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72 results for “Cervus elaphus”

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Cervus elaphus (Cervidae) - whole organism - unspecified

Image of Cervus elaphus (Cervidae) - whole organism - unspecified

opencc-by-4.0Dec 2001View details →
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Figure 1. A in The Caspian red deer, Cervus elaphus maral (Mammalia: Cervidae): a new host record for Rhipicephalus (Boophilus) annulatus (Acari: Ixodidae) in northern Iran

Figure 1. A combined phylogenetic tree constructed using Bayesian Inference method based on ITS2/16S rRNA sequence data of Rhipicephalus (Boophilus) species in this study with sequences originated from various part of world retrieved from GenBank database. The main R. (B.) annulatus clade separated by a vertical double headed line. The taxa were defined with a name of species, country, GenBank accession number (taxon of the present study is bold). Posterior probability values inserted in the place of nodes. Branch lengths are proportional to the evolutionary changes. Rhipicephalus sanguineus assigned as outgroup taxon.

opencc-by-4.0Oct 2021View details →
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Fig. 3 in Bark of Ulmus laciniata (Trautv.) Mayr in the diet of Cervus elaphus xanthopygus (Milne-Edwards)

Fig. 3. Bark damage in young Ulmus laciniata after bark stripping by Cervus elaphus xanthopygus. Sample plot. 3.05.2021. Authors' photo Рис. 3. Характер поврежÃений коры у моΛоÃых иΛьмов Λопастных посΛе кормежки изюбрей. Пробная пΛощаÃь. 3 мая 2021 г. Фото авторов

opencc-by-4.0Dec 2022View details →
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Fig. 4. A in Bark of Ulmus laciniata (Trautv.) Mayr in the diet of Cervus elaphus xanthopygus (Milne-Edwards)

Fig. 4. A — Young Cervus elaphus xanthopygus feeding on the bark of Ulmus laciniata. Ussuriysky Nature Reserve. Suvorovskoye forestry. Shkotovsky district. 18.04.2010. Leaf River camera trap; B — A young male Cervus elaphus xanthopygus eating cambium from a large Ulmus laciniata. Ussuriysky Nature Reserve. Komarovskoye forestry. Ussuriysk urban district. 21.03.2021. Bushnell camera trap; C — A researcher examines a group of young Ulmus laciniata debarked by Cervus elaphus xanthopygus. Ussuriysky Nature Reserve. Suvorovskoye forestry. Shkotovsky district. 13.04.2010. Photo by M. Maslov; D — A researcher examines Ulmus laciniata, debarked by Cervus elaphus xanthopygus at a different time. Ussuriysky Nature Reserve. Komarovskoye forestry. Ussuriysk urban district. 27.05.2010. Photo by M. Maslov Рис. 4. A — сегоΛеток изюбря, питающийся корой иΛьма Λопастного. Уссурийский заповеÃник. Суворовское Λесничество. Шкотовский район. 18 апреΛя 2010 г. ФотоΛовушка Leaf River; B — моΛоÃой самец изюбря объеÃает камбий с крупного иΛьма Λопастного. Уссурийский заповеÃник. Комаровское Λесничество. Уссурийский гороÃской округ. 21 марта 2021 г. ФотоΛовушка Bushnell; C — научный сотруÃник осматривает группу моΛоÃых иΛьмов Λопастных, с которых изюбри объеΛи кору. Уссурийский заповеÃник. Суворовское Λесничество. Шкотовский район. 13 апреΛя 2010 г. Фото М. МасΛова; D — научный сотруÃник осматривает иΛьм Λопастной, на котором набΛюÃаются сΛеÃы обгрызания изюбрем коры разной Ãавности. Уссурийский заповеÃник. Комаровское Λесничество. Уссурийский гороÃской округ. 27 мая 2010 г. Фото М. МасΛова

opencc-by-4.0Dec 2022View details →
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Fig. 2 in Bark of Ulmus laciniata (Trautv.) Mayr in the diet of Cervus elaphus xanthopygus (Milne-Edwards)

Fig. 2. Bark damage in large Ulmus laciniata after bark stripping by Cervus elaphus xanthopygus. Sample plot. 3.05.2021. Authors' photo Рис. 2. Характер поврежÃений коры у крупных иΛьмов Λопастных посΛе кормежки изюбрей. Пробная пΛощаÃь. 3 мая 2021 г. Фото авторов

opencc-by-4.0Dec 2022View details →
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Fig. 5 in Bark of Ulmus laciniata (Trautv.) Mayr in the diet of Cervus elaphus xanthopygus (Milne-Edwards)

Fig. 5. Young Ulmus laciniata debarked by Cervus elaphus xanthopygos. "The Udege Legend" National Park. Krasnoarmeysky district. 2.06.2021. Photo by D. Belyaev Рис. 5. МоΛоÃой иΛьм Λопастной с объеÃенной изюбрем корой. НационаΛьный парк «УÃэгейская ΛегенÃа». Красноармейский район. 2 июня 2021 г. Фото À. БеΛяева

opencc-by-4.0Dec 2022View details →
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Fig. 1 in Bark of Ulmus laciniata (Trautv.) Mayr in the diet of Cervus elaphus xanthopygus (Milne-Edwards)

Fig. 1. Location of the sample plot. Surroundings of the village of Kamenushka, Ussuriysk urban district, Primorsky Region. The inset shows the research area Рис. 1. РаспоΛожение пробной пΛощаÃи. Окрестности с. Каменушка, Уссурийский гороÃской округ, Приморский край. На врезке показан район иссΛеÃований

opencc-by-4.0Dec 2022View details →
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Fig. 7 in First description of Onchocerca jakutensis (Nematoda: Filarioidea) in red deer (Cervus elaphus) in Switzerland

Fig. 7. Microfilaria showing transverse annulation and irregular shape of swollen anterior end (magnitude of annulation and swelling might be exaggerated by artefact of fixation).

opencc-by-4.0Aug 2016View details →
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Fig. 5 in First description of Onchocerca jakutensis (Nematoda: Filarioidea) in red deer (Cervus elaphus) in Switzerland

Fig. 5. External cuticular annulation (A) of O. jakutensis female with interruption over lateral field.

opencc-by-4.0Aug 2016View details →
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Fig. 4. a and b in First description of Onchocerca jakutensis (Nematoda: Filarioidea) in red deer (Cervus elaphus) in Switzerland

Fig. 4. a and b: Posterior end of O. jakutensis male with 5 pairs of pericloacal papillae without unpaired precloacal papilla.

opencc-by-4.0Aug 2016View details →
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Fig. 3. O in First description of Onchocerca jakutensis (Nematoda: Filarioidea) in red deer (Cervus elaphus) in Switzerland

Fig. 3. O. jakutensis male and female (bars: 100 Mm): a. Tail of male with five pairs of pericloacal and two pair of closely spaced terminal papillae. b. Tail of another male with more distantly spaced papillae on tail end. Left spicule protruding. c. Spicules in ventral view. d. Head end of male. e. Head end of female with vulva. f. Posterior end of female with conical tail in ventral view, annulations indicated on sides. g. Microfilaria with terminal distribution of nuclei.

opencc-by-4.0Aug 2016View details →
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Fig. 1 in First description of Onchocerca jakutensis (Nematoda: Filarioidea) in red deer (Cervus elaphus) in Switzerland

Fig. 1. Subcutaneous nodule in red deer skin with partly freed O. jakutensis female (stained with methylene blue). (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)

opencc-by-4.0Aug 2016View details →
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Fig. 1. Subcutaneous nodules. a in Nodular onchocercosis in red deer (Cervus elaphus) in Sweden

Fig. 1. Subcutaneous nodules. a) in the subcutaneous fascia from the rump of a carcass b) parts of the threadlike O. flexuosa extracted from a subcutaneous nodule.

opencc-by-4.0Dec 2017View details →
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Fig. 1 in Prevalence and co-infection with tick-borne Anaplasma phagocytophilum and Babesia spp. in red deer (Cervus elaphus) and roe deer (Capreolus capreolus) in Southern Norway

Fig. 1. Phylogenetic tree of Babesia isolates and samples of this study (●), based on fragments of 18S rRNA, generated using the Maximum-Likelihood clustering method in MEGA 6 software (1000 replicates; bootstrap values indicated at the nodes). Abbreviations: AU - Austria, BE - Belgium, CA - Canada, DE - Germany, FR - France, HU - Hungary, IT - Italy, JP - Japan, LT - Lithuania, NO - Norway, PL - Poland, RU - Russia, SK - Slovakia, SP - Spain, TU - Turkey, US - United States.

opencc-by-4.0Apr 2019View details →
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Fig. 2 in Identification of Anaplasma spp. in Tian Shan wapiti deer (Cervus elaphus songaricus) in Xinjiang, China

Fig. 2. Phylogenetic tree of A. phagocytophilum based on the 16S rRNA partial gene sequences. A neighbor-joining tree was constructed using the Kimura two-parameter model in the Mega 5.1 software. An alignment of 641 bp partial 16S rRNA sequence was used to construct this tree. Numbers on the branches indicate the percent of replicates that reproduced the topology for each clade. Gray square indicates sequences obtained from the study.

opencc-by-4.0Apr 2021View details →
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Fig. 1 in Identification of Anaplasma spp. in Tian Shan wapiti deer (Cervus elaphus songaricus) in Xinjiang, China

Fig. 1. Phylogenetic tree of A. ovis based on the msp4 partial gene sequences. A neighbor-joining tree was constructed using the Kimura two-parameter model in the Mega 5.1 software. An alignment of 584 bp partial msp4 gene sequences was used to construct this tree. Numbers on the branches indicate the percent of replicates that reproduced the topology for each clade. Gray square indicates sequences obtained from the study.

opencc-by-4.0Apr 2021View details →
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Fig. 8 in Osteometric analysis of the scapula and humerus of Rangifer tarandus and Cervus elaphus: A contribution to the discrimination of Late Pleistocene cervids

Fig. 8. Morphological features distinguishing the distal portion of the humerus of Rangifer tarandus (A) and Cervus elaphus (B), in anterior (A1, B1), distal (A2,B2), and posterior (A3,B3) views (modified from Breda 2005).

opencc-by-4.0Dec 2012View details →
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Fig. 7 in Osteometric analysis of the scapula and humerus of Rangifer tarandus and Cervus elaphus: A contribution to the discrimination of Late Pleistocene cervids

Fig. 7. Morphological features distinguishing the proximal portion of the humerus of Rangifer tarandus (A) and Cervus elaphus (B) (modified from Pales and García 1981).

opencc-by-4.0Dec 2012View details →
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Fig. 6 in Osteometric analysis of the scapula and humerus of Rangifer tarandus and Cervus elaphus: A contribution to the discrimination of Late Pleistocene cervids

Fig. 6. Scatterplots of different combinations of scapular measurements and indices for Rangifer tarandus and Cervus elaphus from Kiputz IX (southern Pyrenees, Spain), Late Pleistocene. Abbreviations: GLP, greatest anteroposterior length of the glenoid process; LG, greatest anteroposterior length of the glenoid cavity; SLC, minimum diameter of the scapular neck.

opencc-by-4.0Dec 2012View details →
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Fig. 3 in Osteometric analysis of the scapula and humerus of Rangifer tarandus and Cervus elaphus: A contribution to the discrimination of Late Pleistocene cervids

Fig. 3. Osteological measurements of the scapula (A, B) and the humerus (C, D) (modified from Weinstock 2000a). All drawings are based on Rangifer tarandus.

opencc-by-4.0Dec 2012View details →

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