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43 results for “Emys orbicularis”
Fig. 1 in Fatal spirorchiidosis in European pond turtles (Emys orbicularis) in Switzerland
Fig. 1. Gross findings and parasitology, (a) Gastrointestinal tract from a 6-year-old female European pond turtle (Emys orbicularis, ID8) displaying large numbers of spirorchiid eggs in the subserosal vessels (arrowheads), which are more visible in the intestine. Note the focal stricture of the intestine (arrow) with proximal severe dilation. This section was filled with a large amount of necrotic material. Bar 1 cm. (b) Autolytic testis from ID5 displaying similar lesions to the ones observed in the gastrointestinal tract from ID8 (arrowheads). Bar 25 mm. (c) Aspect of a spirorchiid egg stained with methylene blue identified following sedimentation from intestinal content. Light optical microscope, Bar 10 μm. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Text-fig. 4. Non-mammalian record from travertine of Gánovce-Hrádok Neanderthal site. a) Emys orbicularis s. l. (NM-Rv 21001), internal core of shell in dorsal view; b) Vipera berus (P-14297), partly articulated skeleton in dorsal view; c–e) Aves gen. et sp. (c: NM-Rv 21002a, d: NM-Rv 21002b; e: P-14292), feather impressions in travertine. All scale bars (except "b") are 50 mm, for "b" 10 mm. in Revised Floral And Faunal Assemblages From Late Pleistocene Deposits Of The Gánovce-Hrádok Neanderthal Site -Biostratigraphic And Palaeoecological Implications
Text-fig. 4. Non-mammalian record from travertine of Gánovce-Hrádok Neanderthal site. a) Emys orbicularis s. l. (NM-Rv 21001), internal core of shell in dorsal view; b) Vipera berus (P-14297), partly articulated skeleton in dorsal view; c–e) Aves gen. et sp. (c: NM-Rv 21002a, d: NM-Rv 21002b; e: P-14292), feather impressions in travertine. All scale bars (except "b") are 50 mm, for "b" 10 mm.
Fig. 3 in Skin Microbiome Of Free-Living European Pond Turtle (Emys Orbicularis (L.)) On The Northern Border Of Its Range In Silene Nature Park, Latvia
Fig. 3. Gram-positive (A) and Gram-negative bacteria (B) under the microscope. Magnification x1000.
Fig. 2 in Skin Microbiome Of Free-Living European Pond Turtle (Emys Orbicularis (L.)) On The Northern Border Of Its Range In Silene Nature Park, Latvia
Fig. 2. Sampled turtle with the biotope (Photo: M. Pupins).
Fig. 3 in The First Experience In New Technologies Of Breeding And Semi-Natural Eggs Incubation Of Northern Emys Orbicularis In Glass-House Aquaculture In Latvia
Fig. 3. Dynamics of measured temperatures of shore and water in the experimental glass-house.
Fig. 2 in The First Experience In New Technologies Of Breeding And Semi-Natural Eggs Incubation Of Northern Emys Orbicularis In Glass-House Aquaculture In Latvia
Fig. 2. Emys-friendly design of the experimental glass-house basin in summer.
Fig. 5 in The First Experience In New Technologies Of Breeding And Semi-Natural Eggs Incubation Of Northern Emys Orbicularis In Glass-House Aquaculture In Latvia
Fig. 5. First breeding-sun-basking behaviour observed in the experiment.
Fig. 9 in The First Experience In New Technologies Of Breeding And Semi-Natural Eggs Incubation Of Northern Emys Orbicularis In Glass-House Aquaculture In Latvia
Fig. 9. Scatterplot matrix for each pair of variables: CL and BW, CL and CB, BW and CB.
Fig.11 in First Records Of New Aquatic Predator Pelodiscus Sinensis (Wiegmann 1835) In Latvia And Preliminary Ecological Risk Assessment Of The Invasion For Autochthonic Emys Orbicularis (Linnaeus 1758)
Fig.11. Peculiarities of P.sinensis findings waterbodies water connectivity in Latvia.
Fig.1 in First Records Of New Aquatic Predator Pelodiscus Sinensis (Wiegmann 1835) In Latvia And Preliminary Ecological Risk Assessment Of The Invasion For Autochthonic Emys Orbicularis (Linnaeus 1758)
Fig.1. Placement of the findings of Pelodiscus sinensis in Latvia.
Fig. 4 in First Records Of New Aquatic Predator Pelodiscus Sinensis (Wiegmann 1835) In Latvia And Preliminary Ecological Risk Assessment Of The Invasion For Autochthonic Emys Orbicularis (Linnaeus 1758)
Fig. 4. Ventral side of the first P.sinensis #PeSi0001 found in Latvia.
Fig. 10 in First Records Of New Aquatic Predator Pelodiscus Sinensis (Wiegmann 1835) In Latvia And Preliminary Ecological Risk Assessment Of The Invasion For Autochthonic Emys Orbicularis (Linnaeus 1758)
Fig. 10. Peculiarities of P.sinensis findings waterbodies size in Latvia.
Fig.6 in The Experimental Data On Sun-Basking Activity Of European Pond Turtle Emys Orbicularis In Natural Climate In Latvia: Dynamics And Correlation With The Meteorological Factors
Fig.6. Daily dynamics of sun-basking activity of Emys orbicularis.
Fig.1 in The Experimental Data On Sun-Basking Activity Of European Pond Turtle Emys Orbicularis In Natural Climate In Latvia: Dynamics And Correlation With The Meteorological Factors
Fig.1. The schema of the experimental out-door terrarium.
Figure 3 in Increased haplotype diversity of Emys orbicularis (Linnaeus, 1758) (Reptilia: Emydidae) in northern Iran
Figure 3. Haplotype network of all studied samples based on the Cytochrome b gene fragment.
Direct and indirect estimates of dispersal support strong juvenile philopatry and male-biased dispersal in a freshwater turtle species (Emys orbicularis)
<p><span>Dispersal has major impacts on population dynamics, population genetics and evolution and is also critical for population management and conservation. Dispersal is frequently sex- and age-specific, but current knowledge is strongly taxonomically biased toward birds and mammals. Here, we provide estimates of dispersal in a threatened freshwater turtle species, the European pond turtle <em>Emys</em> <em>orbicularis.</em> Based on 15 years of Capture-Mark-Recapture (CMR) monitoring and DNA samples from 194 individuals, we quantified both demographic and genetic dispersal between three sites separated by 1.5 to 3.5 km. We also investigated the effect of age and sex on dispersal. Overall, direct (CMR) and indirect (genetic) approaches provided consistent results showing that the studied sites are well connected with a flow of about one to three dozen migrants per generation. Dispersal was both age- and sex-biased in this species, with frequent dispersal of adult males and a strong philopatry of juveniles (of both sexes) and adult females. The strong philopatry of juveniles contrasts with the recurrent higher dispersal rate in young birds and mammals and shows the relevance of investigating dispersal in various taxonomic groups. Our results also provide useful information for the conservation of European pond turtle populations.</span></p>
Direct and indirect estimates of dispersal support strong juvenile philopatry and male-biased dispersal in a freshwater turtle species (Emys orbicularis)
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Fig. 4 in Where are you from, stranger? The enigmatic biogeography of North African pond turtles (Emys orbicularis)
Fig. 4 Inferred population structure of European pond turtles from North Africa and the Doñana National Park (Spain) for K =2 (top) and K =4 (bottom) using 15 microsatellite loci. Shown are the STRUCTURE runs with the best probability values. Distinct clusters are color-coded. Within each cluster, an individual turtle corresponds to a vertical segment that reflects its ancestry. Mixed ancestries are indicated by differently colored sectors, corresponding to inferred genetic percentages of the corresponding clusters. Sampling regions are separated by black lines
Fig. 1 in Where are you from, stranger? The enigmatic biogeography of North African pond turtles (Emys orbicularis)
Fig. 1 Top: Distribution range of European and Sicilian pond turtles (Emys orbicularis, E. trinacris, shaded). Bottom: Sampling sites of pond turtles yielding haplotypes of mtDNA lineage VI in Europe (Fritz et al. 2007; Velo-Antón et al. 2011; present study) and of North African samples (present study). Red sampling sites: Morocco (Middle Atlas Mountains and Kenitra Province), orange: Morocco (Rif Mountains),
Supplementary material 1 from: Horváth E, Martvoňová M, Danko S, Havaš P, Kaňuch P, Uhrin M (2021) Distribution range and population viability of Emys orbicularis in Slovakia: a review with conservation implications. Nature Conservation 44: 141-161. https://doi.org/10.3897/natureconservation.44.69644
Dataset of presence data and fossil records of Emys orbicularis in Slovakia
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