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68 results for “cave evolution”
Figure 2 from: Soares D, Adams R, Hammond S, Slay ME, Fenolio DB, Niemiller ML (2017) Evolution of Coprophagy and Nutrient Absorption in a Cave Salamander. Subterranean Biology 24: 1-9. https://doi.org/10.3897/subtbiol.24.15013
Figure 2 - Regression lines based on body mass loss of different diet types and amounts. Salamanders were fed nothing (green), live amphipods (red) or guano (blue). Groups were fed every four days based on their initial body weight, with 2.5% (A), 5% (B) or 10% (C). The calculated regression lines were as follows: Control -1.16x+96.01 R2 = 0.54, n = 10; 2.5%amphipod -0.26x+98.49, R2 = 0.39, n = 6; 2.5%guano -0.70x+93.58, R2 = 0.02, n = 6; 5%amphipod -0.28x+102.22, R2 = 0.03, n = 6; 5%guano -1.12x+98.89, R2 = 0.77, n = 6; 10%amphipod -0.35x+103.36, R2 = 0.21, n = 6; 10%guano -0.70x+96.01, R2 = 0.53, n = 6.
Fig. 5 in Assessing troglomorphic and phylogenetically informative traits in troglobionts: a new cave-dwelling centipede illuminates the evolution of a soil-dwelling lineage (Chilopoda: Geophilidae)
Fig. 5 Consensus tree obtained from the maximum parsimony phylogenetic analysis of Geophilidae s.l. under equal weighting of characters. Bootstrap and jackknife frequencies are indicated above nodes, in this order, when> 50%. Synapomorphies are indicated below nodes (see "Material and methods" for the character codes)
Fig. 3 Plutogeophilus jurupariquibaba gen.n in Assessing troglomorphic and phylogenetically informative traits in troglobionts: a new cave-dwelling centipede illuminates the evolution of a soil-dwelling lineage (Chilopoda: Geophilidae)
Fig. 3 Plutogeophilus jurupariquibaba gen.n. sp.n.: a anterior part of body, dorsal view; b–c head and forcipular segment, dorsal and ventral views, respectively; d–e posterior part of body, dorsal and ventral views, respectively. Photos: ♂, ISLA 11879, holotype. Scale bars: 0.4 µm
Fig 6 in Morphology and distribution of the cave knifefish Eigenmannia vicentespelaea Triques, 1996 (Gymnotiformes: Sternopygidae) from Central Brazil, with an expanded diagnosis and comments on subterranean evolution
Fig 6. Living specimen of Eigenmannia vicentespelaea with relatively well developed eyes and translucent aspect. Note the three longitudinal stripes (LEA: 121.9 mm). Photo: José Sabino.
FIGS 14 in species of Australian cockroaches in the genus Paratemnopteryx Saussure (Blattaria, Blattellidae, Blattellinae), and a discussion of some behavioural observations with respect to the evolution and ecology of cave life
FIGS 14±17. Paratemnopteryx weinsteini sp. n., male: (14) right tegmen; (15) supraanal plate and paraprocts, ventral view; (16) subgenital plate, styles, and phallomeres, dorsal view. Female: (17) ooÈtheca. Scale bars represent 1 mm.
Figure 2 in REVIEW Diplura in caves: diversity, ecology, evolution and biogeography
Figure 2. Conceptual model of the major compartments of the subterranean habitats and corresponding dipluran habitus. Soil horizons: O is mainly formed by leaf litter, whereas the A and B horizons have gradual increase in mineral fraction and decrease in voids' size, the C horizon is formed by unconsolidated, mid-size clasts with large voids; this horizon has the mesovoid shallow substratum (MSS).
FIGURE 5 in A new species of Cyrtodactylus Gray, 1827 (Squamata: Gekkonidae) from the Thai-Malay Peninsula and the independent evolution of cave ecomorphology on opposite sides of the Gulf of Thailand
FIGURE 5. Ancestral character state reconstruction of the cave versus non-cave habitat preference in the Cyrtodactylus intermedius group inferring the independent evolution of the cave habitat preference on opposite sides of the Gulf of Thailand.
FIGURE 8 in A new species of Cyrtodactylus Gray, 1827 (Squamata: Gekkonidae) from the Thai-Malay Peninsula and the independent evolution of cave ecomorphology on opposite sides of the Gulf of Thailand
FIGURE 8. Differences in body shape of the thinner cave-adapted species Cyrotactylus disjuntus sp. nov. ISS 130 ZMMU re-17674, C. hontreensis UNSM0216, and C. laangensis LSUDPC 4021 A, C, and E, respectively in comparison to the more robust species that are not adapted to living in caves, B C kohrongensis LSUHC 10536 D C. thylacodactylus LSUDPC 5080 and F C. cardamomensis LSUDPC 6080. Photographs by Parinya Pawangkhanan A; L. Lee Grismer B, D, and F; Ngo Van Tri C, and Jeremy Holden E.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.