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132 results for “Alces”
Fig. 7 in Seasonality of Coprophagous Beetles (Coleoptera: Hydrophilidae, Geotrupidae, Scarabaeidae) Inhabiting Moose (Alces Alces Linnaeus) Dung in Kampinoski Park Narodowy, Poland
Fig. 7. Seasonality with two or more apparent population peaks of the most abundant coprophagous beetle species on moose dung in Kampinoski Park Narodowy, Poland.
Prognostic Value of NLR, TLR, and ALC in Predicting ToF Primary Repair Outcome
ClinicalTrials.gov study NCT05976204. IPD Sharing: NO. Countries: 1. Publications: 1.
Prevention of Sagopilone-induced Neurotoxicity With Acetyl-L-Carnitine (ALC)
ClinicalTrials.gov study NCT00751205. IPD Sharing: Not stated. Countries: 6. Publications: 1.
Data from: The nutritional balancing act of a large herbivore: an experiment with captive moose (Alces alces L)
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Data from: A genetic discontinuity in moose (Alces alces) in Alaska corresponds with fenced transportation infrastructure
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Data from: Harvest-induced phenotypic selection in an island population of moose, Alces alces
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Data from: Prevalence and risk factors of Anaplasma infections in Eastern moose (Alces alces americana) and winter ticks (Dermacentor albipictus) in Maine, United States
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Moose (Alces alces) parturition dates, Sweden
<p>In northern environments, the period of access to high-quality forage is limited, exerting strong selective pressure to optimize the timing of parturition. We analysed timing and variation in moose parturition dates of 555 females at 18 study sites across 12ᵒ of latitude (56-68ᵒ N, 1,350 km) in Sweden. We found evidence for a spatial match of parturition timing to vegetation onset, but no evidence that moose adjust parturition to vegetation onset in a given year. We found a breakpoint at 64ᵒ N. Despite adaptation across latitudes, temporal divergences occurred. Females <64 ᵒN calved after vegetation onset and females >64 ᵒN calved before. Here, parturition before vegetation onset might be a strategy to optimize forage utilization time with the very short growing season. Highly seasonal environments such as at higher latitudes may make it advantageous to adapt parturition towards long-term climatic patterns by matching the most favourable period. Given the direction of temporal divergence, our study suggests that climate change may have less of an impact on moose parturition at northern latitudes than southern latitudes.</p>
Fig. 2 in First report of a newly-described lungworm, Dictyocaulus cervi (Nematoda: Trichostrongyloidea), in moose (Alces alces) in central Europe
Fig. 2. Lung pathology of adult Dictyocaulus positive cases. (A and B) Bands of fibrous tissue. Van Gieson's staining, (10× magnification). (C and D) Mononuclear cell infiltration. H-E staining, (40× magnification). (E and F) Cross sections of larvae in alveoli, damaged alveoli. H-E staining, (40× magnification).
Text-fig. 5. Fossils of some mammalian taxa from Gánovce-Hrádok Neanderthal site. a) Castor fiber – mandible dext. et sin. with incisors and p4 – m3 in lateral (mandible) and occlusal (cheek teeth) views (OF 6664–6665); b) Ursus ex gr. spelaeus – right mandible fragment with m1 – m3 in lateral view (P-unnumbered); c) Coelodonta antiquitatis – p2 sin. in buccal view (OF 7188); d) Equus sp. I (cf. taubachensis) – P3 – M3 dext. in travertine, buccal view (P-14302); e) Equus sp. II (cf. germanicus) – Mt sin. fragment in anterior view (OF unnumbered); f) Alces alces – left maxilla fragment with M1 – M3 in occlusal view (P-14303); g) Mammuthus primigenius – m2 sin. in occlusal view (P-14312); h) Palaeoloxodon antiquus – palate fragment with M3 dext. et sin. in occlusal view (P-14281). 50 mm scale is for a–c, 100 mm scale is for d–h. in Revised Floral And Faunal Assemblages From Late Pleistocene Deposits Of The Gánovce-Hrádok Neanderthal Site -Biostratigraphic And Palaeoecological Implications
Text-fig. 5. Fossils of some mammalian taxa from Gánovce-Hrádok Neanderthal site. a) Castor fiber – mandible dext. et sin. with incisors and p4 – m3 in lateral (mandible) and occlusal (cheek teeth) views (OF 6664–6665); b) Ursus ex gr. spelaeus – right mandible fragment with m1 – m3 in lateral view (P-unnumbered); c) Coelodonta antiquitatis – p2 sin. in buccal view (OF 7188); d) Equus sp. I (cf. taubachensis) – P3 – M3 dext. in travertine, buccal view (P-14302); e) Equus sp. II (cf. germanicus) – Mt sin. fragment in anterior view (OF unnumbered); f) Alces alces – left maxilla fragment with M1 – M3 in occlusal view (P-14303); g) Mammuthus primigenius – m2 sin. in occlusal view (P-14312); h) Palaeoloxodon antiquus – palate fragment with M3 dext. et sin. in occlusal view (P-14281). 50 mm scale is for a–c, 100 mm scale is for d–h.
Figure 3 from: Silva-Oliveira C, Canto ALC, Ribeiro FRV (2016) Stream ichthyofauna of the Tapajós National Forest, Pará, Brazil. ZooKeys 580: 125-144. https://doi.org/10.3897/zookeys.580.6659
Figure 3 - Representativeness of species for orders (A) and most diverse families (B) in streams of the Tapajós National Forest, Pará, Brazil.
Figure 4 from: Silva-Oliveira C, Canto ALC, Ribeiro FRV (2016) Stream ichthyofauna of the Tapajós National Forest, Pará, Brazil. ZooKeys 580: 125-144. https://doi.org/10.3897/zookeys.580.6659
Figure 4 - Distribution of fish species recorded in different drainage systems in the Tapajós National Forest.
Figure 1 from: Silva-Oliveira C, Canto ALC, Ribeiro FRV (2016) Stream ichthyofauna of the Tapajós National Forest, Pará, Brazil. ZooKeys 580: 125-144. https://doi.org/10.3897/zookeys.580.6659
Figure 1 - Map of the study area showing the collecting stations in drainage systems in the Tapajós National Forest, Pará State, Brazil. Green squares represent streams draining directly into the Tapajós River; blue dots represent streams draining into the Curuá-Una River, and yellow triangles represent streams draining into the Cupari River.
Moose (Alces alces) parturition dates, Sweden
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Data from Automatic Lidar and Ceilometer (ALC) measurements at Paris – Chamant (PACHAM) from 2022-11-25 to 2024-02-22 [RAW]
<p>Original data files from ALC measurements at Chamant (Département 60) in the rural area to the NNE of Greater Paris.</p> <p>Part 3 of 3.</p>
Data from Automatic Lidar and Ceilometer (ALC) intercomparison measurements at Paris – SIRTA Atmospheric Observatory (PASIRT) [RAW]
<p>Original data files from ALC measurements from intercomparison periods at Paris–SIRTA Atmospheric Observatory. Intercomparison periods are when two or more ALC are operated within close proximity within a given measurement station.</p>
Data from Automatic Lidar and Ceilometer (ALC) calibration measurements in the greater Paris area [RAW]
<p>Original data files from ALC measurements from calibration periods. A calibration period is when a calibration termination hood was placed on the ALC, typically interrupting a longer-term standard deployment</p>
Data from Automatic Lidar and Ceilometer (ALC) measurements at Paris – Chamant (PACHAM) from 2022-11-25 to 2024-02-22 [RAW]
<p>Original data files from ALC measurements at Chamant (Département 60) in the rural area to the NNE of Greater Paris.</p> <p>Part 1 of 3.</p>
Data from Automatic Lidar and Ceilometer (ALC) measurements at Paris – SIRTA Atmospheric Observatory (PASIRT) from 2023-08-22 to 2024-02-28 [RAW]
<p>Original data files from ALC measurements at Paris–SIRTA Atmospheric Observatory.</p> <p>Part 2 of 2.</p>
Data from Automatic Lidar and Ceilometer (ALC) measurements at Paris – Roissy (PAROIS) from 2024-03-22 to 2024-07-07 [RAW]
<p>Original data files from ALC measurements at Paris-Roissy Charles de Gaulle Airport.</p> <p>Measurements were taken on the N roof terrace of the Meteo France Building at Roissy Charles de Gaulle Airport / Rue du Moulin (ID 95527001) in the NE of the built-up area of Greater Paris.</p>
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