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87 results for “Ciconia ciconia”

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Рис. 3. КоΛичество фактически учтенных жиΛых гнезΑ в 2018–2019 гг. на особо охраняемых прироΑных территориях Амурской обΛасти Fig. 3. The actual number of inhabited nests in 2018–2019 in protected natural areas of the Amur region in Oriental stork (Ciconia boyciana Swinhoe) breeding population survey in the Amur region in 2018-2019

Рис. 3. КоΛичество фактически учтенных жиΛых гнезΑ в 2018–2019 гг. на особо охраняемых прироΑных территориях Амурской обΛасти Fig. 3. The actual number of inhabited nests in 2018–2019 in protected natural areas of the Amur region

opencc-by-4.0Feb 2021View details →
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Рис. 2. РаспреΑеΛение гнезΑ ΑаΛьневосточного аиста в Хабаровском крае по состоянию на 2018 г. Fig. 2. Distribution of nests of the Oriental White Stork in the Khabarovsk Territory as of 2018 in The number and distribution of the Oriental White Stork Ciconia boyciana Swinhoe, 1873 in the Khabarovskiy Region

Рис. 2. РаспреΑеΛение гнезΑ ΑаΛьневосточного аиста в Хабаровском крае по состоянию на 2018 г. Fig. 2. Distribution of nests of the Oriental White Stork in the Khabarovsk Territory as of 2018

opencc-by-4.0Feb 2021View details →
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Рис. 2. КоΛичество жиΛых гнезΑ ΑаΛьневосточного аиста, учтенных в 2018–2019 гг. по аΑминистративным районам Амурской обΛасти Fig. 2. The number of inhabited Oriental stork nests recorded in 2018–2019 in different administrative districts of the Amur region in Oriental stork (Ciconia boyciana Swinhoe) breeding population survey in the Amur region in 2018-2019

Рис. 2. КоΛичество жиΛых гнезΑ ΑаΛьневосточного аиста, учтенных в 2018–2019 гг. по аΑминистративным районам Амурской обΛасти Fig. 2. The number of inhabited Oriental stork nests recorded in 2018–2019 in different administrative districts of the Amur region

opencc-by-4.0Feb 2021View details →
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Рис. 8. РаспреΑеΛение гнезΑ ΑаΛьневосточного аиста в прироΑном парке «Шереметьевский» в 2013 г. Fig. 8. Distribution of nests of the Oriental White Stork in the Sheremetyevsky Nature Park in 2013 in The number and distribution of the Oriental White Stork Ciconia boyciana Swinhoe, 1873 in the Khabarovskiy Region

Рис. 8. РаспреΑеΛение гнезΑ ΑаΛьневосточного аиста в прироΑном парке «Шереметьевский» в 2013 г. Fig. 8. Distribution of nests of the Oriental White Stork in the Sheremetyevsky Nature Park in 2013

opencc-by-4.0Feb 2021View details →
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Fig. 2 in New high altitude nesting site of White Stork (Ciconia ciconia Linnaeus, 1758) in Bulgaria

Fig. 2. The nest of White Stork (Ciconia ciconia) in Yundola village, 13.07.2016. (Photograph: G. Gruychev).

opencc-by-4.0Mar 2020View details →
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Fig. 1 in New high altitude nesting site of White Stork (Ciconia ciconia Linnaeus, 1758) in Bulgaria

Fig. 1. White Stork (Ciconia ciconia) at the nest in Yundola village in 16.07.2015 (Photograph: S. Stoyanov).

opencc-by-4.0Mar 2020View details →
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Fig. 1 in A White Stork (Ciconia ciconia (Linnaeus, 1758)) nest - an unique case of multiple nesting commensalism of five species from Dragoman (W Bulgaria)

Fig. 1. Eurasian Tree Sparrows nesting in a nest of White Stork, Dragoman, 19.05.2019. Photo: Z. Boev.

opencc-by-4.0Aug 2019View details →
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Fig. 4 in A White Stork (Ciconia ciconia (Linnaeus, 1758)) nest - an unique case of multiple nesting commensalism of five species from Dragoman (W Bulgaria)

Fig. 4. Eurasian Collared Dove nesting in a nest of White Stork, Dragoman, 19.05.2019. Photo: Z. Boev.

opencc-by-4.0Aug 2019View details →
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Fig. 3 in A report of 18 unrecorded prokaryotic species isolated from the feces of an Oriental stork (Ciconia boyciana), and from the intestinal tracts of a cobitid fish (Kichulchoia multifasciata) and a Korean splendid dace (Coreoleuciscus splendidus)

Fig. 3. Phylogenetic tree based on 16S rRNA gene sequence comparisons, showing the relationship between the seven strains belonging to the phylum Firmicutes isolated in this study and the notable type species from each genus. The tree was reconstructed using neighbor joining (NJ), maximum likelihood (ML), and maximum parsimony (MP) algorithms. Filled diamonds indicate corresponding branches present in the phylogenetic tree generated using the three different tree construction methods. Numbers at the nodes represent bootstrap values of more than 70% are shown, based on 1000 replicates (NJ/MP/ML). Limnochorda pilosa HC45T (AP014924) was used as the outgroup. The bar indicates 0.02 accumulated substitutions per nucleotide.

opencc-by-4.0Dec 2020View details →
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Fig. 4 in A report of 18 unrecorded prokaryotic species isolated from the feces of an Oriental stork (Ciconia boyciana), and from the intestinal tracts of a cobitid fish (Kichulchoia multifasciata) and a Korean splendid dace (Coreoleuciscus splendidus)

Fig. 4. Phylogenetic tree based on 16S rRNA gene sequence comparisons, showing the relationship between the two strains belonging to the phylum Proteobacteria isolated in this study and the notable type species from each family. The tree was reconstructed using neighbor joining (NJ), maximum likelihood (ML), and maximum parsimony (MP) algorithms. Filled diamonds indicate corresponding branches present in the phylogenetic tree generated using the three different tree construction methods. Numbers at the nodes represent bootstrap values of more than 70% are shown, based on 1000 replicates (NJ/MP/ML). Bacteroides fragilis NCTC 9343T (NR_074784.2) was used as the outgroup. The bar indicates 0.05 accumulated substitutions per nucleotide.

opencc-by-4.0Dec 2020View details →
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Fig. 2 in A report of 18 unrecorded prokaryotic species isolated from the feces of an Oriental stork (Ciconia boyciana), and from the intestinal tracts of a cobitid fish (Kichulchoia multifasciata) and a Korean splendid dace (Coreoleuciscus splendidus)

Fig. 2. Phylogenetic tree based on 16S rRNA gene sequence comparisons, showing the relationship between the eight strains belonging to the phylum Actinobacteria isolated in this study and the notable type species from each genus. The tree was reconstructed using neighbor joining (NJ), maximum likelihood (ML), and maximum parsimony (MP) algorithms. Filled diamonds indicate corresponding branches present in the phylogenetic tree generated using the three different tree construction methods. Numbers at the nodes represent bootstrap values of more than 70% are shown, based on 1000 replicates (NJ/MP/ML). Akkermansia muciniphila ATCC BAA-835T (NR_074436.1) was used as the outgroup. The bar indicates 0.02 accumulated substitutions per nucleotide.

opencc-by-4.0Dec 2020View details →
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Fig. 1 in A report of 18 unrecorded prokaryotic species isolated from the feces of an Oriental stork (Ciconia boyciana), and from the intestinal tracts of a cobitid fish (Kichulchoia multifasciata) and a Korean splendid dace (Coreoleuciscus splendidus)

Fig. 1. Transmission electron micrographs of the strains isolated in this study. The arrows indicate flagella. Strains: 1, H11M7; 2, H11M9; 3, H23M10; 4, H21T1; 5, H13T1; 6, H43T7; 7, H21T20; 8, H23M25; 9, H23M9; 10, S13R1; 11, H13R26; 12, H11M5; 13, H11M15; 14, H11R12; 15, H21T7; 16, H11R21; 17, M13M1; 18, H23T21.

opencc-by-4.0Dec 2020View details →
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Fig. 5 in A report of 18 unrecorded prokaryotic species isolated from the feces of an Oriental stork (Ciconia boyciana), and from the intestinal tracts of a cobitid fish (Kichulchoia multifasciata) and a Korean splendid dace (Coreoleuciscus splendidus)

Fig. 5. Phylogenetic tree based on 16S rRNA gene sequence comparisons, showing the relationship between strain H23T21 and the notable type species from the family Sphingobacteriaceae. The tree was reconstructed using neighbor joining (NJ), maximum likelihood (ML), and maximum parsimony (MP) algorithms. Filled diamonds indicate corresponding branches present in the phylogenetic tree generated using the three different tree construction methods. Numbers at the nodes represent bootstrap values of more than 70% are shown, based on 1000 replicates (NJ/MP/ML). Filobacterium rodentium SMR-CT (LC055729) was used as the outgroup. The bar indicates 0.05 accumulated substitutions per nucleotide.

opencc-by-4.0Dec 2020View details →
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Figure 4 in Two-fold increase in White Stork (Ciconia ciconia) population in Lithuania: a consequence of changing agriculture?

Figure 4. Proportion of White Stork nests built in different tree species (% of all nests in trees).

opencc-by-4.0Jan 2015View details →
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Figure. Measurement data plotted for all nestlings as a function of age for the black stork: a) wing length (WL), b) head length (HL), c) bill length (BL), and d) tarsus length. in Age estimation of black stork (Ciconia nigra) nestlings from wing, bill, head, and tarsus lengths at the time of ringing

Figure. Measurement data plotted for all nestlings as a function of age for the black stork: a) wing length (WL), b) head length (HL), c) bill length (BL), and d) tarsus length.

opencc-by-4.0Sep 2017View details →
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Fig. 4 in Syngamus trachea in free-ranging white stork (Ciconia ciconia) nestlings in Switzerland

Fig. 4. Egg of Syngamus trachea: ellipsoidal, with distinct bipolar opercula, 87.53 μm long and 55.28 μm wide.

opencc-by-4.0Aug 2022View details →
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Fig. 3 in Syngamus trachea in free-ranging white stork (Ciconia ciconia) nestlings in Switzerland

Fig. 3. SEM image of a female and male Syngamus trachea (A), with a large cup-shaped buccal capsule (indented arrows) in both adult nematodes (B, C) and a prominent but short copulatory bursa (arrow) in the male individual (D).

opencc-by-4.0Aug 2022View details →
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Fig. 6 in Syngamus trachea in free-ranging white stork (Ciconia ciconia) nestlings in Switzerland

Fig. 6. Histopathological lesions observed in the respiratory tract of one of the affected animals from this study. Focal-extensive erosion and ulceration of the tracheal mucosa (large arrows) with thickening of the lamina propria (arrowheads) due to a mixed cell tracheitis and focal granuloma formation in animal WS3 (A). The inset shows a larger magnification of this granuloma, which consists of a necrotic core surrounded by few multinucleated giant cells (narrow arrows), macrophages, and heterophils. H&E staining. Partially degenerated parasitic structure within the lung parenchyma (dashed line) with multifocal acute hemorrhages (indented arrows) in the bronchi and parabronchi of animal WS3 (B). The inset shows a larger magnification of the degenerated parasite with surrounding granulomatous inflammation, composed of abundant multinuclear giant cells (narrow arrows), macrophages, heterophils and acute hemorrhage. H&E staining.

opencc-by-4.0Aug 2022View details →
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Fig. 5. Haplotypes from female S in Syngamus trachea in free-ranging white stork (Ciconia ciconia) nestlings in Switzerland

Fig. 5. Haplotypes from female S. trachea nematodes collected from five different white stork nestlings (WS1-5).

opencc-by-4.0Aug 2022View details →
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Fig. 1 in Syngamus trachea in free-ranging white stork (Ciconia ciconia) nestlings in Switzerland

Fig. 1. Necropsy of a white stork nestling (WS3) showing the opened trachea with Syngamus trachea forming the typical Y-shape.

opencc-by-4.0Aug 2022View 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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Last verified 2026-04-29Open record