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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).

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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).

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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).

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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).

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Figure 2 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 2 Landscape (Atlantic Rainforest) (A), Potamolithus sp. 5 in natural habitat, Santana cave (B) and subterranean streams (C, D) from Alto Ribeira karst area, Southeastern Brazil. Photographs: PP Rizzato (A, C, D), A Gambarini (B).

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Figure 10 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 10 Boxplots showing shell widths 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.

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Figure 3 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 3 Schematic intestine forms observed in Potamolithus species from Alto Ribeira karst area, Southeastern Brazil. Abapertural view.

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Figure 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

Figure 1 Map showing the surveyed localities (basins, microbasins and caves) from Alto Ribeira karst area, Southeastern Brazil. Some localities are approximated (*) (Author: DM von Schimonsky). Caves: A1 – Aranhas, A2 – Chapéu Mirim I, A3 – Chapéu, A4 – Chapéu Mirim II, A5 – Temimina II, A6 – Gurutuva, A7 – Córrego Seco, A8 – Fendão, A9 – Paiva, A10 – Jane Mansfield, A11 – Minotauro; B1 – Areias de Cima, B2 – Areias de Baixo, B3 – Ressurgência das Areias de Água Quente; C – Ouro Grosso; D – Alambari de Baixo; E – Água Suja; F1 – Pérolas, F2 – Santana; G1 – Casa de Pedra, G2 – Água Sumida; H – Tapagem; I1 – Morro Preto, I2 – Couto; J – Pescaria; K* – Betari de Baixo; L – Jeremias; M – Colorida; N – Calcário Branco; O – Alambari de Cima. Epigean streams: a – Ouro Grosso; b – Alambari; c – Água Suja; d – Roncador; e – Maximiano; f – Ostras; g – Calcário Branco; h – Iporanga; i1 – Betari, i2 – Água Quente, i3 – Morro Preto; j1 – Bocaina, j2 – Espírito Santo, j3 – Temimina, j4 – Pescaria, j5 – Lageado, j6 – Pilões, j7 – Ribeira, j8 – Cutia de Cima.

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Figures 1-9 from: Huber BA (2018) Cave-dwelling pholcid spiders (Araneae, Pholcidae): a review. Subterranean Biology 26: 1-18. https://doi.org/10.3897/subtbiol.26.26430

Figures 1-9 Main patterns in cave-dwelling pholcid spiders. Numbers in parentheses are usually species numbers (1–8), but cave numbers in (9). 1 Troglomorphic and non-troglomorphic cave-dwelling pholcids; a, eyes normal; b, eyes reduced in size and/or pigment; c, eyes absent 2 Generic assignment of the 86 troglomorphic pholcid species 3 Generic assignment of the 42 'strongly' troglomorphic species 4 Subfamily assignment of the 86 troglomorphic species; S., Smeringopinae; A., Arteminae 5 Known habitat of 473 cave-dwelling pholcids 6 Number of caves known to be inhabited by 298 species known from caves only 7 Geographic distribution of the 86 troglomorphic species 8 Geographic distribution of the 21 eyeless species 9 Number of species found in each of 1000 caves.

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Figures 11-16 from: Huber BA (2018) Cave-dwelling pholcid spiders (Araneae, Pholcidae): a review. Subterranean Biology 26: 1-18. https://doi.org/10.3897/subtbiol.26.26430

Figures 11-16 Examples of non-troglomorphic and troglomorphic pholcid spiders and their webs. 11–12 Two undescribed species of Uthina from Bali and Sulawesi; note smaller eyes and paler color in cave-dwelling species (12). 13–14 Two undescribed species of Metagonia from Brazil (Pernambuco, Rio Grande do Norte); note evanescent eyes and pale coloration in cave-dwelling species (14). 15–16 'Typical' pholcid web of epigean Metagonia bonaldoa 15 domed sheet with tumble lines above sheet; Brazil, Santa Catarina), and unusual web of cave-dwelling Metagonia potiguar 16 sheet attached to rock surface and many vertical gum-foot lines; Brazil, Rio Grande do Norte). Photos BAH.

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Figure 10 from: Huber BA (2018) Cave-dwelling pholcid spiders (Araneae, Pholcidae): a review. Subterranean Biology 26: 1-18. https://doi.org/10.3897/subtbiol.26.26430

Figure 10 Geographic distribution of 1000 caves in which native pholcid spider species have been found. Green: non-troglomorphic; red: troglomorphic.

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Figure 3 from: Milne MA, Wells E (2018) A new species of spider (Araneae, Linyphiidae, Islandiana) from a southern Indiana cave. Subterranean Biology 26: 19-26. https://doi.org/10.3897/subtbiol.26.25605

Figure 3 SEM micrographs of the left palp of Islandiana lewisi sp. n. A Ventral B Medial C Lateral. E = Embolus; ED = Embolic division; EM = Embolic membrane; MP = medial projection of ED; VP = ventral projection of ED; R = radix of ED; SA = suprategular apophysis; ST = subtegulum; T = tegulum; PC = paracymbium.

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Figure 2 from: Milne MA, Wells E (2018) A new species of spider (Araneae, Linyphiidae, Islandiana) from a southern Indiana cave. Subterranean Biology 26: 19-26. https://doi.org/10.3897/subtbiol.26.25605

Figure 2 Illustrations of Islandiana lewisi sp. n. structures. A Left palp of male, medial view B Left palp of male, lateral view C Epigynum, ventral view D Epigynum, flipped – dorsal view E Tibial apophysis of left palp of male. E = Embolus; R = radix; SA = suprategular apophysis; ST = subtegulum; T = tegulum; PC = paracymbium; S = spermathecae; PS = posterior sclerite.

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Figure 4 from: Milne MA, Wells E (2018) A new species of spider (Araneae, Linyphiidae, Islandiana) from a southern Indiana cave. Subterranean Biology 26: 19-26. https://doi.org/10.3897/subtbiol.26.25605

Figure 4 SEM micrographs of the epigynum of Islandiana lewisi sp. n. A Epigynum, ventral view B Epigynum, flipped – dorsal view. PS = posterior sclerite.

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Figure 7 from: Bakhshi Y, Sadeghi S, Messana G (2018) First record of the family Stenasellidae (Crustacea, Isopoda) in Iran with the description of a new cave-dwelling species. Subterranean Biology 26: 27-38. https://doi.org/10.3897/subtbiol.26.25950

Figure 7 Squama of antenna II of Stenasellus vermeuleni (A) S. messanai (B) S. henryi (C) S. grafi (D) and S. tashanensis sp. n. (E). (Figures A–D from Magniez and Stock 2000).

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Figure 5 from: Bakhshi Y, Sadeghi S, Messana G (2018) First record of the family Stenasellidae (Crustacea, Isopoda) in Iran with the description of a new cave-dwelling species. Subterranean Biology 26: 27-38. https://doi.org/10.3897/subtbiol.26.25950

Figure 5 Male pleopod I of Stenasellus vermeuleni (A) S. grafi (B) S. messanai (C) S. henryi (D) S. asiaticus (E) and S. tashanensis sp. n. (F). (Figures A–D from Magniez and Stock 2000; Figure E from Birstein and Starostin 1949).

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Figure 3 from: Bakhshi Y, Sadeghi S, Messana G (2018) First record of the family Stenasellidae (Crustacea, Isopoda) in Iran with the description of a new cave-dwelling species. Subterranean Biology 26: 27-38. https://doi.org/10.3897/subtbiol.26.25950

Figure 3 Stenasellus tashanensis sp. n. male. A–G peraeopods I–VII A' setation of propus and dactylus of first peraeopod.

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Figure 4 from: Bakhshi Y, Sadeghi S, Messana G (2018) First record of the family Stenasellidae (Crustacea, Isopoda) in Iran with the description of a new cave-dwelling species. Subterranean Biology 26: 27-38. https://doi.org/10.3897/subtbiol.26.25950

Figure 4 Stenasellus tashanensis sp. n. A–E pleopods I–V of male F pleopod II of female G uropod H genital papillae on seventh sternite.

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Figure 2 from: Bakhshi Y, Sadeghi S, Messana G (2018) First record of the family Stenasellidae (Crustacea, Isopoda) in Iran with the description of a new cave-dwelling species. Subterranean Biology 26: 27-38. https://doi.org/10.3897/subtbiol.26.25950

Figure 2 Stenasellus tashanensis sp. n. male. A habitus (dorsal view) B antenna I C antenna II C' squama of antenna II D maxilliped E maxilla I F maxilla II G right mandible H left mandible I mandibular palp.

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Figure 1 from: Bakhshi Y, Sadeghi S, Messana G (2018) First record of the family Stenasellidae (Crustacea, Isopoda) in Iran with the description of a new cave-dwelling species. Subterranean Biology 26: 27-38. https://doi.org/10.3897/subtbiol.26.25950

Figure 1 Left: Map of Iran, showing the location of Tashan Cave (black circle); Right: the type locality in Tashan Cave, with Stenasellus tashanensis sp. n.

opencc-by-4.0Jun 2018View details →

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Allen Brain Atlas

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dandi-nwb
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Last verified 2026-04-30Open record

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.

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Last verified 2026-04-29Open record

OpenNeuro

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openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record