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86 results for “EMI”

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Fig. 1. A–C in The first case of Spiroxys contortus in European pond turtle (Emys orbicularis) in the wild in Poland

Fig. 1. A–C Female of Spiroxys contortus (Gnathostomatidae) parasite of wild Emys orbicularis (European pond turtle) in Poland. A. Anterior region (a) median lobe with a tooth; (b) the lip with submedian papilla; (c) cuticular spine on the margin of the collar; B. Posterior region with a conical tip (arrow) C. Vulvar opening (arrow).

opencc-by-4.0Dec 2021View details →
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Fig. 3 in Fatal spirorchiidosis in European pond turtles (Emys orbicularis) in Switzerland

Fig. 3. Phylogenetic analysis, (a) Maximum likelihood phylogenetic tree of 206 bp of the 28S rRNA gene of members of the family Spirorchiidae, with Alaria alata as outgroup. Members of the Spirorchis genus are boxed. Parasite names are provided, followed by host names (top clade only), GenBank accession numbers and country of parasite discovery. Bootstrap values above 70 are shown, and branch lengths corresponding to the number of base substitutions are indicated by the scale bar. (b) Unrooted phylogenetic network of 274 bp of the ITS2 region of Spirorchis spp. recently described from North Amercian turtle species (Roberts et al., 2019) and Swiss Emys orbicularis. Host names, location of discovery and GenBank accession numbers are given. Note that the unnamed Spirorchis parasite described from Graptemys ernsti (AL, United States) is 100% identical in both the partial 28S rRNA (MH843487), and ITS2 (MH678746) sequences amplified from all Swiss turtle specimens.

opencc-by-4.0Apr 2022View details →
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Fig. 2 in Fatal spirorchiidosis in European pond turtles (Emys orbicularis) in Switzerland

Fig. 2. Histopathological findings, (a) Five-year-old female European pond turtle (Emys orbicularis, ID2), small intestine. Multiple intravascular trematode eggs (narrow arrowheads) are present in the tunica muscularis, and submucosa associated with severe granulomatous inflammation and acute haemorrhage (large arrowheads). H&E staining, bar 500 μm. (b) Eleven-year-old female European pond turtle (Emys orbicularis, ID4), large intestine. The mucosa displays a focal deep ulceration (arrows) with replacement of the underlying submucosa and tunica muscularis by fibrous tissue (stars) and severe granulomatous coelomitis (asterisks). Multiple trematode eggs are present intravascularly, particularly in the subserosal vasculature (arrowheads). H&E staining, bar 200 μm. (c) ID2, small intestine. Focal granulomatous reaction with multinucleated giant cells (arrows) displaying intracytoplasmic, partially disrupted trematode eggs (arrowheads). H&E staining, bar 100 μm. (d) Adult male European pond turtle (Emys orbicularis ID5), testis. Interstitial granulomatous reaction composed of multinucleated giant cells (arrows) displaying intracytoplasmic embryonated (arrowheads) and non-embryonated (asterisk) trematode eggs. H&E staining, bar 50 μm.

opencc-by-4.0Apr 2022View details →
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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.)

opencc-by-4.0Apr 2022View details →
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Genealogia dos Subcampos dos EMI

<p>Figura criada para&nbsp;o artigo&nbsp; &quot;<strong>As diferentes metrias dos estudos m&eacute;tricos da informa&ccedil;&atilde;o:</strong>&nbsp;evolu&ccedil;&atilde;o epistemol&oacute;gica, inter-rela&ccedil;&otilde;es e representa&ccedil;&otilde;es&quot; Dispon&iacute;vel em:&nbsp;<a href="https://doi.org/10.5007/1518-2924.2020.e74593">https://doi.org/10.5007/1518-2924.2020.e74593</a></p>

opencc-by-4.0Aug 2021View details →
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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.

opencc-by-4.0Aug 2017View details →
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Post-remediation evaluation of contaminated site using geophysical methods: EMI

<p>For the EMI measurements, a ground conductivity meter EM38-MK2 (Geonics) was used. Based on the measurements carried out on two coil spacings every 0.5 m and 1 m in horizontal (H-mode) and vertical dipole mode (V-mode), a component reflecting the electrical conductivity was obtained at three effective depth ranges approx. 0.37 m and 0.75 m for H-mode, 0.75 m and 1.5 m for V-mode. Recognition of the value of electrical conductivity was obtained in a grid of 50 x 50 m</p> <p>This research was funded by National Science Centre, Poland MINIATURA-5 2021/05/X/ST10/00673 &ldquo;Post-remediation evaluation of contaminated site using geophysical methods&rdquo;</p>

opencc-by-4.0Nov 2022View details →
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ipaast - agrivation collaboration EMI survey Manor Farm Field 70

<p>These data were collected as part of the ipaast-Agrivation collaboration to develop survey workflows that produce data compatible with common&nbsp;applications across archaeological, agricultural, and environmental&nbsp;domains. The project is described in the report at:&nbsp;<a href="http://ipaast-czo.glasgow.ac.uk/index.php/ipaast-agrivation-ltd-collaboration/">https://ipaast-czo.glasgow.ac.uk/index.php/ipaast-agrivation-ltd-collaboration/</a>. The ipaast project is funded by the British Academy Award&nbsp;KF5210407.</p>

opencc-by-4.0Feb 2023View details →
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DPM Upgade from gLite 3.2 to EMI 2 - EMI trainings at EGI CF12

Upgrading a DPM instance from gLite 3.2 to EMI 2 release

opencc-by-sa-4.0Jun 2013View details →
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CREAM installation and configuration - EMI trainings at EGI CF12

Installation and configuration of CREAM CE instance, from EMI 2 release

opencc-by-sa-4.0Jun 2013View details →
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YAIM - EMI Trainings at EGI TF 2012

YAIM Overview, tips and tricks

opencc-by-sa-4.0May 2013View details →
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emi bacino destro

Desenzano, Collezione Grandinetti, reperto osteologico, emi bacino destro. Source: Objaverse 1.0 / Sketchfab

opencc-byJun 2017View details →
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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.

opencc-by-4.0Dec 2020View details →
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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).

opencc-by-4.0Dec 2020View details →
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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.

opencc-by-4.0Dec 2016View details →
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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.

opencc-by-4.0Dec 2016View details →
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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.

opencc-by-4.0Dec 2016View details →
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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.

opencc-by-4.0Dec 2016View details →
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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.

opencc-by-4.0Dec 2016View details →
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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.

opencc-by-4.0Dec 2016View details →

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