods (x-axis) for cycles up to 100 days for the deep MSS site. Note the absence of any 24 hour period, even at low spectral densities.
Supplementary material 4 from: Eusébio RP, Fonseca PE, Rebelo R, Mathias ML, Reboleira ASPS (2023) How to map potential mesovoid shallow substratum (MSS) habitats? A case study in colluvial MSS. Subterranean Biology 45: 141-156. https://doi.org/10.3897/subtbiol.45.96332
Abundance of invertebrates collected in colluvial Mesovoid Shallow Substratum (MSS) at the Arrábida National Park
Supplementary material 3 from: Eusébio RP, Fonseca PE, Rebelo R, Mathias ML, Reboleira ASPS (2023) How to map potential mesovoid shallow substratum (MSS) habitats? A case study in colluvial MSS. Subterranean Biology 45: 141-156. https://doi.org/10.3897/subtbiol.45.96332
Results of criteria met for each location pinpointed as potential colluvial Mesovoid Shallow Substratum (MSS)
Supplementary material 1 from: Eusébio RP, Fonseca PE, Rebelo R, Mathias ML, Reboleira ASPS (2023) How to map potential mesovoid shallow substratum (MSS) habitats? A case study in colluvial MSS. Subterranean Biology 45: 141-156. https://doi.org/10.3897/subtbiol.45.96332
Characterization of each of the locations found in situ as colluvial Mesovoid Shallow Substratum (MSS): latitude, longitude and estimated area (m2)
Supplementary material 5 from: Eusébio RP, Fonseca PE, Rebelo R, Mathias ML, Reboleira ASPS (2023) How to map potential mesovoid shallow substratum (MSS) habitats? A case study in colluvial MSS. Subterranean Biology 45: 141-156. https://doi.org/10.3897/subtbiol.45.96332
Total invertebrate abundance, collected in colluvial Mesovoid Shallow Substratum (MSS) at the Arrábida National Park
Figures 8-11 from: Sasakawa K, Itô H (2017) Two new species of the Pterostichus macrogenys species group (Coleoptera, Carabidae) discovered in shallow subterranean habitats in northern Honshu, Japan. Subterranean Biology 21: 47-56. https://doi.org/10.3897/subtbiol.21.11155
Figures 8-11 - Dorsal view of species of the macrogenys species group. 8 Pterostichus shinbodakensis sp. n., holotype male 9 A female of the unidentified species sympatric with Pterostichus shinbodakensis 10 Pterostichus tateishiyamanus sp. n., holotype male 11 Pterostichus tateishiyamanus sp. n., paratype female. All figures are of the same magnification. Scale bar = 5.0 mm.
Figures 12-22 from: Sasakawa K, Itô H (2017) Two new species of the Pterostichus macrogenys species group (Coleoptera, Carabidae) discovered in shallow subterranean habitats in northern Honshu, Japan. Subterranean Biology 21: 47-56. https://doi.org/10.3897/subtbiol.21.11155
Figures 12-22 - Male genitalia of species of the macrogenys species group. Left lateral view (12), right lateral view (13), left dorsolateral view (14), and right dorsolateral view (15) of endophallus of Pterostichus shinbodakensis sp. n., holotype. Dorsal view of apical part (16), left lateral view (17), and ventral view of apical part (18) of right paramete of Pterostichus shinbodakensis sp. n., holotype. Dorsal view of apical part (19) and left lateral view (20) of right paramete of Pterostichus falcispinus from the type locality. Left lateral view (21) and right lateral view (22) of endophallus of Pterostichus tateishiyamanus sp. n., holotype. go: gonopore; lal: left apical lobe; lpb: left pigmented band; lpl: left preapical lobe; rpl: right preapical lobe. Scale bar = 0.5 mm.
Figures 1-7 from: Sasakawa K, Itô H (2017) Two new species of the Pterostichus macrogenys species group (Coleoptera, Carabidae) discovered in shallow subterranean habitats in northern Honshu, Japan. Subterranean Biology 21: 47-56. https://doi.org/10.3897/subtbiol.21.11155
Figures 1-7 - Design of subterranean baited traps and the aboveground and subterranean environments at the collection sites. 1 Trap without cover, showing sections containing attractant (larger container) and preservative (smaller container) 2 Trap with cover, showing the entrance section (square with broken lines) 3 Trap installed in hole, showing nylon cord, part of which will be left aboveground as a marker 4 Aboveground environment of the Pterostichus shinbodakensis type locality 5 Hole for the trap at the Pterostichus shinbodakensis type locality, showing the subterranean environment 6 Aboveground environment of the Pterostichus tateishiyamanus type locality 7 Hole for the trap at the Pterostichus tateishiyamanus type locality, showing the subterranean environment. The magnifications of the photos vary (see text for trap size).
Figure 2 from: Gilbert H, Keany J, Culver DC (2018) Response of shallow subterranean freshwater amphipods to habitat drying. Subterranean Biology 28: 15-28. https://doi.org/10.3897/subtbiol.28.30700
Figure 2 Relative frequency of different behaviors of the three species in control (red bars) and experimental (blue bars).
Supplementary material 2 from: Eusébio RP, Fonseca PE, Rebelo R, Mathias ML, Reboleira ASPS (2023) How to map potential mesovoid shallow substratum (MSS) habitats? A case study in colluvial MSS. Subterranean Biology 45: 141-156. https://doi.org/10.3897/subtbiol.45.96332
Literature review data Mesovoid Shallow Substrate's faunal communities
Figure 1 from: Gilbert H, Keany J, Culver DC (2018) Response of shallow subterranean freshwater amphipods to habitat drying. Subterranean Biology 28: 15-28. https://doi.org/10.3897/subtbiol.28.30700
Figure 1 Average gravimetric soil moisture over the nine week trial.
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