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136 results for “island biology”

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zenodo28/100

Figures 21-24 from: Sendra A, Nikoloudakis I, Gavalas I, Selfa J, Paragamian K (2020) A surprising new genus and species of cave-adapted Plusiocampinae Cycladiacampa irakleiae (Diplura, Campodeidae) from Irakleia Island, Cyclades Islands in the Aegean Archipelago (Greece). Subterranean Biology 35: 15-32. https://doi.org/10.3897/subtbiol.35.53579

Figures 21-24 21Cycladiacampa irakleiae Sendra, sp. nov habitus (photo: I. Gavalas) 22 map of the cave of Irakleia, modified from Petrocheilou (1971); most of the specimens of Cycladiacampa irakleiae n.gen., n.sp. were collected in the western part of the cave 23 the first large chamber of Spilaio Agiou Ioanni cave (photo: I. Gavalas) 24 the narrow entrance of Spilaio Agiou Ioanni cave, Irakleia, Cyclades (photo: I. Gavalas).

opencc-by-4.0Jun 2020View details →
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Figures 5-8 from: Sendra A, Nikoloudakis I, Gavalas I, Selfa J, Paragamian K (2020) A surprising new genus and species of cave-adapted Plusiocampinae Cycladiacampa irakleiae (Diplura, Campodeidae) from Irakleia Island, Cyclades Islands in the Aegean Archipelago (Greece). Subterranean Biology 35: 15-32. https://doi.org/10.3897/subtbiol.35.53579

Figures 5-8 Cycladiacampa irakleiae Sendra, sp. nov. 5 posterior part of the head to anterior part of mesothorax, left side, with pronotal macrosetae (ma, la, lp) 6 lateral left side of prothorax with la and lp macrosetae 7 detail of the surface of pronotum with insertion of lp1 macrosetae 8 detail surface of pronotum.

opencc-by-4.0Jun 2020View details →
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Figures 9-14 from: Sendra A, Nikoloudakis I, Gavalas I, Selfa J, Paragamian K (2020) A surprising new genus and species of cave-adapted Plusiocampinae Cycladiacampa irakleiae (Diplura, Campodeidae) from Irakleia Island, Cyclades Islands in the Aegean Archipelago (Greece). Subterranean Biology 35: 15-32. https://doi.org/10.3897/subtbiol.35.53579

Figures 9-14 Cycladiacampa irakleiae Sendra, sp. nov. 9 distal part of tibia, plus tarsus and pretarsus of metathoracic leg 10 detail of tarsus, lateral side, with a setiform sensillum (ss) 11 pretarsus of metathoracic leg, ventral side 12 pretarsus of metathoracic leg, lateral side 13 pretarsus of metathoracic leg, detail ventral side 14 detail of lateral processes.

opencc-by-4.0Jun 2020View details →
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Figures 15-20 from: Sendra A, Nikoloudakis I, Gavalas I, Selfa J, Paragamian K (2020) A surprising new genus and species of cave-adapted Plusiocampinae Cycladiacampa irakleiae (Diplura, Campodeidae) from Irakleia Island, Cyclades Islands in the Aegean Archipelago (Greece). Subterranean Biology 35: 15-32. https://doi.org/10.3897/subtbiol.35.53579

Figures 15-20 Cycladiacampa irakleiae Sendra, sp. nov. 15 first urosternite of a female 16 first urosternite of holotype, male, left side 17 fourth urosternite, right side 18 detail of the right appendage of the first urosternite of a female 19 detail of the fourth urosternite, right side 20 posterior part of seventh and the complete eighth urosternites.

opencc-by-4.0Jun 2020View details →
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Figure 25 from: Sendra A, Nikoloudakis I, Gavalas I, Selfa J, Paragamian K (2020) A surprising new genus and species of cave-adapted Plusiocampinae Cycladiacampa irakleiae (Diplura, Campodeidae) from Irakleia Island, Cyclades Islands in the Aegean Archipelago (Greece). Subterranean Biology 35: 15-32. https://doi.org/10.3897/subtbiol.35.53579

Figure 25 The fragmentation of Cycladia caused by the sea level rise followed the last glacial maximum (after Lambert 1996, modified).

opencc-by-4.0Jun 2020View details →
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Figures 1-4 from: Sendra A, Nikoloudakis I, Gavalas I, Selfa J, Paragamian K (2020) A surprising new genus and species of cave-adapted Plusiocampinae Cycladiacampa irakleiae (Diplura, Campodeidae) from Irakleia Island, Cyclades Islands in the Aegean Archipelago (Greece). Subterranean Biology 35: 15-32. https://doi.org/10.3897/subtbiol.35.53579

Figures 1-4 Cycladiacampa irakleiae Sendra, sp. nov. 1 apical view of last antennomer with cupuliform 2 olfactory chemoreceptor of the cupuliform organ 3 lateral distal view of central antennomer with gouge sensilla 4 frontal process. (gs= gouge sensillum; cs= coniform sensillum; a= anterior-macroseta, i= intermediate macroseta, p= posterior-macroseta, x, x-setae).

opencc-by-4.0Jun 2020View details →
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Figure 4 from: Núñez J, Glasby CJ, Naranjo M (2020) Groundwater annelids from Gran Canaria and Fuerteventura (Canary Islands), with the description of two new species of Namanereis (Namanereidinae, Nereididae, Polychaeta). Subterranean Biology 36: 35-49. https://doi.org/10.3897/subtbiol.36.55090

Figure 4 Namanereis canariarum sp. nov. a jaw pieces of the pharynx, ventral view b parapodium, detail of the acicular lobes c pseudospiniger blade tip d subneuroacicular heterogomph falciger, chaetiger 60. Namanereis llanetensis sp. nov. e Holotype, detail of the basal spinulation, hererogomph spiniger, chaetiger 10 f Holotype, detail of spinulation, subneuroacicular heterogomph falciger, chaetiger 10.

opencc-by-4.0Nov 2020View details →
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Figure 3 from: Núñez J, Glasby CJ, Naranjo M (2020) Groundwater annelids from Gran Canaria and Fuerteventura (Canary Islands), with the description of two new species of Namanereis (Namanereidinae, Nereididae, Polychaeta). Subterranean Biology 36: 35-49. https://doi.org/10.3897/subtbiol.36.55090

Figure 3 Namanereis llanetensis sp. nov. a anterior end, dorsal view b everted pharynx with jaws, dorsal view c jaws ventral view d posterior end, dorsal view e parapodium from chaetiger 3 f parapodium from chaetiger 60 g supraneuroacicular falciger, chaetiger 60 h subneuroacicular falciger, chaetiger 3 i supraneuroacicular falciger, chaetiger 3 j subneuroacicular falciger, chaetiger 3 k supraneuroacicular spiniger, blade not fully shown, chaetiger 3 l subneuropodial spiniger, blade not fully shown, chaetiger 10 m subneuroacicular spiniger, blade fully shown, chaetiger 60 n supraneuroacicular spiniger, blade fully shown, chaetiger 60.

opencc-by-4.0Nov 2020View details →
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Figure 2 from: Núñez J, Glasby CJ, Naranjo M (2020) Groundwater annelids from Gran Canaria and Fuerteventura (Canary Islands), with the description of two new species of Namanereis (Namanereidinae, Nereididae, Polychaeta). Subterranean Biology 36: 35-49. https://doi.org/10.3897/subtbiol.36.55090

Figure 2 Namanereis canariarum sp. nov. a anterior end, everted pharynx, dorsal view b jaw pieces of the pharynx, frontal view c parapodium from chaetiger 10 d parapodium from chaetiger 60 e supraneuroacicular falciger, chaetiger 30 f subneuroacicular falciger, chaetiger 10 g subneuroacicular pseudospiniger, chaetiger 30 h supraneuroacicular spiniger, blade not fully shown, chaetiger 10 i supraneuroacicular spiniger, blade fully shown, chaetiger 10 j subneuroacicular pseudospiniger, chaetiger 10 k supraneuroacicular falciger, chaetiger 30 l subneuroacicular falciger, chaetiger 30.

opencc-by-4.0Nov 2020View details →
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Figure 1 from: Núñez J, Glasby CJ, Naranjo M (2020) Groundwater annelids from Gran Canaria and Fuerteventura (Canary Islands), with the description of two new species of Namanereis (Namanereidinae, Nereididae, Polychaeta). Subterranean Biology 36: 35-49. https://doi.org/10.3897/subtbiol.36.55090

Figure 1 a Distribution in Canary Islands of Namanereis canariarum sp. nov. (yellow dot) and Namanereis llanetensis (red dot) bNamanereis canariarum sp. nov. live specimen, dorsal view cNamanereis llanetensis sp. nov. live specimen, dorsal view d Los Llanetes water mine (Valsequillo, Gran Canaria) type locality of N. llanetensis sp. nov.

opencc-by-4.0Nov 2020View details →
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Fig. 3 in First description of the breeding biology and behaviour of the near threatened northern sooty woodpecker Mulleripicus funebris (Valenciennes 1826) (Piciformes: Picidae) in Luzon Island, Philippines

Fig. 3 - Northern sooty woodpecker nestlings peeking at the entrance of the cavity nest on 5 May 2022. / Nidiacei di picchio fuligginoso che sbirciano dall'ingresso della cavità del nido il 5 maggio 2022. (Photo: / Foto: Jhaynhell Fidelino).

opencc-by-4.0Apr 2024View details →
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Figure 1 from: Suárez D, Martín S, Naranjo M (2018) First report of the invasive alien species Caenoplana coerulea Moseley, 1877 (Platyhelminthes, Tricladida, Geoplanidae) in the subterranean environment of the Canary Islands. Subterranean Biology 26: 67-74. https://doi.org/10.3897/subtbiol.26.25921

Figure 1 A location of "La Federica" mine (red dot) within Gran Canaria (Canary Islands) B topography of the mine. C.coerulea individuals were observed in the red shaded area.

opencc-by-4.0Aug 2018View details →
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Figures 6-10 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467

Figures 6-10 Haplocampawagnelli Sendra, sp. n. 6 distal gouge sensilla whorl in a medial antennomere 7 medial antennomere 8 detail of the ending portion of a gouge sensillum 9 detail of external side of a gouge sensillum 10 detail of lateral side of a gouge sensillum.

opencc-by-4.0Feb 2019View details →
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Supplementary material 1 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467

: Data type: multimedia

opencc-zeroFeb 2019View details →
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Figures 29-33 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467

Figures 29-33 29 Map of Fossli Slots caves with spots where Haplocampawagnelli sp. n. was seen 30 entrance of Fossli Slot #2 cave 31 Kiku Pot cave with spots where Haplocampawagnelli sp. n. was seen 32 entrance of Kiku Pot cave with Felix Ossigi-Bonanno and Craig Wagnell after the success finding 33 entrance of Kiku Pot cave viewed from inside the cave.

opencc-by-4.0Feb 2019View details →
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Figures 1-5 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467

Figures 1-5 Haplocampawagnelli Sendra, sp. n. 1 last and penultimate antennomere 2 olfactory chemoreceptors within the cupuliform organ 3 detail of olfactory chemoreceptor, paratype 4 coniform sensilla on the last antennomeres 5 two rosette sensilla in the last antennomere.

opencc-by-4.0Feb 2019View details →
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Figures 13-16 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467

Figures 13-16 Haplocampawagnelli Sendra, sp. n. 13 pro-, meso- and metanotum, left side, holotype 14 detail of epicuticle surface on mesonotum 15 detail of epicuticle surface on mesonotum 16 detail of epicuticle surface on metanotum including external gland.

opencc-by-4.0Feb 2019View details →
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Figure 28 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467

Figure 28 Map of western of North-America, highlighting in red the limestone area near Port Alberni (Vancouver Island, Canada) where Fossli Slots and Kiku Pots caves are located.

opencc-by-4.0Feb 2019View details →
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Figures 17-21 from: Sendra A, Wagnell C (2019) The cave-dwelling dipluran (Diplura, Campodeidae) on the edge of the Last Glacial Maximum in Vancouver Island caves, North America (Canada). Subterranean Biology 29: 59-77. https://doi.org/10.3897/subtbiol.29.31467

Figures 17-21 Haplocampawagnelli Sendra, sp. n. 17 distal portion of femur and tibia from a metathoracic leg 18 tarsus 19 end of the tarsus and telotarsus 20 detail of posterior claw, lateral side 21 detail of posterior claw, lateral side.

opencc-by-4.0Feb 2019View details →
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Supplementary material 2 from: Ballesteros-Mejia L, Angulo E, Diagne C, Cooke B, Nuñez MA, Courchamp F (2021) Economic costs of biological invasions in Ecuador: the importance of the Galapagos Islands. In: Zenni RD, McDermott S, García-Berthou E, Essl F (Eds) The economic costs of biological invasions around the world. NeoBiota 67: 375-400. https://doi.org/10.3897/neobiota.67.59116

Tables S2–S5

opencc-zeroAug 2021View details →

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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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openneuro
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Last verified 2026-04-29Open record